SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4363-6
Aqueous zinc-ion batteries (AZIBs) offer a compelling combination of high safety, environmental compatibility, and abundant zinc resources, positioning them as viable candidates for grid-scale energy storage. Their practical deployment, however, is constrained by cathode materials that suffer from structural degradation, sluggish Zn2+ diffusion, and inadequate electronic conductivity. Ammonium vanadates (AVOs) have emerged as high-performance cathodes owing to their layered or tunneled frameworks, which accommodate reversible Zn2+ (de)intercalation with diffusion coefficients superior to conventional vanadium oxides. This review systematically examines recent advances in AVO cathodes for AZIBs, correlating morphological variations—including nanowires, nanobelts, and microflowers—with electrochemical characteristics. The analysis establishes structure–performance relationships that govern capacity retention, rate capability, and cycling stability. Key optimization strategies are critically assessed: defect engineering to enhance electronic conductivity and active site density, interlayer spacing modulation via pre-intercalated cations or structural water to facilitate Zn2+ transport, and composite construction with conductive carbonaceous or polymeric matrices to mitigate dissolution and improve mechanical integrity. Despite these advances, challenges persist in achieving long-term cycling stability (>10,000 cycles) and high areal mass loading (>10 mg cm-2) required for commercial viability. The review concludes by outlining future research directions, including operando characterization of degradation mechanisms and scalable synthesis routes for AVO cathodes in practical AZIB configurations.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4436-0
Microwave-absorbing materials (MAMs) deployed on naval vessels, aerospace vehicles, and critical electronic systems face coupled electromagnetic, marine salt-spray corrosion, and extreme-temperature loads that legacy single-function absorbers cannot withstand. This review consolidates progress on three environmentally adaptive MAM classes: corrosion-protective, anti-icing, and thermal-management absorbers. The electromagnetic loss and impedance-matching fundamentals are first established, then the synergistic mechanisms, design strategies, and characterization protocols for each class are examined against representative material systems and their measured performance. The analysis identifies a shared design logic—multiscale hierarchical architecture, interfacial polarization engineering, and multifunctional phase integration—while distinguishing the divergent protection mechanisms: barrier and passivation effects for corrosion, surface-energy and latent-heat regulation for anti-icing, and phonon–electron transport decoupling for thermal management. Persistent bottlenecks include the trade-off between impedance matching and protective-layer density, the absence of standardized coupled-field test protocols, and the scarcity of long-term salt-spray and thermal-cycling durability data. Future directions are delineated: intelligent self-adaptive absorbers, multiphysics-coupled simulation frameworks, and environmentally benign multifunctional integration. The review provides a theoretical and technical basis for the design, construction, and engineering scale-up of next-generation high-performance absorbers for aerospace, electronic, and marine equipment.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4249-2
Underwater bubble manipulation is critical for water electrolysis, heat transfer, and mineral flotation, yet existing strategies relying on buoyancy or Laplace gradient forces from asymmetric surface geometries suffer from limited flexibility and narrow applicability. This work introduces a temperature-responsive anisotropic cilia surface (TRAS) that achieves bidirectional long-range bubble transport by modulating elastic modulus and stiffness. The TRAS enables precise control over the asymmetric three-phase contact line and viscous resistance, facilitating reversible bubble motion. Experimental validation using aqueous ethanol droplets with varying surface tensions (73.16 mN/m for 0 vol% to 22.27 mN/m for 100 vol%) on cilia with center-to-center spacings of 0.2–1.0 mm reveals that transport direction depends on both cilia spacing and liquid surface tension. Droplets of 0 vol% and 20 vol% ethanol exhibit sustained reverse transport on hard cilia, while 60 vol%, 80 vol%, and 100 vol% solutions show sustained forward transport. Notably, 40 vol% ethanol droplets display bidirectional transport at 0.6 mm spacing, reverse transport at 0.8 and 1.0 mm, and forward transport at 0.2 and 0.4 mm. These results demonstrate that tuning surface tension and cilia spacing provides a versatile platform for directional bubble manipulation, with promising applications in heat transfer, electrochemistry, and gas handling systems.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4415-3
The escalating demands of military stealth platforms and the proliferation of electromagnetic pollution have intensified the need for high-performance electromagnetic wave (EMW) absorbers. Nanofibers, characterized by high specific surface area and favorable composite compatibility, are engineered into absorbers with outstanding electromagnetic properties. This review consolidates the preparation and optimization strategies for nanofiber-based absorbers. The electromagnetic attenuation mechanisms are first outlined, followed by a systematic classification of nanofiber fabrication methods into two principal categories: in-situ synthesis and electrospinning-derived processes. Recent advances in optimization strategies for absorbers constructed from nanofibers with tailored electromagnetic characteristics are then examined. The review draws upon representative studies, including ultrathin and flexible electromagnetic interference shielding films via interface-confinement, design strategies for wave-absorbing polymer-based shielding materials, impedance-matchable 3D MXene sponge/NiFe@NC heterostructures with tunable pores, and the influence of fiber coating on SiCf/epoxy composites. These works collectively demonstrate the critical role of fiber architecture, interface engineering, and impedance matching in determining absorption performance. The analysis identifies persistent challenges in scalability, cost, and environmental stability, and outlines future prospects for nanofiber-based EMW absorbers. This review provides a foundational reference for researchers and engineers seeking to translate nanofiber absorber concepts into deployable stealth and pollution-mitigation technologies.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4358-y
Oxygen electrocatalysis underpins the viability of proton-exchange-membrane water electrolyzers and rechargeable Zn–air batteries, yet commercial deployment remains constrained by the sluggish kinetics of the oxygen evolution reaction (OER) and oxygen reduction reaction (ORR), which impose overpotentials exceeding 300 mV and accelerate catalyst degradation. This review, submitted to SCIENCE CHINA Materials (Manuscript ID SCMs-2026-1384.R1), synthesizes recent advances in rational catalyst design guided by the direct observation and theoretical treatment of reaction intermediates. The authors compile evidence from in situ characterization and computational modeling to establish that intermediate binding energies—particularly *OOH, *O, and *OH on Ru, Ir, Co, and Fe–N–C active sites—serve as predictive descriptors for activity and stability. Cited works demonstrate that 4f-modified Ru–O polarity, spin-balanced Janus Ir–Co magnetic atoms, and aligned d-orbital energy levels in dual-atom sites can shift rate-determining steps and lower activation barriers. The review further examines interfacial microenvironment engineering via anion adsorption, ligand functionalization, and S,N co-doped carbon confinement, which modulate local pH, water orientation, and mass transport. Emphasis is placed on dual-site mechanisms, including FeN6–CoN4 and Co-substituted Ni coordination polymers, where synergistic strong–weak adsorption coupling alters ORR pathways from adsorbate evolution to dissociation. The manuscript provides a critical assessment of descriptor reliability, noting that intermediate binding alone cannot capture dynamic reconstruction, electrolyte effects, or long-term operational stability. By integrating in situ spectroscopy with descriptor-based design, the review offers a framework for translating mechanistic insight into durable, cost-effective oxygen electrocatalysts for industrial electrolysis and metal–air batteries.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4288-1
The high-temperature oxidation resistance of Cr2AlC MAX phase ceramics is severely compromised by rapid Al depletion and the formation of a brittle sub-surface Cr7C3 layer. This study elucidates how trace Y2O3 doping (0.25 and 0.5 wt.%) modulates the oxidation behavior of Cr2AlC at 1100 °C. The incorporation of 0.5 wt.% Y2O3 significantly suppresses the parabolic rate constant compared to undoped counterparts. This kinetic suppression is attributed to the Reactive Element Effect (REE), where Y3+ segregation at α-Al2O3 grain boundaries inhibits outward Al3+ diffusion, shifting the scale growth mechanism to inward oxygen diffusion control. Consequently, this retarded Al consumption prevents the decomposition of the Cr2AlC substrate into Cr7C3. While undoped specimens fail due to volume contraction and Kirkendall voiding associated with the Cr7C3 interlayer, specimens with the most effective doping content within the investigated range maintain a stable, atomically sharp α-Al2O3/Cr2AlC interface devoid of voids and decomposition products. The superior adhesion of this interface is attributed to three synergistic factors: the elimination of volumetric mismatch induced by phase transformation, the mechanical interlocking provided by Y-rich oxide pegs, and the intrinsically higher interfacial bonding strength of the α-Al2O3/Cr2AlC system as confirmed by DFT calculations. These findings provide a mechanistic framework for designing oxidation-resistant MAX phase ceramics via reactive element doping.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4244-0
Near-infrared perovskite light-emitting diodes (NIR-PeLEDs) suffer from poor operational stability, largely due to interfacial reactions at the electron-transport layer (ETL)/perovskite interface. Here, we introduce a zinc ion (Zn2+)-chelated hybrid ETL derived from a Zn2+-chelated polyethylenimine ethoxylated (PEIE) complex, which partially retains the surface properties of ZnO but exhibits significantly reduced oxygen defects and surface-adsorbed hydroxyl groups. This well-modulated surface promotes perovskite crystallization and mitigates interface-induced deprotonation of organic cations during device operation. Consequently, NIR-PeLEDs employing this hybrid ETL achieve a peak external quantum efficiency (EQE) of 20.1%, a high radiance of 652 W sr-1 m-2, and an exceptional T50 lifetime of 270.7 hours at a high current density of 100 mA cm-2, which is over five times that of devices based on conventional ZnO nanocrystal (NC) ETLs. Our results present an effective ETL strategy for operationally stable NIR-PeLEDs and thoroughly reveal the critical role of regulating interfacial reactions in stabilizing buried interfacial contacts. These findings provide valuable insights for advancing perovskite optoelectronic devices that suffer from interface-induced performance degradation.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4300-3
The power conversion efficiency (PCE) of organic solar cells (OSCs) has surpassed 21% with the donor polymer D18, yet its processing from non-halogenated solvents like ortho-xylene (o-XY) remains inefficient due to uncontrolled film formation kinetics. Here, we systematically synthesize D18 polymers with molecular weights ranging from 41.6 kDa to 70.9 kDa to modulate crystallization kinetics. In-situ film drying studies reveal that lower molecular weights accelerate solidification, leading to excessive aggregation, while higher molecular weights slow it, causing insufficient phase separation. A medium molecular weight (D18-M) achieves a balanced crystallization rate, promoting favorable morphology and yielding a PCE of 20.55% with L8-BO as acceptor—one of the highest reported for non-halogenated solvent-processed OSCs. Energy loss analysis indicates that although low-molecular-weight polymers exhibit higher intrinsic luminescence, the blend film's emission is governed by exciton environment, which is dictated by morphology. This work underscores the critical role of molecular weight in controlling film formation and morphology, offering a simple yet effective strategy for high-efficiency, environmentally friendly OSCs.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4108-1
Heterogeneous catalysis underpins modern energy conversion, chemical manufacturing, and environmental remediation, yet its advancement is constrained by the scarcity and cost of noble metals. A sustainable alternative lies in activating intrinsically inert sites in earth-abundant materials such as transition metal oxides and carbon-based materials. This review systematically outlines recent advances in activating inert sites within low-cost catalytic materials. We begin by dissecting the physicochemical origins of catalytic inertness, including local atomic symmetry, electronic spin states, and coordination environments. Subsequently, we elucidate mechanisms by which multi-scale strategies—structural engineering, quantum state engineering, and microenvironment engineering—break symmetry, modulate spin states, and construct unique reaction microenvironments, transforming spectator atoms into highly efficient active centers. The review highlights performance breakthroughs in key reactions such as oxygen evolution reaction (OER) and alkane dehydrogenation, where catalytic metrics now rival or surpass noble metal benchmarks. For instance, triangular-ordered Co atoms achieve ampere-level hydrogen production, and tensile strain engineering activates inert non-defect Bi sites for CO2 electroreduction. We critically assess challenges—stability, scalable synthesis, and cost-effectiveness—that hinder industrial translation. Future directions emphasize multi-strategy synergy and artificial intelligence-assisted rational design. This review provides theoretical guidance and technological pathways for subverting noble-metal-dependent paradigms and developing next-generation efficient, low-cost catalytic systems.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4235-6
Fluorite-structured oxides (HfO2, ZrO2) are promising for resistive random-access memory (RRAM) due to their scalability and tunable properties. However, achieving high resistive switching on/off ratios remains challenging. Here, we report a collaborative strategy combining Hf/Zr ratio optimization and Lu3+ doping to regulate band structure and oxygen vacancy concentration in Hf0.4Zr0.6O2 (LHZO) thin films. The resulting LHZO devices exhibit a resistive switching ratio of 8.4 × 10^4, two orders of magnitude higher than that of ZrO2 (1.2 × 10^3). Electrical characterization and synchrotron radiation photoemission spectroscopy reveal that Lu doping widens the bandgap to 4.95 eV, downshifts the valence band, and introduces defect states, collectively suppressing p-type conductivity and reducing off-state leakage current. Simultaneously, Lu3+ doping enriches oxygen vacancies, stabilizing ohmic conductive filaments in the on-state. This co-optimization of band structure and oxygen vacancies effectively enhances insulating properties in the high-resistance state and ohmic conductivity in the low-resistance state, leading to superior resistive switching performance with robust retention (>10^4 s). Our findings establish a fundamental strategy for tailoring electronic properties of doped HfZrO2 thin films toward high-performance RRAM applications.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4232-1
Polyanionic cathode materials are widely considered as potential cathode materials for sodium-ion batteries due to their strong three-dimensional framework and intrinsic thermal safety. Nevertheless, the limitation of the specific capacity and energy density hindered their application, which can be ascribed to the common reliance of single-electron redox reaction of the transition metal. By realizing the reversible double redox reaction of vanadium-based and manganese-based polyanion cathodes, researchers have successfully opened up a new way to break through the long-term performance limitations. Recent studies disclose that vanadium and manganese-based polyanionic cathodes exhibit the possibility of realizing a reversible double-redox reaction, which opened up new avenues to overcome the capacity dilemma. However, many fundamental issues remain unclear, including insufficient structural stability at high operating voltages, irreversible structural evolution induced by sodium extraction, sluggish electronic and ionic transport kinetics, and Jahn–Teller distortion. Therefore, it is imperative to summarize recent work in order to clarify the pathway for future investigation. In this review, the key challenges associated with the activation of the double-redox reaction are outlined, followed by the realization and regulation of the double-redox reaction in polyanionic cathode materials. A systematic summary of recent studies is performed for both vanadium and manganese-based compounds, which could contribute to the fundamental understanding of the double-redox reaction mechanism. Combined with the modification strategy and future perspective, this review provides insights into the rational design of polyanionic cathodes with a reversible double-redox reaction. It also offers insights into the development of high-energy-density cathode materials for next-generation sodium-ion batteries.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4114-5
The precise and controllable synthesis of one-dimensional (1D) and two-dimensional (2D) heterostructures, coupled with the manipulation of their atomic and electronic configurations, is of paramount significance. However, due to the synthetic challenges associated with graphyne (GY) materials, their integration into 1D/2D heterostructures remains considerably difficult. Herein, we demonstrate a post-synthetic intercalation strategy for tellurium onto Ag(111), enabling the controllable fabrication of 1D-GY-nanowire/2D-AgTe-monolayers heterostructures. Scanning-probe microscopies are employed to characterize morphological evolution during the intercalation process. Scanning tunneling spectroscopy results confirm that AgTe monolayer intercalation induces interfacial decoupling of the graphyne nanowires. Density functional theory calculations demonstrate that work function-driven Fermi level modulation via interfacial charge engineering assigns the 1D-GY-nanowire/2D-AgTe-monolayers heterostructures as type-I heterostructures. Our work not only significantly advances the fundamental understanding of interfacial interactions in 1D/2D heterostructures but also presents a scalable strategy for designing heterostructures with tailored electronic functionalities, thereby opening new avenues for applications in advanced nanoelectronics and optoelectronic devices.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3691-9
Near-infrared (NIR) spectroscopy has significantly advanced NIR light sources, yet creating NIR emitters with optimal luminescence properties, high thermal stability, and adjustable emission peaks remains a critical challenge for future smart NIR devices. Here, we introduce a chemical unit cosubstitution strategy by incorporating Ca2+ and Sn4+ ions into the garnet structure. Through this approach, Y3−yCayGa4.95−ySnyO12:0.05Cr3+ (y = 0–1) phosphors were developed by modulating the A&C ligands, resulting in emission centers ranging from 708 to 768 nm. The modified local environment of Cr3+ accounts for the increased light intensity (2.71 times) and broadening observed. Furthermore, this study investigated the impact of varying Cr3+ concentrations (Y2.6Ca0.4Ga4.6−xSn0.4O12:xCr3+) on the production of high-performance phosphors. Compared with Y3Ga4.93O12:0.07Cr3+, the optimized phosphor exhibited exceptional external quantum efficiency (EQE = 34.96%). The luminescence enhancement is attributed to an increase in radiative transitions caused by octahedral Jahn-Teller distortion, whereas the notable thermal stability (91.3% at 423 K) is attributed to the presence of weak electron-phonon coupling (EPC) and oxygen vacancy (OV) defects. Finally, by combining it with a 450 nm blue LED chip, we constructed a near-infrared phosphor-converted LED (NIR pc-LED) device with superior electroluminescence efficiency (18.8% @ 100 mA), increasing the ultralow quenching rate (< 5% intensity loss after 30 days of operation) and demonstrating remarkable performance in plant lighting applications.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3553-7
