SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4500-8
Electroreduction of CO2 to ethylene offers a promising route for renewable electricity storage, yet achieving high ethylene selectivity at industrial current densities remains challenging due to the large energy barrier for C–C coupling. Here, we report a “MOF-assisted in situ doping” strategy to introduce the oxophilic nonmetal phosphorus (P) into the copper oxide (CuO) lattice, constructing a localized Cu–P dual-site adsorption configuration for the key *OCCHO intermediate. The optimized catalyst delivers an impressive Faradaic efficiency of 64.6% for ethylene with a partial current density of 646 mA cm-2. Comprehensive structural characterizations demonstrate that P mainly occupies Cu sites, generating abundant lattice defects and oxygen vacancies. In situ synchrotron infrared spectroscopy and theoretical calculations reveal that P doping modulates the electronic structure of Cu, optimizes the binding energies of *CO and *CHO, and stabilizes *OCCHO via P–O/Cu–C dual-site adsorption, thereby significantly lowering the asymmetric C-C coupling energy barrier to 0.74 eV. This work highlights a dual-site microenvironment regulation strategy for CO2-to-ethylene electroreduction.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4439-4
Silk fibroin (SF) hydrogels are promising for neural regeneration but suffer from progressive stiffening due to excessive β-sheet assembly, limiting their use in traumatic brain injury (TBI) repair. This study introduces a dopamine (DA)-mediated synergistic topological entanglement strategy to construct an SF-DA/gelatin-DA composite hydrogel (SG). The system integrates covalent cross-linking, net cationic electrostatic repulsion, hydrogen bonding, and π-π stacking to regulate SF assembly dynamics at the molecular level. The resulting SG hydrogel maintains stable mechanical softness over extended periods, with a storage modulus of approximately 1.2 kPa after 28 days, compared to a 5-fold increase in pure SF hydrogels. The sustained softness promotes neural stem cell (NSC) proliferation and differentiation, with a 2.5-fold increase in βIII-tubulin expression and a 1.8-fold increase in GFAP expression after 14 days. In a rat TBI model, SG hydrogel implantation reduced glial scar formation by 40% and improved neurological function scores by 30% at 8 weeks. The hydrogel degrades at a rate of 12% per week, matching tissue regeneration. This multi-crosslinking approach offers a clinically translatable strategy for neural tissue engineering, addressing the critical bottleneck of mechanical instability in SF-based biomaterials.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4472-0
Dynamic electrocardiography (ECG) monitoring during physical activity remains compromised by motion artifacts that corrupt signal fidelity, particularly with conventional gel electrodes whose impedance rises sharply under deformation. This work presents a thumb-sized liquid metal system integrating gallium-based epidermal electrodes with a self-adhesive elastomeric matrix to sustain robust ECG acquisition against motion. The electrodes exploit the fluidic compliance of eutectic gallium–indium to maintain continuous skin contact, while the adhesive formulation ensures stable interfacial coupling without additional fixation. The system achieves low motion artifact levels, preserving waveform morphology and R-peak detectability during ambulation. The compact form factor enables unobtrusive wearability, and the materials architecture addresses the trade-off between adhesion and conformability that limits existing dry electrodes. The study establishes a materials and device pathway for clinical-grade dynamic ECG in ambulatory and point-of-care settings, with implications for continuous cardiac monitoring where patient movement is unavoidable.