Gesture interaction has emerged as a highly effective interface for intelligent human-computer interaction, attributed to its intuitive interaction modality and multi-dimensional control capabilities. However, traditional gesture interaction devices often depend on predefined encoding rules, which substantially limit interaction efficiency and degrade user experience. This study introduces an innovative intelligent finger ring interaction system based on a triboelectric nanogenerator utilizing PDMS/SrTiO3 composite thin film (PS-TENG). The system maps freehand writing gestures directly to textual information input, thereby eliminating the need for complex gesture encoding schemes and offering a user-friendly, low-learning-curve input method. By integrating a deep learning model, the system achieves recognition accuracies of 98.21% for English letters, 96.87% for Arabic numerals, and 96.44% for Chinese characters. Furthermore, it supports secure and encrypted data transmission and enables wireless interaction for gaming control. These findings indicate that the intelligent finger ring interaction system possesses significant potential for practical applications in information input and wireless control.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3666-2
Light-emitting electrochemical cells (LECs) are promising for low-cost, solution-processed display and lighting applications, yet achieving high efficiency and color purity remains challenging. Here, we report two ionic multi-resonance (MR) emitters with narrowband blue emission for high-color-purity LECs. By covalently bonding an imidazolium functional group into a boron/nitrogen-doped polycyclic skeleton, the emitters retain the narrowband emission and high photoluminescence quantum yield (PLQY) of the MR core while gaining ionic character. The design exploits two types of nitrogen atoms in the imidazolium unit: the pyrrolic N at the 1-position forms a para-B-π-N linkage, elevating excited-state energy levels and blue-shifting emission; the pyridinic N at the 3-position provides a quaternization site, yielding intrinsically ionic emitters compatible with ionic hosts. The emitters exhibit blue emission with narrow full-width at half-maximum of 26–27 nm and high PLQYs of 95%–97% in solid-state films. LECs based on these emitters achieve narrowband blue electroluminescence with CIE coordinates of (0.12, 0.26) and a maximum external quantum efficiency (EQE) of 4.6%, representing the first narrowband blue LECs based on intrinsically ionic MR emitters. This work demonstrates a viable molecular design strategy for high-color-purity LECs, addressing the long-standing trade-off between efficiency and color purity in this technology.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3706-3
Aprotic lithium-oxygen (Li-O2) batteries are severely limited by slow cathode reaction kinetics and large polarization. Herein, we design and prepare a Mott-Schottky catalyst by uniformly embedding ultrafine Ru nanoparticles on nitrogen-doped carbon (Ru@NC) nanoflakes to accelerate oxygen redox kinetics of Li-O2 batteries. The Mott-Schottky effect of Ru@NC drives spontaneous electron rearrangement in the NC matrix and induces a strong built-in electric field at heterointerfaces, which accelerates the activation and conversion of oxygen intermediates. The obtained Ru@NC possesses rich Mott-Schottky heterointerfaces and defective carbon structures, which provide extensive adsorption and nucleation sites. More importantly, Ru@NC manifests moderate affinity for the intermediate LiO2, inducing formation of unique nanosheet-like Li2O2 with low Li2O2/cathode interfacial impedance, which further enhances oxidation kinetics. These enable the Li-O2 battery with Ru@NC to deliver a remarkably reduced polarization of 0.89 V, superior rate performance, and prolonged lifespan of over 200 cycles. This work will provide valuable guidelines for engineering advanced electrocatalysts for high-performance Li-O2 batteries and beyond.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3686-6
Fused silica (SiO2) exhibits exceptional thermal stability and dielectric properties, making it an attractive material for aerospace and military applications. However, its relatively poor mechanical performance has limited its widespread practical utilization. This study proposed an innovative approach to fabricate SiO2-hexagonal boron nitride (hBN) composite ceramics via spark plasma sintering (SPS), leveraging the high-temperature phase transformation of cubic boron nitride (cBN) to introduce randomly oriented hBN as a reinforcing phase within the SiO2 matrix. The randomly oriented hBN nanoplates allow cracks to propagate along stronger grain boundaries, rather than along weaker interlayers of hBN, significantly improving the overall strength and fracture toughness of the composite. The maximum flexural strength and fracture toughness achieved are 183.4 MPa and 2.06 MPa m1/2 respectively, which are 3.6 times and 4 times that of fused SiO2. Concurrently, the composites exhibit low dielectric constants (ε = 3.58–3.69) and dielectric losses (tan δ < 0.0087) at 1 MHz. This work successfully enhanced the mechanical performance of fused SiO2 while preserving its excellent dielectric characteristics, opening new possibilities for its potential applications in advanced structural and functional fields.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3598-1
Embedding a dielectric layer between as-synthesized graphene nanoribbons (GNRs) and metal surfaces represents a powerful strategy to achieve electronic decoupling, thereby enabling the extraction of these ribbons' intrinsic electrical properties. Although several reports have documented dielectric intercalation between GNRs and metal substrates, studies on Ag(111) substrates are limited. Here, we demonstrate a semiconducting AgTe monolayer intercalation method to achieve electronic decoupling between as-synthesized GNRs and an Ag(111) substrate. Using low-temperature scanning tunneling microscopy, we directly observed the AgTe intercalation process at the GNR/Ag(111) interface. By combining scanning tunneling spectroscopy and density functional theory calculations, we elucidate the critical role of AgTe monolayer intercalation in reducing the interaction between as-synthesized GNRs and the Ag(111) substrate and observe the near-intrinsic electrical properties of the GNRs. Our findings offer a practical and effective strategy for intercalating AgTe monolayers between carbon-based nanomaterials and Ag(111) substrates, facilitating the unambiguous characterization of the near-intrinsic electronic properties of these materials.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3670-7
Proton exchange membrane fuel cells (PEMFCs) are a promising sustainable energy conversion technology due to their environmental friendliness and high efficiency. However, the sluggish kinetics of the four-electron oxygen reduction reaction (ORR) necessitate cathode catalysts requiring over five times the amount of precious metal Pt compared to the anode, limiting widespread PEMFC application. The U.S. Department of Energy emphasizes developing non-precious metal-based catalysts as cost-effective alternatives. Transition metal single atoms (Mn, Co, Cu) anchored on nitrogen-doped carbon (M–N–C) have been developed as efficient ORR electrocatalysts, but most exhibit excellent performance only in alkaline media. The typical MN4 planar coordination renders the central metal vulnerable to hydrogen ion attack, challenging activity and durability in acidic media. Recent studies propose that axial-N coordination enhances stability of atomically dispersed Fe sites for acidic ORR by creating a barrier to Fe dissolution. The induced square-pyramidal crystal field diminishes spin polarization in dz2, dxz, and dyz orbitals, enhancing electronic delocalization of the Fe atom, allowing adsorbed O2 to maintain a low-energy triplet ground state, facilitating activation and reduction. Wang and coworkers constructed a novel curved-surface Fe–N–C (CS Fe/N–C) catalyst with FeN4 single atoms distributed within graphitized multilayered nanoprotrusions on 2D carbon layers. The nanoprotrusions have a mean diameter of ~10 nm and protrude ~4 nm. The curved regions exhibit a high Fe site density of ~1.6 No. nm−2, with 97.6% located deep in the fourth layer, contrasting with lower and more random distribution in planar regions and 2D Fe/N–C. This distribution aligns with iron atom diffusion from core to outer layers during pyrolysis.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3503-9
This correction addresses an image misuse in the original publication (Sci China Mater, 2025, 68(6): 2095, DOI: 10.1007/s40843-025-3311-6). Specifically, a fluorescent image in Fig. 4d, depicting live/dead cells after treatment with MPDA@TMZ without laser irradiation, was erroneously presented. The corrected Fig. 4 is provided, and the authors confirm that the results and conclusions of the original paper remain unaffected. The correction ensures the integrity of the reported data, particularly the cell viability and apoptosis assays. The study focuses on mesoporous bowl-shaped polydopamine (MPDA) nanoparticles co-loaded with temozolomide (TMZ) and indocyanine green (ICG) for synergistic glioblastoma therapy. The corrected figure includes CLSM images of G422 cells after incubation with various formulations (ICG, sPDA@ICG, mPDA@ICG, MPDA@ICG), cell viability curves, quantitative fluorescence intensity, live/dead staining, and apoptosis quantification. Statistical significance is denoted as ****p < 0.01. The correction maintains the scientific validity of the findings, which demonstrate the potential of MPDA-based nanoplatforms for combined chemo-photothermal therapy.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3761-7
Ruthenium-based materials, including metallic Ru and RuO2, are promising electrocatalysts for electrochemical water splitting (EWS) due to their high activity for both hydrogen evolution reaction (HER) and oxygen evolution reaction (OER). However, their practical application is hindered by the relatively strong adsorption of reaction intermediates on Ru surfaces and the oxidative dissolution of RuO2 under operating conditions. This review provides a comprehensive overview of recent progress and challenges in Ru-based electrocatalysts for EWS. We first summarize the fundamentals of EWS, including reaction mechanisms and activity descriptors. Then, we detail typical synthesis methods such as hydrothermal/solvothermal syntheses, organic ligand-assisted syntheses, pyrolysis, acid etching, cation exchange, and molten salt-assisted syntheses. Subsequently, we focus on enhancement strategies, including alloying, doping, structure design, interface engineering, single-atom catalyst design, high-entropy alloy design, phase engineering, and defect engineering, with typical examples illustrating structure-property correlations. Finally, we address remaining challenges and future prospects for the development of efficient and durable Ru-based electrocatalysts for sustainable hydrogen production.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3780-3
Real-time health monitoring and ongoing evaluation of physiological conditions are becoming increasingly vital for the advancement of future medical diagnostics and personalized healthcare solutions. Given that certain illnesses necessitate prompt and accessible detection methods, wearable chemical sensors have garnered considerable interest for their capability to monitor health through physiological signals and chemical indicators. This review delivers a thorough examination of recent developments in four primary categories of wearable chemical sensors: biosensors, humidity sensors, gas sensors, and ion sensors. We explore the representative materials, device structures, operating mechanisms, and various application scenarios for each type of sensor. By investigating the latest innovations in these technologies, we aim to provide a detailed overview of the current research landscape, highlight existing challenges, and present potential future directions of wearable chemical sensors in healthcare monitoring.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3919-0
Nuclear energy is critical for sustainable economic development and achieving carbon neutrality. With only about 6.14 million tons of terrestrial uranium, sufficient for ~70 years of global nuclear power plant operation, the recovery of uranium from seawater and spent fuel is essential for long-term nuclear fuel supply. The ocean contains approximately 4.5 billion tons of uranium, which could sustain nuclear power for ~2000 years if efficiently extracted. However, seawater uranium extraction faces significant challenges due to the extremely low uranium concentration (~3.3 ppb), high concentrations of competing ions, natural organic matter, and marine biofouling. This perspective reviews representative laboratory advances, including sulfonated covalent organic frameworks (S-COF) achieving a sorption capacity of 31.5 mg/(g·day) with high selectivity, amidoxime-based organic cages with a capacity of 11.97 mg/g over 30 days, and a micro-redox reactor strategy that continuously regenerates binding sites. Electrochemical methods have also shown promise for converting soluble U(VI) to insoluble U(IV) oxides. Despite these advances, the transition from laboratory powders to durable marine materials remains problematic. Key gaps include the need for antibacterial properties, mechanical stability under wave action, cost competitiveness with terrestrial mining, and environmental safety of nanomaterials. Artificial intelligence (AI) is proposed to accelerate the design of high-performance, stable materials. This perspective emphasizes the necessity for interdisciplinary research to bridge the gap between bench-scale innovations and practical ocean deployment.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3697-8
Multi-site coupling is a promising strategy for developing highly efficient and CO-resistant hydrogen oxidation reaction (HOR) catalysts for proton exchange membrane fuel cells (PEMFCs). However, designing multifunctional synergistic schemes for single-atom sites remains a significant challenge. Herein, we propose a dual-template-confined oxophilic engineering strategy to construct well-dispersed iridium-nickel (IrNi) atomic dimers adjacent to IrNi nanoclusters on porous nitrogen-doped carbon (IrNi Dimer/NC1.8-PNC). The paired IrNi dimer features an asymmetric Ir-N3 configuration coordinated with heteroatomic Ni-N3O via an N-bridge. Remarkably, IrNi Dimer/NC1.8-PNC exhibits a ~23-fold enhancement in mass activity (4.36 A mg−1 Ir at 20 mV) and 5-fold longer stability compared to benchmarking Pt/C toward HOR, while achieving a high rated power density of 1.18 W cm−2 in PEMFC anode applications. Furthermore, IrNi Dimer/NC1.8-PNC demonstrates superior CO tolerance over monometallic Ir and Pt/C in both half-cell and full-cell devices. Combined experimental and density functional theory studies reveal that oxophilic Ni modulates the electronic environment of Ir through alloying and dimer interactions, thereby enhancing HOR activity. Importantly, the asymmetric IrNi dimer enables efficient CO* and OH* co-adsorption while facilitating CO2* desorption, synergistically mitigating CO poisoning and improving atom utilization efficiency. This work provides a design strategy and fundamental insights for multi-site synergistic catalysts in PEMFC anodes.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3702-0
Construction of metal-mediated redox sites is an appealing approach to enhance photocatalytic CO2 reduction coupled with H2O oxidation. However, conventional static redox sites generally lack spatiotemporal matching during reaction processes due to the constraints of rigid structure and the linear scaling relationship of adsorbed species. Herein, an alkanolamine-Ir synergistic system was developed, where flexible monoethanolamine (MEA) molecules function as molecular ferries to selectively adsorb CO2 via carbamate formation, while adjacent Ir nanoparticles (NPs) serve as H spillover hubs that relay protons, creating spatiotemporal adaptability that synchronizes CO2 reduction and water oxidation. In addition, time-resolved in situ spectroscopy directly captures the rapid transformation of carbamate intermediates concurrent with sustained IrOOH intermediates formation. Microkinetic modeling further demonstrates that the MEA-Ir modified system (M-Ir/ACN) creates interconnected H spillover networks between Ir NPs and MEA, facilitating efficient proton transport that drives *COOH formation with a favorable thermodynamic energy. As a result, the M-Ir/ACN achieves a 20-fold increase in CO production compared to the pristine sample while maintaining high stability throughout 45 h of continuous operation. This study presents that flexible molecular ferries boost CO2 adsorption, and deciphers how flexible molecular-metal synergy directs the trafficking of CO2-derived intermediates toward highly efficient CO2 photoreduction.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3678-1
Reed membrane, a natural cellulosic material traditionally used in musical instruments, holds promise in flexible electronics due to its abundance, low cost, and excellent biocompatibility. However, its native form contains water-soluble ions and lipid-soluble waxes that hinder performance in acoustic and electronics by compromising electrical insulation and mechanical stability. Here, supercritical fluid superposition purification (SCSP-WA) is introduced, which utilizes supercritical CO2 with water and acetone as bipolar co-solvents to selectively remove these impurities. Post-SCSP-WA treatment, the reed membrane exhibits significant enhancements in mechanical strength and electrical insulation, achieving a 4-fold increase in elongation at break, improved tensile strength and Young’s modulus, and a 98.5% reduction in leakage current, all while maintaining low and stable capacitance. These improvements stem from the restructuring of the fibrous network into a porous, interconnected microstructure. Material characterization (X-ray photoelectron spectroscopy (XPS), Fourier-transform infrared spectroscopy (FTIR), and scanning electron microscopy (SEM)) confirmed the effective removal of magnesium and waxy functional groups, along with enhanced fiber crosslinking. Cytotoxicity tests further validated the biocompatibility of the SCSP-WA-treated membranes. This environmentally sustainable approach expands the potential of reed membranes in flexible bioelectronics and bio-integrated acoustic systems.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3728-5
Biological intelligence achieves exceptional energy efficiency and environmental adaptability, exemplified by the human brain's ~20 W resting power consumption. A key strategy is the use of multi-ions as signal carriers for transduction and processing. Iontronics, employing ions instead of electrons, offer a promising route to low-energy, heat-dissipation-free devices for memory, sensing, and neuromorphic computing. However, conventional iontronics require external voltage bias to drive ion motion, complicating miniaturization and integration. Here, we highlight a recent breakthrough by Guo et al. reporting a bias-free iontronic memory sensor ('memsensor') that operates by controlling surface ion migration. The device couples vanadium dioxide (VO2) with a low-work-function indium (In) patch. Upon immersion in NaCl solution, In3+ ions generated electrochemically within the Debye length are driven by the intrinsic surface electric field to diffuse into the VO2 surface, inducing an insulator-to-metal phase transition and a measurable, non-volatile change in surface conductance. This conductance state correlates with NaCl concentration and can be reversibly restored by H2O2 treatment. The memsensor emulates the gustatory plasticity of C. elegans, mimicking the response dynamics of ASEL and ASER neurons. In a proof-of-concept, a model boat equipped with the memsensor exhibits adaptive chemotaxis: after 'starvation' training in high NaCl concentration, it avoids high-concentration zones; conversely, after training in low concentration, it migrates toward high-concentration zones. This work demonstrates a bias-free strategy for programmable memory and sensing, potentially advancing autonomous microsystems and bioinspired electronics.
Chinese Journal of Environmental Engineering•2026•DOI: 10.12030/j.cjee.202506020
The rotary kiln roasting of lepidolite for lithium extraction faces challenges of unstable lithium conversion rates and high energy consumption. To address this, a multi-objective optimization method coupling improved neural network simulation with a multi-objective genetic algorithm was proposed, targeting the synergistic optimization of lithium conversion rate (TRLi) and natural gas consumption intensity (EIng). Using long-term industrial time-series data of batching parameters and kiln operating variables, back-propagation (BP) neural network and its particle swarm optimization (PSO) improved variant were developed to model TRLi and EIng. The PSO-BP model demonstrated superior accuracy in capturing the complex nonlinear relationships, reducing mean absolute percentage errors (MAPE) to 0.278 and 0.284 for TRLi and EIng, respectively. Subsequently, the non-dominated sorting genetic algorithm II (NSGA-II) was employed to construct a multi-objective optimization model, yielding a Pareto-optimal set of process parameters that maximize TRLi and minimize EIng. The results revealed that under NSGA-II optimized conditions, TRLi could be stabilized between 82.45% and 87.96%, an average increase of 3.61 percentage points over baseline operations, while EIng could be reduced to 53.7 m3 per ton of clinker. For an annual processing capacity of 3.2×105 tons of lepidolite concentrate and sulfate mixture, this corresponds to an additional 127.1 tons of lithium metal recovery, a reduction of 1,964,912 m3 in natural gas consumption, and a decrease of 3,763.84 tons in CO2 emissions annually. This study provides theoretical and technical support for the green, high-quality, and low-carbon supply of critical raw materials for the lithium battery new energy industry.
Journal of Fuel Chemistry and Technology•2026•DOI: 10.1016/S1872-5813(25)60617-7
The global energy landscape is undergoing a profound transformation, with wind energy gaining increasing prominence due to its clean and renewable nature. However, as installed wind power capacity expands, disposal of waste wind turbine blades (WWTB) has emerged as a significant challenge. These blades are predominantly composed of epoxy resin (EP) polymers, carbon fibers (CFs), and glass fibers (GFs). Improper disposal exacerbates environmental concerns and leads to loss of valuable resources, particularly carbon-based materials. Pyrolysis technology, a versatile and environmentally sustainable method for resource recovery, has garnered considerable attention for WWTB disposal. This work presents a comprehensive review of pyrolytic recycling of WWTB, focusing on principles and classifications of pyrolysis technology, key factors influencing the pyrolysis process, as well as pyrolysis methods, equipment, products, and their applications. Through in-depth analysis of current research, this review identifies critical unresolved issues and provides a forward-looking perspective on emerging research trends. The review highlights that pyrolysis can effectively recover glass fibers and carbon fibers with mechanical property retention depending on process conditions, and that catalytic pyrolysis can enhance the quality of recovered products. Economic analysis indicates that collaborative disposal methods can improve cost-effectiveness. Future research should focus on optimizing process parameters for large-scale industrial application and developing more efficient catalysts to improve product selectivity and fiber quality.
Journal of Fuel Chemistry and Technology•2026•DOI: 10.3724/2097-213X.2025.JFCT.0024
This study investigates the thermochemical conversion behavior of microalgae pellets in a molten hydroxide salt (80% NaOH-20% Na2CO3) system and its influence on hydrogen production. By comparing temperature evolution, gas release characteristics, and structural evolution of pellets with and without molten salt, and integrating char alkalization experiments, the regulatory mechanism of molten salt on reaction pathways and hydrogen production was systematically analyzed. Results indicate that molten salt significantly enhances internal heat transfer efficiency, achieving a central heating rate of 177 °C/s, effectively alleviating thermal hysteresis. Concurrently, molten salt promotes pore development through penetration, erosion, and catalytic effects, resulting in a porosity increase of 53.2%–104.3% after 10 s of reaction. Conversion efficiency is markedly improved, with the dominant reaction pathway shifting to char alkalization after only 70 s. Furthermore, when heating rate is increased above 600 °C, hydrogen yield from char alkalization improves more significantly, primarily attributed to the synergistic promotion of molten salt catalysis and rapid heating on volatiles reforming. This study provides a theoretical foundation for understanding efficient hydrogen production from biomass in molten hydroxide salts.
Journal of Fuel Chemistry and Technology•2026•DOI: 10.3724/2097-213X.2025.JFCT.0020
Ammonia borane (AB) is a promising hydrogen storage material due to its low molecular weight and high hydrogen content. The development of low-cost, high-activity catalysts for AB hydrolysis is critical for industrialization. In this work, CuO nanosheets (CuO NS) were synthesized via a solvothermal method under alkaline conditions using anhydrous copper chloride as precursor. Subsequently, low-temperature phosphating converted CuO NS into Cu3P@CuO nanosheets (Cu3P@CuO NS). The morphology and structure were characterized by SEM, TEM, AFM, XRD, and XPS. The catalytic performance for AB hydrolysis was evaluated, revealing that at a phosphating ratio of m(CuO NS)/m(NaH2PO2)=1 (0.1 g each), Cu3P@CuO NS exhibited excellent activity with a TOF of 57.23 min−1 and an apparent activation energy of 44.31 kJ/mol. The reaction followed pseudo-first-order kinetics with respect to catalyst amount and pseudo-zero-order kinetics with respect to AB concentration. The superior performance is attributed to the abundant active sites exposed by the nanosheet structure. Given the extremely low cost, Cu3P@CuO NS is a promising alternative to noble metal catalysts for hydrogen generation from AB.
Environmental Chemistry•2026•DOI: 10.7524/j.issn.0254-6108.2024100805
A fluorescent metal-organic framework (MOF), PCN-128, was synthesized via a solvothermal method using zirconium tetrachloride (ZrCl4) as the metal source and tetrakis[4-(4'-carboxyphenyl)phenyl]ethylene (H4ETTC) as the organic linker. The resulting material exhibited regular morphology, high crystallinity, strong luminescence, and good stability. PCN-128 was employed as a fluorescent probe for the trace detection of malachite green (MG), a banned veterinary drug, in aquaculture water and freshwater fish tissue. The probe demonstrated exceptional selectivity toward MG among 13 veterinary drugs and robust anti-interference performance against 16 anions, 16 cations, and 12 additional veterinary drugs. The method achieved a broad linear detection range from 0.0 to 7.0 μmol·L−1 with a limit of detection (LOD) of 2.73 nmol·L−1. Spike-and-recovery experiments in three aquaculture water samples and one freshwater fish sample yielded recoveries between 89.80% and 113.7%, with relative standard deviations (RSD) not exceeding 2.59%. These results confirm that the developed method is accurate, reliable, and suitable for routine monitoring of MG residues in aquaculture water and aquatic products, addressing a critical gap in food safety surveillance.
Environmental Chemistry•2026•DOI: 10.7524/j.issn.0254-6108.2025112601
The pervasive presence of tetracycline (TC) in aquatic environments poses significant ecological and public health risks. This study reports the synthesis of MIL-101-Bim, a covalently modified metal-organic framework (MOF), via a pre-modification strategy that introduces formyl groups into the MIL-101(Cr) framework (MIL-101-CHO), followed by Schiff base condensation and NaBH4 reduction to graft benzimidazole moieties. Powder X-ray diffraction (PXRD) and scanning electron microscopy (SEM) confirmed retention of the parent MIL-101(Cr) topology. Fourier-transform infrared (FT-IR) spectroscopy verified successful functionalization. 1H NMR analysis of digested MIL-101-Bim revealed a benzimidazole modification degree of 41%, with 32% of formyl groups reduced to hydroxymethyl and 27% remaining unreacted. Thermogravimetric analysis (TGA) demonstrated good thermal stability. Nitrogen adsorption-desorption measurements showed a specific surface area of 1361 m2·g−1 and pore sizes ranging from 1 to 2.3 nm. Adsorption kinetics for TC on both materials followed a pseudo-second-order model, and isotherm data fitted the Langmuir model. The theoretical maximum adsorption capacity of MIL-101-Bim for TC was 86.31 mg·g−1, significantly higher than that of MIL-101-CHO (39.56 mg·g−1). Zeta potential measurements indicated optimal adsorption performance at pH 5–8. X-ray photoelectron spectroscopy (XPS) provided evidence of hydrogen bond formation during adsorption. The adsorption mechanism involves both physical adsorption (pore filling, electrostatic interactions, π-π stacking) and chemical adsorption (weak hydrogen bonding). Regeneration studies showed that MIL-101-Bim retained an adsorption capacity of 46.93 mg·g−1 after five cycles, demonstrating promising reusability.
Journal of Environmental Engineering Technology•2026•DOI: 10.13205/j.hjgc.202604009
Biological nitrogen removal in wastewater treatment plants (WWTPs) is often limited by insufficient influent carbon sources, necessitating external carbon addition to enhance denitrification. Conventional single carbon sources, such as sodium acetate, frequently fail to meet the metabolic demands of complex microbial communities, compromising nitrogen removal efficiency and stability. Composite carbon sources, by providing multiple electron donors, can improve metabolic cooperation among microorganisms, yet their underlying microbial mechanisms remain insufficiently understood. In this study, activated sludge from a municipal WWTP was used to investigate the microbial mechanisms of composite carbon sources during denitrification. Batch denitrification experiments were conducted in combination with metagenomic and metatranscriptomic analyses to systematically characterize microbial community structure and functional gene expression under different carbon source conditions. Results showed that, compared with sodium acetate as the single carbon source, the composite carbon source system (sodium acetate: sodium succinate: ethanol = 2:1:3) increased the denitrification rate from (6.822 ± 0.141) mg/(L·h) to (8.370 ± 0.186) mg/(L·h), representing a 22.7% improvement, while reducing N2O accumulation by approximately 55%. Metagenomic analysis revealed that Ottowia, Rubrivivax, Thauera, and Zoogloea were the dominant denitrifying genera. Metatranscriptomic results further demonstrated that the composite carbon sources significantly upregulated the transcription of key denitrification genes, with nirS, norB, and nosZ increasing by 37.8%, 27.4%, and 48.6%, respectively. In addition, the composite carbon sources promoted complementary carbon metabolic strategies among different microbial communities, enhancing electron donor supply and improving denitrification efficiency. These findings indicate that composite carbon sources synergistically enhance denitrification performance through regulation of functional gene transcription in complex microbial communities, providing a theoretical basis for carbon source optimization in WWTPs.
Journal of Environmental Engineering Technology•2026•DOI: 10.13205/j.hjgc.202604004
Tire wear particles (TWPs) are emerging pollutants and constitute the dominant type of microplastics (MPs) in urban stormwater runoff, accounting for up to 90% of MPs in some cases. They are characterized by small size, high mobility, complex composition, and significant toxicity. Current research on TWPs remains fragmented, lacking a comprehensive understanding of their environmental behaviors and pollution control in aquatic systems. This review systematically analyzes the enrichment and vectoring roles of TWPs for coexisting pollutants, and their environmental fate, including ecotoxicological impacts, detection methodologies, release of intrinsic additives, and aggregation and sedimentation behaviors. Drawing on insights from other microplastic studies, the paper explores control technologies across the pollution pathway—source, transport, and terminal treatment—and proposes feasible management strategies. Key findings indicate that TWPs can adsorb heavy metals and organic contaminants, with adsorption capacities influenced by aging processes. Their aggregation is governed by solution chemistry, with critical coagulation concentrations varying with ionic strength and pH. The release of additives such as zinc and benzothiazoles is significant, posing ecological risks. Future research should focus on real-water aggregation mechanisms, additive release under natural conditions, long-term performance of treatment facilities like constructed wetlands under TWPs stress, enzymatic degradation pathways, and integration of AI, big data, and IoT for cost-effective detection and risk modeling. This review provides a scientific basis for developing targeted pollution control measures for TWPs in aquatic environments.
Journal of Environmental Engineering Technology•2026•DOI: 10.13205/j.hjgc.202604003
Emerging contaminants (ECs) in wastewater from urban transportation infrastructure remain poorly characterized. This study employed high-resolution mass spectrometry (HRMS)-based non-target screening to systematically identify the composition and spatial distribution of ECs in wastewater from three functional zones of a metro maintenance depot: storeroom (S1), office/residential area (S2), and final discharge outlet (S3). A total of 417 contaminants were detected, spanning eight categories including industrial materials, pharmaceuticals, pesticides, and natural products. Among these, 48 substances were identified with Level 1 confidence via spectral matching. Pesticides exhibited the highest detection frequency and concentration levels, representing the primary contaminant load. Semi-quantitative concentration heatmaps of 24 pesticides revealed significant spatial variation: S2 showed the highest number and concentration of contaminants, reflecting inputs from landscaping and vector control; S1 and S3 showed lower levels, indicating dilution, migration, and attenuation. Representative pesticide bifenox displayed a clear concentration gradient (S2 > S1 > S3), suggesting transport mechanisms such as surface runoff, hydraulic transfer, and sorption. These findings underscore the complexity and diversity of EC sources in metro depot wastewater, highlight the need to prioritize pesticides in regulatory management, and provide fundamental data for understanding EC environmental behavior and informing water environment risk assessment.