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/s40843-026-4466-3
Conventional surface coating technologies for 45 steel are constrained by high processing temperatures, limited material compatibility, and insufficient interfacial bonding. This study introduces ultrasonic vibration-assisted mechanical coating (UVAMC) as a low-temperature deposition route that mitigates these limitations. The process yields a chromium coating on 45 steel with a nanoscale elemental interdiffusion transition layer at the interface, achieving a bonding strength of 66.0 MPa. The coating delivers improved corrosion resistance in aggressive environments while preserving the substrate's original compressive and tensile strength. The method also demonstrates broad process adaptability, successfully depositing copper, aluminum, and 316 stainless steel powders, and forming complex shapes such as the "SZU" pattern. These results establish UVAMC as a viable surface functionalization strategy for metallic materials, combining efficient deposition with operational flexibility.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4309-8
Iridium-doped cobalt oxide nanosheets derived from a ZIF template were evaluated as oxygen evolution reaction (OER) catalysts for proton exchange membrane water electrolysis (PEMWE). Residual carbon was removed via a post-synthetic treatment to isolate intrinsic catalytic behavior. The Ir0.23Co0.77Ox catalyst exhibited enhanced activity and durability relative to commercial IrO2 in a practical PEMWE device. Potential-dependent, stage-resolved characterization combined with theoretical calculations probed catalyst stability under different operating voltages, revealing degradation mechanisms tied to applied potential. Contact angle measurements showed that the Ir0.23Co0.77Ox membrane electrode assembly (MEA) had water and air contact angles of 126° and 143°, respectively, compared to 126° and 143° for an IrO2 MEA at identical Ir loading, indicating improved wettability and gas release behavior. The work provides a framework for understanding potential-dependent stability in acidic OER catalysts and demonstrates a viable route to reduce Ir loading while maintaining PEMWE performance.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4313-7
Liquid-to-vapor mass transfer is central to energy and environmental processes. Conventional distillation relies on vapor-liquid equilibrium and device-level optimization, with materials playing passive structural roles. Non-boiling processes such as membrane distillation and interfacial solar evaporation localize phase change at confined interfaces, making mass transfer a materials-mediated transport phenomenon where interfacial structure and chemistry dictate evaporation kinetics, vapor escape, and solute rejection. Janus interface materials, featuring spatially separated hydrophilic and hydrophobic domains, introduce architectural asymmetry to regulate liquid-to-vapor mass transfer. This review summarizes recent advances, highlighting mechanisms including the cooperative pump-valve effect, nanoconfinement-enhanced transport, and mitigation of fouling and scaling. Representative applications in membrane distillation, solar-driven evaporation, and personal thermal-moisture management are systematically discussed. Key challenges and future opportunities are outlined, particularly in advancing fundamental understanding, scalable fabrication, and practical implementation.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4488-x
Thermochromic smart windows based on hydrogels suffer from inevitable freezing at subzero temperatures and dehydration at elevated temperatures, severely limiting their year-round applicability. This study reports a hydrogel-derived liquid (HDL) smart window that circumvents these limitations through a solvent-exchange strategy. The HDL is synthesized by polymerizing a hydroxypropyl cellulose (HPC) and N-isopropylacrylamide (NIPAM) network in a water-glycerol binary solvent, followed by complete removal of the water phase via vacuum-assisted evaporation. The resulting anhydrous liquid exhibits a lower critical solution temperature (LCST) of 32 °C, with a solar modulation ability (ΔTsol) of 63.2% and a luminous transmittance (Tlum) of 88.1% in the clear state. Critically, the HDL remains optically switchable after 1000 hours at -40 °C and 1000 hours at 80 °C, with no observable phase separation or freezing. The smart window prototype demonstrates a 12.3% reduction in indoor cooling energy consumption in a simulated tropical climate and a 9.8% reduction in heating energy in a cold climate, compared to a commercial low-E glass. The liquid-state formulation enables facile large-area fabrication via roll-to-roll processing, with a demonstrated 30 cm × 30 cm prototype retaining 95% of the initial ΔTsol after 500 bending cycles. This work establishes a viable pathway for all-climate energy-efficient building envelopes.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4275-3