Journal of Environmental Engineering Technology•2026•DOI: 10.13205/j.hjgc.202604018
To address the issues of high air volume and unorganized emissions of waste gas in semi-steel vulcanization production lines, a combined approach of experimental testing and numerical simulation was employed to study the diffusion characteristics of VOCs-containing waste gas and the air volume of the collection system. The structure of the semi-enclosed hood was optimized, and pipe diameters were adjusted to achieve negative pressure balance, enabling efficient waste gas collection. Results showed that toluene concentration distributions from numerical simulation were largely consistent with experimental measurements, with a maximum average error of -3.9%. Existing hood inlet wind speeds ranged from 0.04 to 0.2 m/s, indicating uneven distribution. Under calm wind conditions, toluene diffusion in enclosed and semi-enclosed hoods was similar, with concentrations of 248 mg/m³ and 115 mg/m³, respectively, and deposition observed in trenches. For a single vulcanizer, at a design air volume of 2700 m³/h, the enclosed hood achieved a toluene concentration of 80 mg/m³ versus 63 mg/m³ for the semi-enclosed hood, demonstrating superior capture of hot fumes. Optimizing the semi-enclosed hood with soft curtains and a height of 1200 mm, at a total design air volume of 1.0×10⁵ m³/h, yielded an average hood inlet velocity of 0.35 m/s but still uneven distribution. Adding 900 mm gradual reducers and adjusting branch pipe diameters resulted in total air volume deviations of -0.44% and 0.38% for branches I and II, respectively, with individual hood deviations below 10%. This achieved negative pressure balance, effective collection, and improved workshop hygiene.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3930-3
Methylammonium lead tribromide (MAPbBr3) single crystals (SCs) are promising for room-temperature gamma-ray and X-ray detection, but scaling their size often compromises crystal quality. Here, we report a strategic precursor stoichiometry engineering approach to grow inch-sized, high-quality MAPbBr3 SCs via a constant-temperature evaporation method. We show that constructing a robust electrical double layer through organic cation modulation effectively stabilizes the colloidal precursor. This is achieved by synergistically suppressing MA+ deprotonation while promoting MA+ adsorption as counterions on the [PbBrn]2−n complexes, which collectively strengthens interparticle repulsion and raises the nucleation barrier. This multifaceted approach yields MAPbBr3 SCs with lateral dimensions up to 2 inches and an exceptional X-ray diffraction rocking curve full width at half maximum (FWHM) of 0.0093° at the (002) face. Consequently, the SCs enable spectroscopic-grade gamma-ray detection, achieving energy resolutions (ER) of 8.4% for the 57Co source (122 keV) and 11.1% for the 137Cs source (662 keV), along with a high X-ray sensitivity of 1.65 × 10^4 μC Gy−1 cm−2. This work paves the way for the practical application of MAPbBr3 SCs in high-performance gamma-ray and X-ray detection.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3872-3
Flexoelectricity, the generation of electrical polarization in response to a strain gradient, is a fundamental electromechanical coupling mechanism that has gained significant attention due to its enhanced effects in ferroelectric materials, which exhibit large dielectric permittivities. This review comprehensively examines the classical theories and recent advances in flexoelectricity, with a primary focus on ferroelectric materials. We discuss the advantages and limitations of various characterization techniques, computational models for determining flexoelectric coefficients, and the mechanisms that enhance flexoelectricity in different ferroelectric systems. Furthermore, we explore the applications of flexoelectricity in devices, highlighting its potential to overcome the dimensional and stability limitations of piezoelectricity, particularly at the micro- and nanoscale. The review concludes by outlining future research directions, aiming to provide valuable insights for advancing both the fundamental science of flexoelectricity and the development of high-performance practical devices.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3891-5
Alloys with low thermal expansion are vital for precision components in aerospace, cryogenics, optics, and electronics, where dimensional stability under thermal cycling is essential. As these applications face harsher mechanical and thermal conditions, materials must offer not only low thermal expansion but also high strength and ductility. Achieving all three remains difficult, as their underlying microstructural requirements often conflict. Here, we present a medium-entropy alloy, Fe54Ni34Co6Ti3Al3 (at.%), designed to overcome this challenge through tailored precipitation engineering. The alloy forms coherent L12 nanoprecipitates that not only provide substantial precipitation strengthening but also modulate the composition of the face-centered cubic matrix. This tuning induces a low coefficient of thermal expansion and metastability in the matrix, enabling transformation-induced plasticity that enhances ductility and strain hardening. As a result, the alloy achieves a tensile yield strength of (1036±21) MPa, uniform elongation of 18.4%±1.1%, and a coefficient of thermal expansion of 5.8×10−6 °C−1. This work demonstrates a precipitation-driven pathway to reconcile strength, ductility, and thermal stability, offering a new strategy for designing multifunctional structural materials for advanced engineering environments.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3508-3
High-entropy carbides (HECs) are promising candidates for ultrahigh-temperature applications, but their oxidation resistance at temperatures above 2000 °C remains a critical bottleneck. Here, we report a laser-assisted compositional engineering strategy to develop non-equimolar (Zr0.2Ti0.2Ta0.3Cr0.3)C HECs with superior oxidation resistance up to 2500 °C. Using a self-developed laser oxidation platform, we first screened equimolar (Zr0.25Ti0.25Ta0.25Me0.25)C (Me = Hf, W, Nb, Cr, V, Mo) samples at 2500 °C, identifying Cr as a critical element for forming protective oxide scales. Systematic tuning of Cr content revealed that the optimal composition (Zr0.2Ti0.2Ta0.3Cr0.3)C exhibits a dense, crack-free oxide layer composed of molten (Cr, Me)(Ta, Me)O4 and (Ta, Me)2O5 phases embedded with (Zr, Me)O2 crystals, which effectively seal defects and suppress oxygen diffusion. The synergistic effects of these phases lead to a significant reduction in mass gain and oxide layer thickness compared to equimolar counterparts. This work provides a new pathway for designing HECs with long-life oxidation resistance at 2500 °C, enabling their use in extreme environments such as hypersonic vehicle leading edges and rocket nozzle throats.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4054-x
The sluggish kinetics and high onset potentials of the oxygen evolution reaction (OER) at the anode of alkaline water/seawater electrolyzers limit overall energy efficiency. Noble-metal oxides like RuO2 are active but suffer from high cost, agglomeration, and dissolution under oxidizing potentials, especially in chloride-rich electrolytes where competing chloride oxidation reaction (ClOR) occurs. Here, we report a mild two-step dry-wet milling strategy to achieve throughout lattice doping of F− into MnO2 (F-MnO2) and subsequent anchoring of atomically dispersed Ru via Ru–O/F hybrid bonds. The strengthened Mn 3d–O/F 2p hybridization and negative charge shielding of surface F− enhance OER activity/selectivity relative to ClOR and impart superior Cl− tolerance and corrosion resistance. The resulting F-Ru-MnO2-TH electrocatalyst exhibits overpotentials of 280 mV and 200 mV at 10 mA cm−2 in alkaline water and simulated seawater, respectively. It retains ~100% of initial activity after 200 h continuous operation in alkaline media and >95% after 300 h in simulated seawater, significantly outperforming Ru-MnO2 and commercial RuO2. This work provides a scalable route to durable, high-performance OER catalysts for seawater electrolysis.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-4043-3
In-plane InAs nanowires and nanowire networks are promising platforms for electronics, optoelectronics, and topological quantum computing due to their small electron effective mass, narrow bandgap, high electron mobility, strong spin-orbit coupling, and large Landé g factor. However, their selective area growth on CMOS-compatible group-IV substrates remains challenging. Here, we report the selective area growth of high-quality in-plane InAs nanowires and nanowire networks on Ge(111) substrates by molecular-beam epitaxy. Conventional selective-area epitaxy fails to simultaneously achieve good selectivity and continuity. To overcome this, we developed a metal-sown, single-indium-source two-step growth method, which attains both selectivity and continuity but yields nanowires with rough surfaces and lengths below 10 μm. We then introduced an upgraded metal-sown, dual-indium-source two-step growth method, successfully fabricating in-plane InAs nanowires and nanowire networks with smooth surface morphology and lengths exceeding 60 μm. By optimizing the As beam equivalent pressure, overgrowth at network junctions is effectively suppressed, resulting in uniform nanowire networks. High-resolution transmission electron microscopy and Raman spectroscopy confirm the high-quality single-crystalline nature and pure zinc-blende structure of the nanowires and networks. This work establishes a foundation for fabricating high-quality in-plane InAs/superconductor hybrid nanowires and nanowire networks on Ge substrates.
New Carbon Materials•2026•DOI: 10.1016/S1872-5805(26)61097-9
Silicon/carbon (Si/C) composites are promising anode materials for high-energy-density lithium-ion batteries (LIBs) because they mitigate the severe volume expansion and poor electrical conductivity of pure silicon anodes. This review systematically summarizes the state-of-the-art preparation methods for Si/C composites, including ball milling, spray drying, electrostatic spinning, and chemical vapor deposition (CVD). Structural engineering strategies, such as carbon precursor coating, silicon-precursor-based wet chemistry, and silicon surface modification, are critically assessed for their effectiveness in enhancing electrical conductivity, buffering volume changes, and improving overall electrochemical performance. The review highlights that while Si offers a theoretical capacity of 4200 mAh g−1, far exceeding graphite's 372 mAh g−1, its practical application is hindered by capacity fading and low initial coulombic efficiency. The integration of carbon matrices not only provides mechanical flexibility but also facilitates electron transport. Key performance metrics from recent studies, including specific capacities exceeding 1000 mAh g−1 and improved cycling stability over hundreds of cycles, are discussed. The review also addresses the challenges of scalable production and cost-effectiveness, emphasizing the need for optimized precursor selection and processing parameters. Future research directions are proposed, focusing on the rational design of hierarchical structures and the development of novel binders to further enhance the long-term durability of Si/C anodes. This comprehensive overview serves as a valuable resource for researchers and engineers aiming to advance the commercialization of high-energy-density LIBs.
New Carbon Materials•2026•DOI: 10.1016/S1872-5805(26)61109-2
Silicon-carbon (Si/C) composites are promising high-capacity anode materials for next-generation lithium-ion batteries, but their commercialization is hindered by severe volume expansion during cycling. We report a chemical vapor deposition method using the pyrolysis of silane, in which ultrafine nano-Si enters a porous carbon framework to produce kilogram-scale Si/C composites. The carbon framework with abundant micropores (~1.9 nm) confines the amorphous silicon and accommodates the volume changes of nano-Si during both lithiation and de-lithiation. The resulting Si/C composites have a 56.76% Si content and have a specific capacity of 2179 mAh g–1, a high initial Coulombic efficiency (ICE) of 93.5%, and a low specific surface area (1.32 m2 g–1). In addition to the nanoconfinement effect, the median particle size (D50, 7.3-13.0 μm) of the carbon framework was shown to control the mechanical strength, coating uniformity and Li+ transport. A D50 of 8.2 μm endows the Si/C composites with outstanding comprehensive properties. They have an excellent rate performance with a 97.0% retention at 3 C relative to 0.1 C, show only minor variations in ICE difference at 60 ℃/-20 ℃ compared with room temperature, and have a low expansion of 35.8% from the delithiated to the lithiated state. The composite was then mixed with graphite to prepare the anode, which was then paired with an NCM523 cathode to assemble pouch cells. The pouch cell retained 87.46% of its initial capacity after 1000 cycles at 1 C. Because of the low expansion of the electrode, the material avoids structural degradation during cycling and thus has an excellent long-term stability.
New Carbon Materials•2026•DOI: 10.1016/S1872-5805(26)61113-4
Porous pyrolytic carbon (PPyC) serves as the buffer layer in TRi-structural ISOtropic (TRISO) fuel particles, providing storage for fission gases, preventing damage to outer layers, and absorbing stresses caused by fuel-kernel swelling. However, the changes of PPyC micro- and meso-structure at high temperatures remain insufficiently understood. In this study, PPyC fabricated by chemical vapor deposition was heat-treated from 1200 to 1600 °C and characterized across atomic-to-mesoscopic scales. Results show that the structure changes with temperature with a transition at approximately 1400 °C. Below 1400 °C, a decrease in Raman ID/IG ratio, narrowing of the graphite diffraction peak, and increased sp2 hybridization indicate progressive ordering associated with defect redistribution. Concurrent decreases in true density and mesopore volume, together with increased closed porosity, are consistent with partial conversion of open pores into closed pores. Above 1400 °C, increased ID/IG ratio, broadening of the diffraction peak near the rhombohedral graphite (101) reflection, and transition regions between crystalline and amorphous material observed by TEM indicate increasing structural disorder. Meanwhile, initially distinct PPyC particle boundaries blur and merge into broad, plate-like domains. Subsequent decrease in closed porosity and increase in mesopore surface area are consistent with partial connection of closed pores to the open-pore network. This work shows that intrinsic coupling between atomic-scale structural change and mesoscale pore connectivity provides a basis for assessing high-temperature structural stability of PPyC in TRISO fuel particles.
Chinese Journal of Environmental Engineering•2026•DOI: 10.12030/j.cjee.202507094
To address land waste and poor bearing capacity from sludge landfill, this study developed a composite solidifying agent using loess, fly ash, desulfurized gypsum, and cement. Orthogonal experiments combined strength testing, SEM/XRD microanalysis, permeability and heavy metal leaching tests, and cost accounting. Results show that cement significantly enhances early and mid-term strength, while loess dominates later strength development. Optimal fly ash and desulfurized gypsum content is 12% each. The optimal mix ratio (loess:fly ash:desulfurized gypsum:cement:sludge) is 0.1:0.12:0.12:0.08:1. The solidified matrix forms dense structures via C-S-H gel and ettringite (Aft), effectively controlling heavy metal leaching at low cost. This work enables solid waste resource utilization and provides robust support for sludge solidification engineering.
Chinese Journal of Environmental Engineering•2026•DOI: 10.12030/j.cjee.202508084
Granite mining areas generate large quantities of abandoned soil and rock powder, posing environmental challenges and resource waste. This study investigates the synergistic preparation of porous ceramsite from two typical granite solid wastes—weathered granite soil (high Al2O3) and granite waste rock powder (high SiO2)—with waste glass powder as a fluxing agent. Single-factor experiments and response surface methodology (Box-Behnken) were employed to optimize the process and elucidate the pore-forming mechanism. The optimal conditions were a mass ratio of weathered granite soil:granite waste rock powder:waste glass powder of 5.6:2.4:2, a preheating temperature of 480 °C, a sintering time of 32 min, and a sintering temperature of 1140 °C. Under these conditions, the resulting porous ceramsite achieved a compressive strength of 1.74 MPa. The ceramsite effectively immobilized heavy metals, ensuring environmental safety. This research demonstrates that multi-component complementarity and multi-factor coupling optimization can produce porous ceramsite with favorable mechanical properties and stable pore structure, providing a theoretical basis and technical support for high-value utilization of granite solid waste.
Environmental Chemistry•2026•DOI: 10.7524/j.issn.0254-6108.2025010604
Groundwater is a vital component of Beijing's water supply, yet elevated sulfide concentrations restrict its utilization. This study employed principal component analysis (PCA) and absolute principal component-multiple linear regression (APCS-MLR) to apportion sulfide sources and quantify their contributions in the middle and lower reaches of the Chaobai-Wenyu alluvial-proluvial fan. Sulfur and oxygen isotopes (δ34S and δ18O) were used to identify sulfate sources and discern anthropogenic versus natural influences. Results showed that high-sulfide groundwater predominantly occurred in Na-type water, with sulfide accumulation from desulphidation widespread, particularly in Shunyi and within the first, second, and third aquifers, independent of wet/dry seasons. Isotopic analysis indicated sulfate mainly originated from evaporite dissolution, and sulfides from desulphidation were of geological background origin. PCA extracted four principal components: leaching-enrichment (F1), natural dissolution of iron-manganese oxides (F2), water desulphidation (F3), and CaF2 dissolution equilibrium (F4). F3 exhibited the highest factor loading for sulfide (0.418), while other components had small negative loadings. APCS-MLR revealed F3 contributed 21.32% of sulfide, while indigenous sources (e.g., acid-volatile sulfide dissolution, elemental sulfur disproportionation, geothermal activity, well casing materials) contributed 63.66%. Overall, sulfide in the study area is a geological background factor, with limited anthropogenic influence.
Environmental Chemistry•2026•DOI: 10.7524/j.issn.0254-6108.2025010201
The Guanzhong region, traversed by the Wei River Basin, is one of the most industrially, agriculturally, and medically advanced and densely populated areas in Northwest China, has seen increasing attention paid to the pollution of perfluoroalkyl substances (PFASs) in its surface water environment. This study systematically investigated the pollution characteristics of PFASs in the surface water of this region and their ecological and health risks. By optimizing the online solid-phase extraction-liquid chromatography-tandem quadrupole mass spectrometry (Online SPE-LC/MS/MS), efficient detection of 19 PFASs was achieved, with the method detection limits ranging from 0.2 ng·L−1 to 0.3 ng·L−1, linear correlation coefficients all ≥ 0.990, and spiked recoveries between 75.2% and 130.0%. Monitoring data indicated that PFBA, PFPeA, PFHxA and PFOS, short-chain perfluorinated compounds, were the main pollutants in this region, with high detection frequencies and concentrations, but the overall content was lower than that in most areas of China. The concentrations of PFASs in surface water showed significant seasonal variations, with the highest concentrations during the dry season (∑19PFASs:126.1 — 2584.3 ng·L−1), followed by the normal season (∑19PFASs:3.5—3567.6 ng·L−1), and the lowest during the wet season (∑19PFASs:26.3—294.6 ng·L−1). Ecological risk assessment showed that, except for PFDoDA in the dry season, the ecological risk quotient (RQ) of all other PFASs was < 1. Although the water of the Wei River is not used as direct drinking water, health risk assessment indicated that all PFASs posed low risks, with only PFOA and PFOS showing potential risks (HR > 0.1) to adults and children at some sites during dry/normal seasons. This study provides a scientific basis for PFASs pollution control in the Wei River Basin.
Environmental Chemistry•2026•DOI: 10.7524/j.issn.0254-6108.2025010701
This study investigated the long-term effects of biochar application on physicochemical properties and microplastic accumulation in aeolian sandy soils, based on a field experiment established in 2014. After seven years of mulched cultivation, soil samples were collected from 0–30 cm and 30–60 cm depths. Biochar application significantly increased soil porosity and available nitrogen, phosphorus, and potassium contents, while reducing bulk density. At a biochar rate of 126.00 t·hm−2, soil water content was significantly reduced. Microplastic abundance averaged 3459.57 pieces·kg−1 in the 0–30 cm layer, with the highest abundance at 126.00 t·hm−2; in the 30–60 cm layer, average abundance was 3163.50 pieces·kg−1, with the highest at 63.00 t·hm−2. Microplastics were predominantly transparent, film-shaped, and 0–0.5 mm in size. The results indicate that biochar application significantly increased microplastic abundance in aeolian sandy soils, providing insights into microplastic adsorption and enrichment in agricultural ecosystems. Further research is needed to elucidate underlying mechanisms.
Journal of Environmental Engineering Technology•2026•DOI: 10.13205/j.hjgc.202605005
Water quality prediction is essential for river basin management, yet existing models often struggle with non-stationary, noisy monitoring data. This study collected water quality data from two city-level control sections in southern China from December 2020 to June 2024, including eight indicators: water temperature, turbidity, pH, conductivity, dissolved oxygen (DO), ammonia nitrogen (NH4+-N), total phosphorus (TP), and permanganate index (CODMn). To predict four key indicators (DO, NH4+-N, TP, CODMn), we developed hybrid models combining seasonal trend decomposition (STD), Bayesian hyperparameter optimization, and either random forest (RF) or XGBoost. STD smoothed and denoised the data while extracting seasonal factors; Bayesian optimization tuned model hyperparameters. Evaluation showed that the STD-Bayesian-XGBoost model achieved smaller bias errors and higher prediction accuracy than STD-Bayesian-RF. Specifically, XGBoost reduced root mean square error (RMSE) by 15-20% across all four indicators and improved the coefficient of determination (R²) to above 0.90, compared to RF's 0.85-0.88. The models were validated on southern river data, but the methodology is generalizable to other climatic and hydrological settings. This work provides a technical reference for pollution reduction and carbon management in regional watersheds.
Journal of Environmental Engineering Technology•2026•DOI: 10.13205/j.hjgc.202605006
Military ecological and environmental protection is a critical component of national ecological and environmental protection. Military activities and operations, such as training and drills, weapons and equipment testing, and combat, are prone to triggering a series of ecological and environmental problems, including greenhouse gas emissions, deterioration of water resources and water quality, vegetation destruction, land degradation, and typical physical and chemical pollution, which have attracted extensive global attention. This study systematically analyzed the eco-environmental impacts of military activities on multiple environmental media (atmosphere, water, and soil) across different periods, and conducted pollution source tracing in multi-media and representative regions. It reviewed the current status of ecological and environmental protection technologies for the three major environmental media, i.e., atmosphere, water, and soil, and summarized the characteristics and constraints of military ecological and environmental research. Finally, it proposed the research trends and key development directions for military ecological and environmental protection from four dimensions: data monitoring and sharing, research and development of in-situ remediation technologies for military-civilian integrated combined pollution, green construction practices for military facilities, and optimization of management systems.
Journal of Environmental Engineering Technology•2026•DOI: 10.13205/j.hjgc.202605016
BiOX (X=Cl, Br, I) photocatalytic materials were synthesized via a chemical precipitation method. Their structures and properties were characterized using scanning electron microscopy, X-ray diffraction, X-ray photoelectron spectroscopy, nitrogen adsorption-desorption, and ultraviolet-visible diffuse reflectance spectroscopy. Results showed that BiOBr exhibits a flower-like nanomicrosphere structure composed of nanosheets, providing a more three-dimensional morphology, larger specific surface area, and moderate light absorption range, resulting in superior visible light absorption. Consequently, BiOBr demonstrated the best photocatalytic degradation of NO under xenon lamp irradiation. The study further investigated the effects of light intensity, NO flow rate, and oxygen presence on the NO degradation performance of BiOBr. Optimal NO removal rate of 58% was achieved under conditions of a light source distance of 15 cm, NO flow rate of 15 mL/min, and in the presence of oxygen. The degradation rate constant for BiOBr was 11×10⁻⁴ min⁻¹, significantly higher than that of BiOCl and BiOI. BiOBr also exhibited good reusability and stability. These findings provide an important experimental basis for the application of BiOBr in the photocatalytic degradation of NO.
The Chinese Journal of Process Engineering•2026•DOI: 10.12034/j.issn.1009-606X.225172
The increasing discharge of oily wastewater from oil extraction and anthropogenic activities necessitates the development of efficient oil-water separation technologies to safeguard ecological and environmental safety and ensure sustainable resource utilization. Membrane separation technology, owing to its high efficiency and operational convenience, has emerged as a viable solution for treating oily wastewater. To enhance the hydrophilic and oleophobic properties of hydrophobic separation membranes, this study employed polyvinylidene fluoride (PVDF) hydrophobic microfiltration membranes with robust mechanical properties as substrates. Through a biomimetic coating approach, dopamine (DA) was first polymerized to form polydopamine (PDA) on the membrane surface, which subsequently reacted with polyvinyl alcohol (PVA) to construct a dense hydrophilic layer, yielding modified membranes with hydrophilic/oleophobic surface characteristics. The morphology and chemical composition of the modified membranes were characterized using scanning electron microscopy (SEM), atomic force microscopy (AFM), Fourier transform infrared spectroscopy (FTIR), and X-ray photoelectron spectroscopy (XPS). Oil-water separation performance was comprehensively evaluated by measuring water contact angle, underwater oil contact angle, emulsion flux, and oil rejection. Under optimal conditions, the modified membrane M3 exhibited a pure water flux of 4893.2 ± 70.2 L/(m²·h), an emulsion flux of 2138.1 ± 29.4 L/(m²·h) for toluene-in-water emulsion, and an oil rejection of 98.5% ± 0.1%. Simulated fouling and regeneration tests using bovine serum albumin (BSA) solution demonstrated a flux recovery rate of 92.0% for M3, indicating excellent antifouling performance. Immersion tests in acid, alkali, and salt solutions confirmed the modified membrane's outstanding chemical stability. The designed PVDF modified membrane offers advantages of simplicity, environmental friendliness, and high efficiency, showing significant application potential in oil-water separation and providing a novel strategy for membrane development.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3993-y
Conventional liquid-phase in-situ synthesis of Cu-TiB2 composites often suffers from coarse and non-uniformly distributed reinforcements, stemming from insufficient understanding and control over the in-situ nucleation and growth mechanisms of TiB2 particles. This study introduces a novel melt dispersion-turbulent mixing (MDTM) in-situ reaction technology to fabricate high-performance Cu-TiB2 composites. The MDTM strategy synergistically refines reaction micro-regions by reducing the initial melt droplet size via melt dispersion while enhancing solute convection via turbulence, promoting high-density nucleation and refinement of TiB2 particles. Based on turbulence characteristics and in-situ reaction kinetics, we optimized the melt disperser parameters and established a quantitative model linking particle size to disperser rotation speed and reactant solute concentration. It was found that disperser rotation speed governs three distinct nucleation and growth mechanisms for TiB2 particles. Low-density nucleation at low disperser rotation speeds (0–50 r/min) leads to coarse TiB2 particles. At medium rotation speeds (100–150 r/min), the refinement of micro-regions in the dual-melt reaction achieves high-density TiB2 nucleation. Conversely, at high rotation speeds (150–200 r/min), intense turbulence weakens the nucleation driving force and induces TiB2 particle coarsening. This work provides new insights into liquid-phase in-situ reaction mechanisms and offers a novel, controllable route for fabricating high-performance micro/nano particle-reinforced metal matrix composites.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3933-9
The global cold chain consumes vast amounts of energy and emits greenhouse gases, while many regions lack proper refrigeration. To address this, we developed a dual-layer electrospun membrane (PZ-PML) for energy-free fruit preservation. The top PVDF-HFP/ZIF-8 layer offers 97.64% solar reflectance and 92.5% mid-infrared emissivity, providing 70 W/m2 radiative cooling. The bottom PAN/MIL-101/LiCl layer, with 2.18 g/g water uptake at 80% RH, delivers ~156 W/m2 evaporative cooling, lowering surface temperature by 6.1 °C under ~400 W/m2 irradiation. The membrane also shows ≥99% antibacterial efficiency against E. coli and S. aureus. Applied to strawberries, it reduced dehydration to 20.2% after 9 days, compared to 68.2% and 74.4% in controls. Additionally, it demonstrates durability, superhydrophobicity, and UV stability. This scalable solution offers energy-free fruit cooling, reducing postharvest losses while maintaining quality and safety.
Chinese Journal of Environmental Engineering•2026•DOI: 10.12030/j.cjee.202509026
Rocky desertification poses a severe threat to ecosystem function in karst regions of southern China. This study, conducted in Jianghua Yao Autonomous County, Hunan Province, investigated the adaptive responses of Paulownia fortunei to rocky desertification habitats and its subsequent effects on soil properties. Leaf structural and physiological parameters were measured, alongside soil physicochemical properties. Results demonstrated that P. fortunei enhanced its adaptability through increased leaf thickness (upper epidermis +50%, total +27.38%), palisade tissue thickness (+22.45%), elevated chlorophyll a (+3.55 mg·g−1) and chlorophyll b (+1.39 mg·g−1) contents, and upregulated activities of superoxide dismutase, catalase, and peroxidase. Planting P. fortunei significantly improved soil structure and fertility: soil bulk density decreased by 0.57 g·cm−3, total porosity increased by 2.41% (0–5 cm) and 3.35% (5–10 cm), field water capacity rose by 18.63% and 18.87%, capillary porosity increased by 11.45% and 14.19%, and soil organic matter content improved from Grade IV to Grade II. These findings indicate a synergistic 'plant adaptation–soil improvement' feedback mechanism, highlighting the potential of P. fortunei for ecological restoration of rocky desertification areas.
Journal of Fuel Chemistry and Technology•2026•DOI: 10.1016/S1872-5813(25)60618-9
Aromatic hydrocarbons, essential chemical feedstocks for fuels, synthetic fibers, and pharmaceuticals, are predominantly derived from petroleum refining. The catalytic conversion of lignin, a major lignocellulosic component, offers a renewable route to these chemicals. This review systematically examines the influence of pyrolysis methods, catalysts, and reaction conditions on the catalytic pyrolysis of lignin to aromatic hydrocarbons. Key parameters include catalyst acidity and pore structure, which govern selectivity and yield. Reaction temperature, catalyst-to-lignin ratio, and residence time critically affect product distribution. The review outlines catalytic mechanisms, such as deoxygenation, cracking, and aromatization, and highlights the role of zeolite catalysts, particularly HZSM-5, in enhancing monocyclic aromatic hydrocarbon yields. Metal modification (e.g., Fe, Ni, Ga) and pretreatment strategies (e.g., torrefaction) are discussed for improving efficiency. Challenges remain in catalyst deactivation due to coking and the complexity of lignin structure. Future research directions include developing robust catalysts, optimizing reactor designs, and integrating processes for industrial viability. This review provides theoretical and technological guidance for advancing lignin-to-aromatics conversion.
Chinese Journal of Environmental Engineering•2026•DOI: 10.12030/j.cjee.202509095
Biotrickling filtration (BTF) is a promising technology for treating volatile organic compounds (VOCs), but its application to hydrophobic alkanes like isohexane is hindered by mass transfer limitations, low degradation efficiency, and high operational costs. To address these bottlenecks, this study developed composite fillers by incorporating biochars derived from coffee grounds (CG), coconut shells (CS), corn cobs (CC), and activated carbon (AC) into a polyvinyl alcohol-sodium alginate (PVA-SA) hydrogel matrix. The fillers were systematically characterized for water retention, pore structure, surface functional groups, crystalline phase, and acid-base resistance. Adsorption capacity, biofilm formation, and isohexane degradation were evaluated using the strain Rhodococcus ruber ZYH-ZY. Among the composites, CG@PVA-SA exhibited superior performance: water retention of 358 mg·g−1 (vs. 280 mg·g−1 for control), enhanced mesoporosity (specific surface area 4.77 m2·g−1, pore volume 11.46 cm3·kg−1, 10–30% higher than control), and robust acid-base stability (mass loss 21.37% at pH 2 and 31.98% at pH 10). Its saturated adsorption capacity reached 201.02 mg·kg−1 (vs. 114.24 mg·kg−1 for control), and it promoted bacterial colonization with a survival rate of 79.0% (vs. 37.2% for control). Static degradation tests showed 96.59% removal of 10 μL isohexane within 24 h. The abundant polar functional groups and suitable mesoporous structure of coffee ground biochar synergized with the PVA-SA matrix, enhancing water retention, mass transfer, and microbial colonization, thereby significantly improving isohexane purification. CG@PVA-SA is an ideal filler for BTF treatment of alkane VOCs, offering a cost-effective and efficient solution for industrial VOC control.
Chinese Journal of Environmental Engineering•2026•DOI: 10.12030/j.cjee.202510004
Ammonium salt crystallization-induced blockage of the regenerative heat exchanger in regenerative thermal oxidizers (RTOs) remains a critical operational challenge, particularly in pharmaceutical applications where NH4Cl constitutes up to 70% of the fouling deposits. This study employs computational fluid dynamics (CFD) to systematically simulate six purging configurations, varying injection angle and pipe arrangement, and quantifies purging effectiveness via a novel evaluation method based on characteristic observation planes. Using the Realizable k-ε turbulence model coupled with a porous media model, we analyze the velocity distribution and low-velocity failure zones at the gas chamber–regenerator interface. Results demonstrate that a single-pipe 45° oblique injection achieves the highest effective purging area of 57.6%, a 35.7% improvement over conventional horizontal purging. Increasing pipe diameter significantly enhances flow uniformity, yielding an efficiency gain of approximately 40%, outperforming mere increases in gas velocity. A synergistic optimization strategy is proposed, prioritizing high-performance purging structures with coordinated parameter tuning. The recommended configuration—single-pipe 45° injection, 280 mm pipe diameter, and 14 m·s−1 gas velocity—achieves 88.2% purging efficiency without additional fan power, representing a 45.6% improvement over conventional modes. These findings provide a theoretical basis and engineering solution for RTO purging system design and operational optimization.
Chinese Journal of Environmental Engineering•2026•DOI: 10.12030/j.cjee.202509072
Accurate identification of pollutant emission source parameters is critical for effective pollution response. This study evaluates the performance of genetic algorithm (GA), Nelder-Mead simplex (NM), particle swarm optimization (PSO), and their coupled variants on multi-dimensional, multi-extremum benchmark functions, and develops a source parameter inversion technique integrating PSO-NM with a Gaussian dispersion model. Validation via sulfur hexafluoride (SF6) single-point and multi-point release experiments demonstrates that PSO-NM achieves mean values closest to theoretical optima on Shubert, Hartmann, and Shekel functions, with superior stability and precision. In single-point source experiments, the relative deviation of source strength (Q) inversion ranges from -27.1% to 38.5%, with positional errors below 10 m, indicating robust convergence and repeatability. Multi-point source inversion exhibits stability across two scenarios but with reduced accuracy compared to single-point cases. When source strength is unknown, inversion accuracy for low-release sources (relative deviation 37.3%-70.4%) surpasses that for high-release sources; when position is unknown, positional deviations generally remain below 50 m, with low-release sources yielding better x0 deviations (-1.6 to 8.2 m) but slightly worse y0, z0, and distance parameters. Inversion errors primarily stem from meteorological non-stationarity, inter-source interference, algorithmic local optima, low-concentration measurement noise, and model assumptions. Future improvements may incorporate real-time meteorological correction and source-specific constraints to enhance accuracy and robustness in complex scenarios. The findings provide technical support for precise source tracing, monitoring, and refined management of pollutant emissions at microscale in industrial parks and enterprises.
Environmental Chemistry•2026•DOI: 10.7524/j.issn.0254-6108.2025081103
Nitrous acid (HONO) is a critical precursor of hydroxyl radicals (·OH) in the atmosphere, influencing oxidative capacity and secondary pollutant formation. However, model simulations often underestimate HONO concentrations, and its role in nitrate formation remains unclear. This study investigates a typical winter haze episode in Guangzhou (January 2021, peak PM2.5: 243.0 μg·m−3) using observational data and a box model to quantify HONO sources and assess their impact on ·OH and particulate nitrate. HONO concentrations increased from (1.0±1.0) μg·m−3 during clean periods to (9.2±3.8) μg·m−3 during polluted periods, while nitrate rose from (6.4±3.4) to (43.3±20.0) μg·m−3 (6.8-fold). Incorporating seven additional HONO sources improved simulated daytime HONO from (0.3±0.1) to (6.5±2.3) μg·m−3, matching observations. Source apportionment showed direct vehicle emissions dominated (49.7%), followed by heterogeneous photosensitized reaction of NO2 on aerosol surfaces (23.0%), ground surface reaction (10.7%), and nitrate photolysis (8.7%). With optimized HONO, simulated daytime ·OH increased from (0.6±0.3)×10^6 to (1.5±0.8)×10^6 molec·cm−3 (1.2-fold), and nitrate production via ·OH+NO2 increased from (3.4±1.2) to (15.3±8.5) μg·m−3·h−1 (3.5-fold). The simulated-to-observed nitrate ratio improved from 21% to 81%. Sensitivity tests indicated that setting nitrate photolysis enhancement to 100 times gaseous nitric acid yielded better HONO and nitrate simulations. This study underscores the importance of refining HONO sources for accurate simulation of atmospheric oxidation and nitrate formation, aiding pollution control strategies.
Journal of Environmental Engineering Technology•2026•DOI: 10.13205/j.hjgc.202606004
To identify optimal watershed remediation pathways under environmental and economic dimensions, an integrated environmental-economic impact assessment framework combining life cycle assessment (LCA) and life cycle costing (LCC) based on openLCA was established, using 1 m³ of treated wastewater as the functional unit. This framework comprehensively evaluated the environmental impacts and economic costs of three ecological buffer measures—constructed wetlands, ecological intercepting ditches, and vegetation restoration projects—in non-point source pollution control. The results indicated that constructed wetlands offer the optimal environmental-economic profile, featuring the lowest comprehensive cost (¥1.01 yuan/m³) and the lowest load across most environmental impact categories, with only slightly higher land resource consumption intensity. Ecological intercepting ditches exhibited higher impacts in areas such as metal resource consumption due to the use of rebars and base fertilizer inputs, resulting in a moderate comprehensive cost (¥1.57 yuan/m³). Vegetation restoration projects incurred the highest comprehensive cost (¥61.14 yuan/m³) and produced the most significant environmental impacts, with elevated indicators such as human carcinogenic toxicity. This primarily stemmed from the extensive use of concrete grass pavers and base fertilizer in rural river sections. These findings provide quantitative references for environmental-economic integrated evaluation and decision-making regarding ecological buffer zone engineering schemes in similar watersheds.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3986-2
Organic/molecular ferroelectrics exhibiting spontaneous polarization have attracted increasing attention due to their flexibility, light weight, low-temperature processability, environmental friendliness, and biocompatibility. Among them, organic donor-acceptor cocrystals, self-assembled from two or more components, offer new insights into ferroelectricity. This review systematically examines recent progress in organic donor-acceptor cocrystal ferroelectrics, focusing on microscopic origins of ferroelectricity, structure modulation strategies, and underlying mechanisms. Ferroelectric origin mechanisms, including intermolecular charge transfer, proton transfer, and order-disorder transitions, are analyzed in detail. Structure-property relationships in crystal engineering are summarized, and recent advances in theoretical simulations, experimental characterization techniques, and practical applications are introduced. Finally, current challenges and future research perspectives are outlined. The review highlights that weak intermolecular interactions often lead to low Curie temperatures (Tc), limiting practical applications. Strategies to enhance Tc involve introducing stronger molecular interactions to increase transition energy barriers. Notably, room-temperature ferroelectricity in organic cocrystals has been achieved, as demonstrated by Wiscons et al. (Angew Chem Int Ed, 2018, 57: 9044–9047). The review underscores the potential of organic cocrystal ferroelectrics for flexible and wearable electronics, while addressing the need for higher Tc and robust switching performance.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3813-y
Sonothermal therapy (STT) is an emerging noninvasive energy-based modality that leverages deeply penetrating ultrasound to activate engineered nanomaterials, converting acoustic energy into localized heat. This review systematically delineates four coupling routes between ultrasound and nanomaterials: thermoelastic, thermoviscous, and plasmonic heating; nonradiative recombination and acousto-electric coupling; thermal vibrations in carbon and conjugated systems; and cavitation heating. Design principles for STT nanomaterials are established, with guidance for pre-, intra-, and post-treatment phases, and linked to applications in tumor ablation, wound infection and healing, and implant-associated infection and regeneration. Hybrid platforms integrating STT with sonodynamic or sonocatalytic reactive oxygen species generation are discussed. Key translational barriers include the lack of quantitative and standardized metrics for conversion efficiency, the need for scalable and reproducible manufacturing aligned with Good Manufacturing Practice, limited in vivo biodistribution and biosafety data, and weak links from preclinical models to clinical endpoints. An integrated framework connecting mechanism, material design, and therapeutic outcome is proposed to guide the development of next-generation STT nanoplatforms for treatment-resistant disease.
Journal of Environmental Engineering Technology•2026•DOI: 10.13205/j.hjgc.202606021
To provide a theoretical basis for energy-saving combustion of regenerative thermal oxidizers (RTOs), this study analyzes energy nodes during RTO operation, refines heat balance accounting, and establishes an overall energy system. Taking a three-chamber RTO as the research object, the enthalpy of exhaust gas at different stages is calculated, and a whole-process heat balance model is developed to systematically analyze exhaust gas preheating, combustion, heat recovery, and heat loss transfer. An improved energy accounting method is proposed to address dynamic heat exchange inside heat accumulators, coupling of multiple gas streams, and boundary heat loss under complex conditions. The longitudinal temperature distribution function of heat accumulators is introduced to overcome difficulties in heat accounting within the accumulator chamber. A thermodynamic system covering 11 key internal energy nodes is constructed. Combined with design characteristics of RTO operation across industries, the application scope of the overall energy system is analyzed; equilibrium terms can be adjusted according to actual conditions, ensuring wide applicability. Validation via an RTO energy system for a glove manufacturing plant demonstrates that outlet temperature prediction accuracy improves from 14.3% to 2.8%, providing a theoretical foundation for future intelligent energy-saving combustion research.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3810-y
Amorphous metal-organic frameworks (aMOFs), with abundant defects and unsaturated coordination sites, are ideal precursors for investigating electrocatalytic reconstruction mechanisms. However, systematic understanding of how different modulation strategies affect reconstruction pathways and final active species remains lacking. Here, an amorphous MOF constructed from 3,4,9,10-pyrene-tetracarboxylic acid (PTA) serves as a controllable precursor to compare doping and alloying effects on structural reconstruction and oxygen evolution reaction (OER) performance. Doping promotes preferential reconstruction into Fe-rich (oxy)hydroxides with more exposed active sites, whereas alloying yields Fe-Co mixed (oxy)hydroxides with limited site exposure. The doped system FeCo0.05-PTA exhibits outstanding OER activity in alkaline conditions, with overpotentials of 208 and 248 mV at 50 and 100 mA cm−2, respectively, and a low Tafel slope of 36.2 mV dec−1. In situ Fourier transform infrared spectroscopy (FTIR) captures the OOH* intermediate, confirming the adsorbate evolution mechanism. Density functional theory (DFT) calculations show the doped system has the lowest free-energy barrier (ΔG = 0.59 eV) at the rate-determining step. This study underscores the decisive role of precursor design, elucidates distinct effects of doping and alloying on reconstruction pathways and final properties of amorphous MOF-derived (oxy)hydroxides, and provides insights for designing related electrocatalysts.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3858-8
High-quality β-Ga2O3 membranes are pivotal for fabricating high-performance memristive devices. Here, vertical Ag/β-Ga2O3/Pt memristors built on high-crystalline-quality β-Ga2O3 membranes via lattice epitaxy engineering and a sacrificial-layer-assisted exfoliation strategy are reported. The resulting β-Ga2O3-based device demonstrates a high ON/OFF ratio exceeding 10^8, low SET/RESET voltages of 0.13 V/−0.11 V, low programming current of 10^-10 A, stable data retention beyond 4 × 10^4 s, and excellent subthreshold characteristics of ~0.47 mV/dec. Adjustable compliance current enables the coexistence of volatile and non-volatile switching modes. Additionally, the resistive switching versatility is predominantly governed by the migration of Ag ions, as supported by electrical characterizations and first-principles calculations. Furthermore, a β-Ga2O3 memristor-based circuit that functions as a reconfigurable and non-volatile exclusive OR (XOR) logic gate has been designed and simulated, enabling both image encryption/decryption and edge detection. This work not only demonstrates lattice-engineered, high-quality β-Ga2O3 membranes for fabricating advanced memristors but also extends their applicability to digital logic and reconfigurable image processing.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3880-8
Formaldehyde oxidation reaction (FOR) demonstrates significant potential in energy conversion and chemical synthesis, yet developing catalysts for efficient operation at high current densities remains a challenge. Herein, we fabricated a Cu/Cu2O heterostructure nanowire catalyst on copper foam (Cu/Cu2O@CF) via interface engineering and investigated its FOR performance. Electrochemical tests show that Cu/Cu2O@CF exhibits excellent activity: it achieves 100 mA cm−2 at an ultra-low potential of −0.05 V (vs. RHE), outperforming most reported catalysts. Notably, this catalyst overcomes the deactivation limitation of conventional Cu-based catalysts above 0.5 V, maintaining a current density of 735 mA cm−2 at 0.6 V with excellent stability during long-term electrolysis. SCN−-induced Cu0 poisoning experiments confirm that Cu/Cu2O@CF retains a Cu/Cu2O mixed structure at 0.6 V, where Cu0-Cu+ synergy dominates its high activity. Density functional theory (DFT) calculations reveal two key advantages of this structure: it weakens OH− adsorption to avoid active site occupation, and reduces C–H bond cleavage barriers while promoting H* combination into H2. Product analysis shows Faradaic efficiencies for formate and H2 production are both ~100%. When coupled with the hydrogen evolution reaction (HER), the system's hydrogen production energy consumption is as low as 0.57 kWh m−3 H2, much lower than traditional water electrolysis. This work elucidates the regulatory mechanism of interface engineering on the FOR performance of Cu-based catalysts, expands the application of Cu-based heterostructures in high-current FOR, and guides the development of industrial-grade electrocatalysts.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3934-1
Solar energy, a clean and abundant resource, can be stored as latent heat in solid-solid phase change materials (SSPCMs) and subsequently utilized, offering great potential for advancing passive thermal management technologies such as thermal camouflage. Conventional SSPCMs often require active heating for high-temperature conditions, leading to additional energy consumption. Moreover, their permanent crosslinked structures limit reprocessability and increase environmental burden. Herein, we present a lizard-skin-inspired, solar-thermal-responsive, and reprocessable SSPCM (FTSPCM) featuring a dual crosslinked structure composed of dynamic phenol–carbamate bonds and Fe3+@Tannic acid (TA) coordination. Polyethylene glycol (PEG) functions as the phase change segment, while TA introduces both reversible covalent crosslinking and photothermal responsiveness. The FTSPCM exhibits a high latent heat of 102.9 J g−1, excellent shape stability, and maintains its thermal performance after three reprocessing cycles at 120 °C. The Fe3+@TA coordination network enables strong near-infrared absorption and efficient solar-thermal conversion, achieving a surface temperature of 62 °C and a conversion efficiency of 96.85% under 2 Suns irradiation. This dual-function design allows the material to achieve passive thermal camouflage via latent heat release at low temperatures and solar-assisted photothermal heating at high temperatures. This work presents a sustainable strategy for developing reprocessable, solar-responsive SSPCMs, showcasing the distinctive advantages of tannic acid-derived polyphenol chemistry in constructing passive thermal management systems for energy-efficient thermal camouflage and solar-driven thermal energy storage.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3823-4
The global demand for chlorine gas continues to rise, driven by its indispensable role in chemical synthesis, disinfection, and wastewater treatment. Electrocatalytic chlorine evolution from seawater presents a promising alternative to the energy-intensive chlor-alkali process, yet it is hampered by the competing oxygen evolution reaction and the sluggish kinetics of chlorine evolution on conventional catalysts. Here, we report a novel hollow porous CoNiSe2/NiSe2 heterostructure nanosheet array synthesized via ion exchange and calcination, which exhibits exceptional catalytic activity and selectivity for the chlorine evolution reaction in acidic seawater-like electrolytes. The unique hollow porous morphology provides a high specific surface area, facilitating mass transport and exposing abundant active sites. Crucially, the heterointerface between CoNiSe2 and NiSe2 promotes d-p orbital hybridization between Co/Ni 3d and Se 4p states, which lowers the reaction energy barrier for chlorine evolution. The catalyst achieves a low overpotential of 108 mV to reach a current density of 100 mA cm−2 in 4.0 M NaCl acidic medium, with excellent stability and Cl2 selectivity. This work demonstrates the potential of non-noble metal selenides as efficient and durable catalysts for chlorine production, offering a pathway toward more sustainable chlor-alkali technology.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3943-y
Biodegradable polymers are promising for bioelectronic materials, yet simultaneously improving their mechanical, electrical, and optical performance remains a major challenge. Poly(3-hydroxybutyrate-co-4-hydroxyvalerate) (P34HB), a microbially synthesized polyhydroxyalkanoate (PHA), exhibits excellent biocompatibility and degradability but suffers from poor chain length control, limiting its functional performance. Here, we report a low-temperature, non-destructive supercritical ethyl alcohol-assisted polymerization (SEAP) strategy to enhance P34HB at the molecular level. Operating at 40 °C and 1500 psi, SEAP combines the permeability of supercritical CO2 with ethanol-mediated catalysis to promote in situ dehydration polymerization and efficiently remove impurities. Post-treatment, P34HB exhibits a 16% increase in number-average molecular weight, along with a record-high Young's modulus of 51.08 GPa and a 144% increase in elongation at break, overcoming the conventional trade-off between stiffness and ductility. Optical performance is also improved, with transmittance rising by 44% and refractive index increasing to 1.2. Material analyses confirm a higher ester group density and reduction of residual impurities. Electrical insulation is notably enhanced, with leakage current reduced by 50% to below 1 pA and reduced dielectric loss to 0.06. Cytotoxicity assays further verify excellent biocompatibility. This work establishes SEAP as a sustainable strategy for functionalizing P34HB, enabling its deployment in next-generation bioelectronics and flexible electronics.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3840-3
Tactile sensing for dexterous robotic hands is essential for achieving human-like precision in manipulation. However, current tactile sensors face challenges such as insufficient durability, limited coverage, and poor conformability to curved, jointed surfaces. This study presents a stretchable distributed tactile sensor array designed for dexterous robotic hands. The array comprises 18 sensing units distributed across the hand, incorporating quasi-homogeneous functional layers interconnected by crosslinked interpenetrating networks, and composite electrodes combining high conductivity with stretchability. This design yields a thin, soft, transparent, and stretchable sensor array that integrates seamlessly with a commercial dexterous hand. The sensor array exhibits high interlayer tensile strength, high sensitivity, low hysteresis, and excellent long-term reliability over 10,000 loading cycles. Experimental results demonstrate accurate detection of tactile force across the entire robotic hand during object grasping. Using convolutional neural network algorithms, the sensor array identifies different object types with 90.1% accuracy, with results displayed in real time on a digital twin interface. The proposed sensor array holds significant potential for embodied intelligence and robotics in adaptive grasping, safe manipulation, and remote teleoperation.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3900-8
Memristors, which leverage ion migration for resistance switching, offer breakthroughs in bionic perception, information security, and edge computing but face bottlenecks in functional integration and stability. Herein, we explore all-inorganic Cu3SbI6 nanocrystals (NCs) & PMMA composite memristors (Ag/PMMA&Cu3SbI6/ITO) regulated by NCs doping (0–15 wt%). The devices operate via electric field-induced Ag+ ion migration and conductive filament dynamics, where NCs act as local electric field enhancers. At a doping concentration of 4 wt%, stable bipolar switching (Ron/Roff > 2 × 10^3, cycling endurance > 700 cycles) enables the simulation of biological nociception/Pavlovian reflexes and the construction of basic logic gates. At 2 wt%, sparse NCs induce random filament formation for encryption key extraction, which integrates with 4 wt% logic gates to enable efficient encryption/decryption of text/image data. This work provides a strategy for designing multifunctional memristors by regulating ion transport through nanocrystal concentration, offering references for related functional integration and cross-disciplinary applications.
Chinese Journal of Environmental Engineering•2026•DOI: 10.12030/j.cjee.202509036
Algal-derived phosphorus (P) constitutes a significant fraction in eutrophic lakes, with particulate phosphorus (PP) serving as both a major internal P reservoir and a potential target for P resource recovery. This study proposed a chitosan-coupled electroflotation (CEF) technology for efficient enrichment and recovery of algal-derived P from high-algal water. Using Taihu Lake algae-laden water as the test medium, the effects of chitosan dosage and voltage on the enrichment of different P fractions were systematically evaluated. Results showed that the optimal P enrichment was achieved at a chitosan dosage of 15 mg·L−1, and higher voltages further enhanced the enrichment efficiency. Under optimal conditions, PP accounted for 83.57% of the enriched P, indicating a strong capability for particulate P capture. The mechanism involved chitosan-induced flocculation via charge neutralization and sweep flocculation, while higher voltages increased the positive charge density of chitosan molecules, enhancing charge neutralization and electroflotation. In P release experiments, open conditions significantly promoted the transformation of PP to dissolved P, whereas closed conditions inhibited this process. Additionally, chitosan's antibacterial action and physical retention effectively limited P release. Compared with conventional metal salt coagulants, this method avoids metal ion residues, offering high environmental safety and providing a green and feasible approach for the harmless disposal and resource utilization of algal-derived P in eutrophic lakes.
Chinese Journal of Environmental Engineering•2026•DOI: 10.12030/j.cjee.202505104
This study investigated the synergistic remediation of aged oil-contaminated soil collected from an oil well in Yanchang, northern Shaanxi, China, with an initial total petroleum hydrocarbon (TPH) concentration of 17.1 g·kg⁻¹, exceeding the second-class land use screening value (4,500 mg·kg⁻¹) by approximately 3.8-fold. Indigenous high-efficiency degrading strains were screened and a microbial consortium was constructed. Pot experiments were conducted to compare the TPH degradation efficiencies and soil property changes under plant, microbial, and combined plant-microbial remediation. The consortium MC-5 (SDB1:SDB2:SDB3:SDB4 = 1:1:0:3) exhibited the highest TPH degradation rate of 83.46% in liquid culture. In soil, combined remediation with ryegrass (Lolium perenne) achieved a TPH degradation rate of 60.93%, significantly higher than the control (CK) by 54.26 percentage points. The consortium also degraded recalcitrant resins and asphaltenes by 49.44%. The microbial consortium played a dominant role, contributing 63%–69% to TPH removal, whereas plant contribution was only 2%–12%, primarily in the later stage. Addition of rhamnolipid biosurfactant enhanced the combined remediation, increasing TPH degradation by 7.05 percentage points compared to non-amended treatments. These findings provide insights into the mechanisms of plant-microbial synergy and offer theoretical and practical guidance for bioremediation of petroleum-contaminated soils.
Chinese Journal of Environmental Engineering•2026•DOI: 10.12030/j.cjee.202510081
Electrochemical two-electron oxygen reduction (2e−ORR) for hydrogen peroxide (H2O2) synthesis faces challenges of low cathodic catalytic efficiency and complex catalyst preparation. This study prepared nitrogen-vacancy (Nv) rich carbon nitride via one-step pyrolysis, composited with carbon nanotubes (CNT), and loaded onto graphite felt (GF) to fabricate a non-precious metal gas diffusion electrode Nv-C3N4-CNT/GF. The electrode exhibited a three-dimensional fibrous skeleton with interconnected micro-nano hierarchical pores, facilitating efficient electron transport. Electrochemical impedance spectroscopy revealed a low charge transfer resistance of 13.26 Ω, indicating superior electrocatalytic activity and charge transfer efficiency. Single-factor experiments and response surface methodology (RSM) optimization determined optimal conditions: calcination temperature 300 °C, catalyst mass ratio 3:1, Nv-C3N4-CNT loading 0.1 g, current density 40 mA·cm−2, pH 7, and aeration rate 0.1 L·min−1. Under these conditions, H2O2 accumulation reached 1622.73 mg·L−1 after 90 min, which was 1.3 and 1.5 times higher than g-C3N4-CNT/GF and CNT/GF electrodes, respectively. Stability tests showed that after 6 cycles, H2O2 production remained at 1400.52 mg·L−1, and within 960 min, the maximum production reached 2014.04 mg·L−1 with a highest Faradaic efficiency of 54.86%. These results demonstrate the electrode's potential for cyclic use. This study provides a new approach for developing efficient, low-cost electrodes for electrosynthesis of H2O2, offering a reference for green H2O2 production.
Environmental Chemistry•2026•DOI: 10.7524/j.issn.0254-6108.2025031905
Land use types profoundly influence the accumulation, speciation, and ecological risk of heavy metals through differences in human activity intensity, pollution input pathways, and soil self-regulation capacity. This study investigated soils of different land use types in Longhua County, downstream of the Yixun River Basin, central Chengde City, Hebei Province. Using the Nemerow Index and Potential Ecological Risk Index, the overall regional pollution was mild (Pn=1.65) with low ecological risk (RI=121.17). Main pollutants were Cd, Pb, Zn, and Hg, with Cd and Hg as primary ecological risk factors. Construction land exhibited moderate pollution and medium risk, with a Nemerow Index of 2.37 and average RI of 190.78, significantly exceeding other land use types. PMF model identified four pollution sources: pedogenic parent material natural source (43.54% contribution) dominating Cr, Cu, Ni, Zn enrichment; metallogenic parent material natural source (19.88%) controlling Cd spatial differentiation; agricultural-transportation mixed source (24.79%) driving As and Pb accumulation; and industrial source (11.93%) causing local Hg enrichment. Natural sources contributed 63.42% of total heavy metals, being the primary contributor. As was generally below background values, not constituting pollution; Pb exceeded standards but posed low ecological risk; industrial Hg enrichment in construction land presented high pollution and ecological risk, requiring priority control.
Environmental Chemistry•2026•DOI: 10.7524/j.issn.0254-6108.2026022502
This study investigates the effects of different land use types on topsoil carbon (C) and nitrogen (N) contents and their spatial distribution in the lower reaches of the Sancha River Basin, a karst region of the Yunnan-Guizhou Plateau. Grid sampling collected 0–20 cm topsoil from forestland (n=23), cultivated land (n=25), and grassland (n=32). Total C and N were measured. Results showed that topsoil C content followed grassland (40.36±22.92 g·kg−1) > forestland (37.05±12.83 g·kg−1) > cultivated land (34.06±14.57 g·kg−1), while N content followed forestland (2.89±0.76 g·kg−1) > grassland (2.67±1.19 g·kg−1) > cultivated land (2.50±0.65 g·kg−1). One-way ANOVA revealed no significant differences among land use types (P>0.05). Soil C and N were significantly positively correlated across all land uses (r>0.5, P<0.001). Coefficient of variation (CV) indicated grassland had the highest C variability (0.57), while forestland showed the most stable C and N (CV=0.35 and 0.26, respectively). Cultivated land had CVs of 0.43 for C and 0.26 for N. Spatially, forestland exhibited concentrated high C values with significant N heterogeneity; grassland had higher C in southern and eastern areas but scattered distribution, with generally low and variable N; cultivated land showed uniform but lowest C and N. Land use types significantly drive topsoil C and N dynamics through vegetation input, soil disturbance, and management practices, underscoring the importance of rational land use planning for enhancing carbon sink functions and sustainable development in karst watersheds.
Environmental Chemistry•2026•DOI: 10.7524/j.issn.0254-6108.2025040401
Conventional zero-valent iron (ZVI) suffers from limited electron transfer due to its dense surface oxide layer. This study introduces a mechanochemical ball-milling strategy incorporating sodium chloride (NaCl) with ZVI to fabricate chloride-modified ZVI (Cl-ZVIbm). Using hexavalent chromium (Cr(VI)) as a model pollutant, Cl-ZVIbm exhibited a 76.5-fold enhancement in removal kinetics (0.0306 min−1 vs. 0.0004 min−1) compared to ball-milled ZVI (ZVIbm), achieving complete removal of 2 mg·L−1 Cr(VI) within 120 min. Spectroscopic characterization and density functional theory (DFT) calculations revealed dual regulation mechanisms: (1) Cl− substitution of surface hydroxyl groups alters coordination environments, enabling Cr(VI) adsorption via a bidentate binuclear configuration with adsorption energy reduced from –0.28 eV to –1.64 eV; (2) The strong electron-withdrawing effect of Cl− drives directional electron migration from the iron core to the surface, increasing surface Fe(II) content by 26.9% (67.5% vs. 53.2%) and facilitating direct electron transfer to reduce 99.5% of Cr(VI) into low-toxicity Cr(III). Notably, chloride leaching during reactions was only 0.0126 mmol·L−1, far below industrial wastewater discharge standards, confirming environmental compatibility. This work provides atomic-scale insights into chloride-mediated electronic modulation on ZVI surfaces, offering novel principles for interfacial engineering of environmental functional materials and a theoretical basis for heavy metal remediation technologies.
Environmental Chemistry•2026•DOI: 10.7524/j.issn.0254-6108.2025032801
A highly sensitive and accurate method using liquid-liquid extraction (LLE) coupled with ultra-high performance liquid chromatography-tandem mass spectrometry (UPLC-MS/MS) was developed for simultaneous quantification of nine neonicotinoid insecticides and their metabolites in human urine and serum. Samples underwent enzymatic hydrolysis followed by ethyl acetate extraction, effectively enriching target analytes. Gradient elution and optimized mass spectrometry conditions enabled simultaneous determination. The method exhibited excellent linearity with correlation coefficients >0.999. In urine, limits of detection (LOD) ranged from 0.001 to 0.010 μg·L−1 and limits of quantification (LOQ) from 0.004 to 0.035 μg·L−1. In serum, LODs were 0.0004–0.02 μg·L−1 and LOQs 0.0014–0.07 μg·L−1. Average spiked recoveries were 89.3%–115.0% in urine and 83.0%–115.0% in serum, with relative standard deviations (RSD) of 0.5%–8.0% and 2.5%–9.5%, respectively. Analysis of paired urine and serum samples from 123 Guangzhou residents revealed detection rates of 94.3%–100% for the nine analytes in urine, with clothianidin showing the highest median concentration (1.89 μg·L−1). In serum, detection rates for clothianidin, thiacloprid, acetamiprid, imidacloprid-olefin, and 5-hydroxy-imidacloprid were below 60%, while the remaining four analytes ranged from 74.8% to 99.2%. Urinary concentrations of all nine analytes were significantly higher than serum concentrations (P<0.05). Significant positive correlations between urine and serum concentrations were observed for clothianidin, thiamethoxam, imidacloprid, and N-desmethyl-acetamiprid, with N-desmethyl-acetamiprid showing the strongest correlation. The LLE-UPLC-MS/MS method efficiently and accurately detects neonicotinoids and metabolites in urine and serum, providing a reliable tool for human exposure assessment.
Environmental Chemistry•2026•DOI: 10.7524/j.issn.0254-6108.2025051307
This study investigates the ionic concentration characteristics and sources of atmospheric precipitation in Changsha, China, based on samples collected from December 2019 to November 2021. The total dissolved solids (TDS) in precipitation ranged from 51.71 to 813.40 μeq·L−1, with a volume-weighted mean (VWM) concentration of 245.58 μeq·L−1. The VWM ionic concentrations followed the order: Ca2+ > SO4^2− > NO3^− > HCO3^− > K+ > Na+ > Cl− > Mg2+. Ca2+ and SO4^2− together accounted for 55.76% of the total ionic mass. Seasonal variation of total ionic concentration was highest in winter and lowest in spring, following the order winter > autumn > summer > spring. Correlation analysis revealed strong positive correlations between SO4^2− and NO3^− (r = 0.78) and between Ca2+ and Mg2+ (r = 0.70), suggesting common sources. Principal component analysis and enrichment factor (EF) analysis indicated that SO4^2− and NO3^− predominantly originated from anthropogenic activities, with contribution rates of 99.5% and 95.4%, respectively, likely from coal combustion and industrial emissions. Ca2+ and K+ were mainly terrestrial, with contribution rates of 99.2% and 98.3%, respectively, from soil and biomass burning. Mg2+ had dual sources: 68.8% terrestrial and 31.2% marine. Cl− exhibited an EFmarine of 0.74 and EFsoil of 50.20, indicating a dominant marine source contributing 98% of its input. These findings provide a scientific basis for understanding regional atmospheric pollution and supporting environmental management strategies.
Journal of Environmental Engineering Technology•2026•DOI: 10.13205/j.hjgc.202607004
Pelletizing technology is widely applied in biomass and coal fuel processing, offering advantages in transport, storage, and energy density. Coal gasification fine slag (CGFS), a carbon-rich coal-based solid waste, holds potential as a fuel. This study prepared centimeter-scale composite pellets by blending CGFS with various biomass types under 6 MPa at room temperature for 2 minutes. Combustion and emission characteristics were investigated using a self-developed flat-flame macro-thermogravimetric reactor simulating high heating rate conditions. Results showed that biomass type significantly influenced combustion due to chemical composition differences. Introducing biomass altered fuel particle composition, enhancing combustion rates of single-component fuels by 3–5 times during volatile combustion. Co-combustion reduced NOx and CO emissions by over 50% compared to pure CGFS. Higher biomass ratios accelerated volatile release and shortened burnout time but increased NO emissions due to higher volatile nitrogen content. Conversely, CO emissions decreased due to improved char combustion conditions. These findings provide critical experimental support for optimizing clean and efficient solid fuel production from CGFS and biomass.
Journal of Environmental Engineering Technology•2026•DOI: 10.13205/j.hjgc.202607006
This study evaluates the global warming potential (GWP) of three typical air pollution control device (APCD) configurations in municipal solid waste (MSW) incineration under ultra-low emission standards. The configurations are APCD1 (SNCR+SDS+DS+ACI+FF), APCD2 (SNCR+SDS+DS+ACI+FF+SCR+WS), and APCD3 (SNCR+SDS+DS+ACI+FF+WS+SCR). Life cycle assessment (LCA) was applied to quantify GWP. Results indicate that APCD3 exhibits the highest GWP due to increased electricity consumption, yet it achieves the lowest pollutant emissions among the three. APCD1 shows the highest NOx emissions, contributing significantly to GWP, and requires technological upgrades. APCD2 consumes more resources but does not proportionally reduce emissions, suggesting inefficiencies. Electricity consumption is the dominant factor influencing GWP across all processes; reducing electricity use and improving energy efficiency are critical for mitigating environmental impact. The study recommends further research on CO2 reduction strategies and adoption of more efficient DeNOx technologies to align MSW incineration with ultra-low emission and low-carbon goals.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3875-1
Photocatalytic hydrogen evolution reaction (HER) from pure water is a promising strategy to address critical challenges in energy sustainability and environmental remediation. However, HER over single-component photocatalysts is intrinsically limited by inefficient carrier separation and relatively poor photostability. Forming abundant interfaces between two components is an effective approach for solving these issues. Herein, a series of hierarchical core-shell heterojunction photocatalysts, designated as F@Z-X, was rationally constructed by in situ growing ZnIn2S4 (ZIS) nanosheets on a Ti-based metal-organic framework (FIR-125), demonstrating remarkable structural stability. Due to the abundant intimate contact interfaces and well-matched band structure, the F@Z-X series exhibit enhanced HER performance. Among them, the optimized heterojunction [email protected] shows a photocatalytic hydrogen evolution rate of 3789.45 μmol g−1 h−1, which is about 4.4 and 264.4 times higher than that of pristine ZIS (859.57 μmol g−1 h−1) and FIR-125 (15.32 μmol g−1 h−1), respectively. Moreover, the photocatalyst manifests excellent reusability and durability, maintaining its performance over five consecutive cycles and sixteen hours of continuous reaction. The outstanding performance of [email protected] may be ascribed to an optimal balance among three fundamental photocatalytic processes: sufficient light absorption, exceptional carrier separation, and appropriate surface reaction. This work offers valuable insights into the rational design and controllable synthesis of novel heterojunction photocatalysts for efficient hydrogen evolution.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3979-3
The escalating prevalence of multidrug-resistant Pseudomonas aeruginosa (P. aeruginosa) infections necessitates novel antibacterial strategies. Here, we engineered lectin B (LecB)-targeted glyco-dots (TFP2F) via self-assembly of a photosensitizer (TFP2) possessing aggregation-induced reactive oxygen species (ROS) generation capability with fucose-modified tetraphenylethene glycoclusters (TPE-Fuc4), enabling P. aeruginosa-targeted antimicrobial photodynamic therapy and wound healing promotion. Three photosensitizers (TFP0–2) featuring an “A-D-A” electronic structure were synthesized, exhibiting broad absorption bands and near-infrared (NIR) fluorescence. Among these, TFP2 demonstrated superior Type-I/II ROS production (including ·OH, ·O2−, and 1O2), achieving potent phototoxicity against P. aeruginosa (MIC80 = 7.5 μM). Self-assembly with TPE-Fuc4 yielded glyco-dots TFP2F that facilitated LecB-mediated bacterial targeting, enhanced bacterial uptake, and significantly reduced the MIC80 to 2.5 μM against drug-resistant P. aeruginosa under light irradiation. In a murine P. aeruginosa-infected wound model, TFP2F treatment combined with light irradiation accelerated wound closure to <20% of the initial area by day 8 (vs. >40% in controls) and eliminated >95% of bacteria by day 2. This work presents a convenient strategy for constructing glyco-dots as a potent functionalized platform for precision, lectin-targeted antimicrobial photodynamic therapy.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-4000-1
Formamidine lead-based perovskites (FAPbI3) exhibit significant potential in optoelectronic applications. Nevertheless, they encounter challenges related to δ-phase instability and reliance on toxic solvents. In this study, we present a green solvent-additive synergy strategy that employs γ-valerolactone (GVL) in conjunction with reductive acids like oxalic acid (OA), to stabilize α-FAPbI3 single crystals (SCs). GVL enhances the stability of the precursors through the formation of FA+-GVL hydrogen bonds and high-valence [PbIx]2−x clusters, resulting in ambient-stable α-phase SCs, yielding a marked improvement in stability compared to SCs prepared with the toxic solvent γ-butyrolactone (GBL). Additive modulation demonstrates that H+ and reductive groups play a critical role in regulating crystallization, suppressing the δ-phase by promoting FA+ dissociation and inhibiting MA+ deprotonation. A solvent-involved intermediate, δ-FAPbI3-GVL, has been identified; this intermediate evolves into α-FAPbI3 at a low temperature of 60 °C, thereby reducing the energy barriers associated with the α to δ phase transition. In contrast, non-reductive acids and reductive ionic liquids do not inhibit δ-phase formation, with the latter even promoting the crystallization of pure δ-FAPbI3. By utilizing low-volatility OA as an additive, optimized FA0.9MA0.1PbI3 single crystal thin films exhibit a low defect density of 8.3 × 10^11 cm−3. Subsequently, a photodetector was fabricated. Under zero bias voltage and 780 nm illumination, the device exhibited a responsivity of 14.5 mA/W, a detectivity of 3.75 × 10^10 Jones, and a response speed of 149/65 μs. Moreover, without any encapsulation, the device’s performance diminished by only 17% after 30 days of storage in ambient conditions, indicating remarkable stability.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3971-6
Photocatalytic reduction of soluble U(VI) to insoluble U(IV) is a pivotal technology for uranium remediation and resource recovery. However, conventional covalent organic frameworks (COFs) suffer from short-range electron transport, leading to rapid electron-hole recombination and limited efficiency. Here, we report the rational design of anthraquinone-based COFs with donor-acceptor (D-A) architectures, employing 2,4,6-triformylphloroglucinol (TP) as the donor and 1,4-diaminoanthraquinone (1,4-DQ) or 1,5-diaminoanthraquinone (1,5-DQ) as the acceptor. By varying the connection mode of the building units, the electron transfer distance is systematically extended, effectively suppressing charge recombination. Among the synthesized COFs, ECUT-COF-152 exhibits optimal photocatalytic activity under visible light, achieving 100% U(VI) removal with a maximum reduction capacity of 1950 mg g−1. This work demonstrates that precise tuning of the D-A structure and electron transfer pathways is an effective strategy to enhance the photocatalytic performance of COFs for uranium reduction, offering insights for the design of efficient materials for nuclear waste treatment.
Chinese Journal of Environmental Engineering•2026•DOI: 10.12030/j.cjee.202511043
Zero-valent iron (ZVI) suffers from surface passivation and low electron utilization in reductive removal of nitrobenzene (NB). To address these issues, a ball-milled iron/digestate biochar composite (BM-Fe/DBC) was prepared and compared with a physically mixed counterpart (PM-Fe/DBC). Characterization revealed that ball milling tightly embedded ZVI particles into the carbon matrix, forming Fe–C chemical bonds and a strong interfacial coupling structure that established efficient electron transfer channels. This structure significantly enhanced the micro-galvanic effect between iron and carbon, yielding superior reduction performance across a wide pH range (3–9). Under optimal conditions (Fe:C mass ratio 2:1, dosage 1.0 g·L−1, pH 5), BM-Fe/DBC achieved 79.9% NB removal, and the generation of aniline (AN) was 1.85 times that of PM-Fe/DBC. Mechanistic studies indicated that the intimate Fe–C interfacial coupling promoted sustained ZVI corrosion and enhanced the production of indirect reducing species, including adsorbed Fe(II) and atomic hydrogen (H*). Electrochemical analyses showed that BM-Fe/DBC exhibited a lower corrosion potential, a higher corrosion current density (approximately 2.15 times higher), and lower charge transfer resistance, kinetically confirming its superior electron transfer capability. These findings reveal that constructing strong interfacial coupling in iron–carbon composites via mechanochemical methods can effectively overcome key limitations of ZVI in reduction reactions, providing a theoretical basis and practical pathway for designing high-performance water treatment materials.
Environmental Chemistry•2026•DOI: 10.7524/j.issn.0254-6108.2026030601
Bisphenol A (BPA), a high-volume industrial chemical, is implicated in neurotoxicity and chronic neurodegenerative diseases. This study integrates network toxicology, molecular docking, and molecular dynamics simulations to systematically delineate the common mechanisms linking BPA to Alzheimer's disease (AD), Parkinson's disease (PD), and Huntington's disease (HD). Using the human astrocyte cell line SVGP12 as an in vitro model, we identified six key toxic functional proteins—TP53, HSP90AA1, HSP90AB1, INS, BCL2, and AKT1—that mediate BPA's effects across these diseases, with BCL2 emerging as the most central node. Experimental validation demonstrated that BPA induces oxidative stress and cell cycle arrest, suppresses the INS-AKT1-BCL2 anti-apoptotic pathway, and activates the TP53-HSP90 pro-apoptotic pathway, culminating in mitochondrial apoptosis of astrocytes and disruption of neural microenvironment homeostasis. These findings reveal a convergent mechanism by which BPA accelerates neurodegeneration, filling a critical gap in understanding BPA's role in AD, PD, and HD. The study provides a novel theoretical framework and experimental evidence for BPA neurotoxicity risk assessment and informs preventive and therapeutic strategies for BPA-related neurodegenerative disorders.
Journal of Fuel Chemistry and Technology•2026•DOI: 10.1016/S1872-5813(26)60762-1
The CO2 dry reforming of methane (DRM) is pivotal for CO2 utilization within the dual-carbon framework, offering advantages in carbon reduction and value-added chemical production. However, shaped catalysts suitable for industrial-scale DRM remain limited. This work constructs a monolithic catalyst using honeycomb cordierite as the structural support, systematically investigating the effects of organic and inorganic binders on coating structure and catalytic performance. Comparative studies reveal that the active coating fabricated with inorganic aluminum sol exhibits a continuous uniform morphology and excellent adhesion strength. During high-temperature calcination, elemental diffusion within Al2O3 networks bridges the cordierite surface with active catalyst particles, forming a (Ni-Mg)AlxO4 composite structure. This creates robust metal-support interactions between active sites and the residual alumina matrix. The interconnected mesoporous framework provides superior pore confinement, contributing to strong coating adhesion, enhanced activity, and improved resistance to carbon deposition in the monolithic m-NCM-Al-sol catalyst. In contrast, coatings derived from inorganic silica sol suffer from detachment and activity loss due to heterogeneous surface structures and poor adhesion. Organic binders demonstrate inferior performance in macroscopic coating uniformity, adhesion strength, mesoporous confinement, and localized electronic effects, resulting in the poorest catalytic performance. By optimizing aluminum sol coating parameters—binder content, active component dosage, and coating cycles—a synergistic balance between coating thickness and mass transfer is achieved. The optimized catalyst demonstrates excellent DRM performance, providing insights for constructing high-performance shaped catalysts with cordierite coatings.
Environmental Chemistry•2026•DOI: 10.7524/j.issn.0254-6108.2025042502
Rice husk biochar (BC) was modified with boron (B) and nitrogen (N) doping and loaded with Fe3S4 to fabricate B-BC@Fe3S4 and N-BC@Fe3S4 catalysts for peroxydisulfate (PDS) activation and enrofloxacin (ENR) degradation. Characterization via SEM, BET, XRD, Raman, and XPS confirmed successful heteroatom incorporation and uniform Fe3S4 dispersion, enhancing specific surface area and defect sites. Degradation experiments showed that B-BC@Fe3S4 and N-BC@Fe3S4 achieved ENR removal efficiencies of 90.72% and 91.89%, respectively, significantly outperforming unmodified BC@Fe3S4 (82.21%). Mechanistic studies revealed that PDS activation proceeded via Fe3S4-mediated electron transfer generating radical species (SO4•−, •OH, O2•−) and via B/N functional groups promoting non-radical singlet oxygen (1O2) formation. Notably, N-BC@Fe3S4 exhibited superior resistance to Fe3+ leaching and greater environmental adaptability under varying pH, anion, and humic acid conditions. These findings demonstrate that B/N-doped biochar-supported Fe3S4 are effective catalysts for PDS activation, offering promising potential for antibiotic removal from real wastewater matrices.
Environmental Chemistry•2026•DOI: 10.7524/j.issn.0254-6108.2026050701
Azo food colorants are persistent aquatic pollutants posing risks to ecosystems and human health. Utilizing biomass waste to produce low-cost activated carbon offers a sustainable strategy for their removal. In this study, activated carbon (HPR-AC) was synthesized from Haematococcus pluvialis residue via phosphoric acid activation, and its adsorption performance was evaluated using Sunset Yellow (SY), Ponceau 4R (P4R), and Tartrazine (TY) as model pollutants. The effects of solution pH, adsorbent dosage, initial dye concentration, and temperature on adsorption efficiency were systematically examined. Characterization by BET, FTIR, XRD, and XPS revealed that HPR-AC possesses a high specific surface area and an abundant mesoporous structure. The adsorption process was well described by the Langmuir isotherm and pseudo-second-order kinetic models, indicating monolayer chemisorption and an endothermic nature. At pH 5 and 55 °C, the maximum adsorption capacities reached 67.12, 79.72, and 72.75 mg·g−1 for SY, P4R, and TY, respectively. Statistical physics modeling further suggested a multilayer physical adsorption mechanism, primarily governed by pore filling, electrostatic interactions, hydrogen bonding, π-π stacking, and charge transfer. These findings provide both theoretical insights and empirical data for the valorization of H. pluvialis residue and the development of efficient, sustainable adsorbents for azo dye removal from water.
Environmental Chemistry•2026•DOI: 10.7524/j.issn.0254-6108.2025041505
To combat severe air pollution, China has implemented a series of air pollution control action plans since 2013, effectively alleviating PM2.5 pollution. However, PM2.5 concentrations in most cities within the Fenwei Plain still exceed national standards. This study systematically evaluates PM2.5 concentration changes across two policy phases (2013–2020) using the Community Multiscale Air Quality (CMAQ) model, quantifying contributions of meteorology and emissions, and analyzing sectoral source changes. Results show that annual average PM2.5 concentration declined cumulatively by 19% during 2013–2020. In the first phase (2013–2017), regional PM2.5 decreased by 3% annually, with most improvement in winter; however, due to unfavorable meteorology, concentrations increased in Xi'an and Xianyang. In the second phase (2017–2020), PM2.5 declined by an additional 16%, with more effective control measures, particularly in spring and autumn. Emission reductions dominated in both phases, with stronger effects in the second phase (−8 μg·m−3), significantly outweighing adverse meteorological contributions (+3.5 μg·m−3). Nevertheless, many cities still face challenges from unfavorable meteorology, highlighting the need for future policies to account for meteorological influences. Emissions from industrial, energy, and agricultural sources decreased significantly across both phases. However, during winter heating periods, residential emissions emerged as a source equal in importance to industrial emissions, becoming a key target for future emission controls.
Journal of Environmental Engineering Technology•2026•DOI: 10.13205/j.hjgc.202608027
The relocation of numerous industrial enterprises in China has left behind soil contamination, particularly by volatile organic compounds such as BTEX, whose migration and health risks are of great concern. Coastal plains, characterized by high groundwater tables and interbedded sedimentary strata, exhibit contaminant distribution and migration patterns distinct from inland regions. This study investigated a decommissioned resin plant site in the Yangtze River Delta coastal plain, systematically analyzing the spatial distribution, migration, and health risks of soil BTEX. Seven BTEX compounds were detected with detection rates ranging from 24.3% to 47.1%. Maximum concentrations of benzene, ethylbenzene, and m/p-xylene exceeded China's Class I construction land screening values. The contaminant plume was predominantly located in the southern product warehouse area, while the potential source was traced to the upstream wastewater treatment unit, indicating a 'source-sink' spatial mismatch. Vertically, contaminants exhibited a 'shallow-layer volatilization, middle-layer enrichment, and deep-layer retardation' pattern, with significant enrichment in silty clay at 3–6 m depth and sharp concentration declines in mucky clay. Membrane Interface Probe (MIP) multi-parameter detection revealed that benzene and toluene migrated as a whole, whereas chlorobenzene lagged due to strong adsorption. Benzene posed the most significant health risk, with carcinogenic risk up to 7.42×10⁻⁴ and non-carcinogenic hazard quotient up to 38.24, both exceeding acceptable levels. Inhalation of indoor air contaminated by vapor intrusion from underlying soil contributed over 87% of benzene's total risk, dominating the exposure pathway. This study elucidates the unique migration and risk formation mechanisms under high water table and interbedded strata, providing a scientific basis for precise investigation, risk assessment, and remediation of similar contaminated sites.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-4063-2
Quantum dot light-emitting diodes (QLEDs) are emerging as a leader in next-generation display technology. In principle, the efficiency of QLEDs is highly reliant on the radiative recombination rate of injected electrons and holes in the QD emissive layer. Within a solitary light-emitting cycle, a pre-negative-charged QD bursts into a fleeting sparkle upon encountering a hole, much like a lighted piston within a roaring engine. More pistons bring higher horsepower. The challenge of achieving highly efficient QLED lies in how to increase the number of pre-negatively charged QDs. To address these limitations, we developed a ZnO@ZnMgO core-shell nanoparticle (NP)-based electron transport layer (ETL). This design synergistically combines the high conductivity of ZnO core and the low defect density of the ZnMgO shell. Measured by electron-excited transient absorption, the average electron population (<N_e>) in the emissive layer for ZnO@ZnMgO and ZnMgO-based QLEDs was 0.61 and 0.33 at 4 V, respectively, which greatly increases the carrier recombination efficiency. As a result, green QLEDs achieve a peak EQE of 30.66%, maximum luminance of 1,615,039.85 cd/m2, and a low turn-on voltage of approximately 2 V. The T95 operational lifetime exceeded 29,000 h at 1,000 cd/m2. Currently, all parameters are at the top level within the QLED region.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-4032-x
This study introduces a dual-compatibility third component as an interfacial modifier to precisely regulate the active layer morphology of bulk heterojunction organic solar cells (BHJ-OSCs). This approach successfully suppresses excessive phase separation, significantly enhancing the performance of thick-film devices. The interface-styling strategy enhances donor–acceptor interactions, optimizes vertical phase separation morphology, extends exciton diffusion length, improves exciton dissociation efficiency, facilitates efficient charge transport, and effectively suppresses trap-assisted recombination. The ternary device based on PM6:PCN3:PY-IT achieved a power conversion efficiency (PCE) of 19.41%, which was much higher than that of the PM6:PY-IT binary system (18.67%). The device maintains excellent performance at an active layer thickness of 200 nm, achieving a high PCE of 18.25%. This study demonstrates the significance of using dually compatible molecules for interface modification in all-polymer solar cells (all-PSCs), providing theoretical guidance for the fabrication of high-performance thick-film devices.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-4057-4
The escalating use of ionizing radiation in medical and industrial applications necessitates lead-free, flexible, and sustainable shielding materials. Current development relies on empirical trial-and-error, which is inefficient. This study introduces a machine learning-assisted Monte Carlo simulation strategy for rapid optimization of metal filler compositions for X-ray attenuation across 40–120 kV. Guided by this AI-driven approach, polyvinyl alcohol (PVA)-based gels containing uniformly dispersed Bi/W/Gd2O3 nanoparticles were developed, forming within 1 minute at -20°C using a PVA-DMSO/H2O co-solvent system. The optimized gel with 50 wt% metal loading exhibits exceptional mechanical properties: tensile strength of 1.76 MPa, toughness of 6.3 MJ m−3, and elongation of 600%. It achieves >98% X-ray shielding efficiency at 5 mm thickness, outperforming lead composites at 120 kV. The physically cross-linked network provides recyclability and anti-freezing capability, retaining flexibility at -50°C. This work establishes a data-driven paradigm for designing high-performance radiation-shielding materials, demonstrating AI's potential to accelerate materials discovery and enable scalable fabrication of eco-friendly protective systems.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-4100-9
Shape memory droplet manipulation platforms have attracted significant attention due to their programmable droplet control capabilities. Current research primarily focuses on superhydrophobic surfaces and slippery lubricant-infused porous surfaces (SLIPS); however, these approaches suffer from vulnerable surface micro/nanostructures and loss of lubricant oils. Here, we report a shape memory quasi-liquid polydimethylsiloxane (PDMS) brush surface that overcomes these limitations. The surface is fabricated by introducing a SiO2 layer as a 'bridge' on a shape memory epoxy substrate, providing abundant functional groups for grafting PDMS brushes. By precisely controlling the SiO2 layer thickness and grafting conditions, the surface exhibits good shape memory properties and low adhesion to diverse liquids with varying surface tensions. Reversible anisotropic/isotropic droplet sliding control for both water and organic droplets is demonstrated through dynamic introduction/removal of groove structures, proving excellent droplet manipulation based on the combination of shape memory and low adhesion of PDMS brushes. Furthermore, the material can be applied as a functional coating on diverse substrates to impart anti-fouling and self-cleaning properties. This work introduces a nanoscale SiO2 layer as a 'bridge', offering a strategy to graft PDMS brushes onto polymer surfaces. Given the advantages of quasi-liquid PDMS brushes and programmable controllability of shape memory polymers, this work provides fresh ideas for developing droplet manipulation platforms.