Electrochemical in-situ production of active chlorine (AC) via chlorine evolution reaction (CER) can alleviate hull corrosion and residual chlorine overage, which is a highly reliable disinfectant for sewage and ballast water. Nonetheless, the primarily competitive oxygen evolution reaction and gradual anode passivation hinder its practical application. Herein, we employed the in-situ hydrothermal strategy to synthesize Ru/TiO2-x to realize high activity and selectivity of CER. The robust interaction of Ru sites and TiO2-x achieved via a one-step hydrothermal synthesis strategy, the structural and valence state characterizations confirm that Ti3+ stabilizes Ru solely in the metallic state (Ru0) via structural confinement effects, effectively inhibiting catalyst oxidation. As a result, the Ru/TiO2-x requires only an overpotential of 33 mV to reach 10 mA cm−2, and possess strong catalytic durability, sustaining continuous operation for 100 h with negligible current decay. Further integration with a triboelectric nanogenerators successfully realizes the generation of AC, which demonstrates a >99.9% inactivation efficiency against Escherichia coli in simulated seawater environments, while also effectively degrading ammonia nitrogen and urea contaminants in domestic wastewater.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4495-3
Room-temperature phosphorescence (RTP) has attracted substantial interest for applications in smart optoelectronics, yet the development of dynamic RTP systems remains intrinsically challenging. Here, we report an appropriately rigid confinement strategy based on NaCl ionic crystals formed in situ via cation-anion exchange, which simultaneously suppresses non-radiative decay and retains sufficient structural flexibility for external stimulation. In the TPN/NaCl and DPB/NaCl systems, dynamic phosphorescence is realized exclusively upon sequential thermal activation and ultraviolet irradiation. Mechanistic investigations reveal that residual water and triplet oxygen initially quench triplet excitons, and their gradual removal enables a competitive evolution between triplet-triplet annihilation (TTA) and phosphorescence pathways. This work establishes a general design principle for constructing stimulus-responsive dynamic RTP systems and resolves the long-standing conflict between rigidity and responsiveness in organic phosphorescent materials.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4502-1
Near-infrared-II (NIR-II, 1000-1700 nm) luminescent materials are pivotal for deep-tissue bioimaging and optical communication, yet their performance is often limited by low quantum yields and thermal quenching. Here, we report a thermal-enhanced NIR-II luminescence in Sb3+/Er3+ co-doped Cs3GdCl6 microcrystals synthesized via a modified Bridgman method. Under ultraviolet excitation, the co-doped microcrystals exhibit intense NIR-II emission centered at 1532 nm corresponding to Er3+: 4I13/2 → 4I15/2 transition, with a maximum relative sensitivity of 1.2% K−1 at 303 K. Notably, the integrated NIR-II emission intensity increases by 2.3-fold from 298 K to 373 K, demonstrating anomalous thermal enhancement. This behavior is attributed to the thermally activated energy transfer from Sb3+ sensitizers to Er3+ activators, as confirmed by temperature-dependent photoluminescence spectra and decay kinetics. The energy transfer efficiency reaches 86% at room temperature and further improves with rising temperature. The microcrystals also show excellent photostability, retaining 95% of initial intensity after 120 min continuous UV irradiation. Furthermore, we demonstrate a proof-of-concept wireless optical communication link using the microcrystals as a NIR-II phosphor, achieving a signal-to-noise ratio of 30 dB at 400 Hz modulation frequency. These findings provide a new strategy for designing thermal-enhanced NIR-II luminescent materials and expand their potential in temperature sensing and optical communication.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4493-8
Metal halide perovskite photovoltaics have achieved power conversion efficiencies rivaling crystalline silicon, yet their transition from laboratory-scale devices to commercial deployment requires a paradigm shift toward application-specific engineering and macroscopic system integration. This review systematically evaluates the customized deployment of perovskite solar cells (PSCs) across diverse operational theaters, including building-integrated photovoltaics (BIPV), portable Internet of Things (IoT) systems, agricultural photovoltaics (Agri-PV), vehicle-integrated photovoltaics (VIPV), utility-scale tandems, and extreme space environments. Despite these opportunities, critical challenges persist in translating laboratory achievements into industrial-scale production. We critically evaluate primary bottlenecks hindering gigawatt-scale commercialization, focusing on the performance gap inherent in large-area manufacturing. Additionally, we analyze intrinsic material instabilities driven by dynamic ion migration and multi-scale lattice strain under realistic outdoor conditions. To conclude, we outline a strategic roadmap for overcoming these barriers, emphasizing lattice strain regulation, rigorous dynamic environmental testing protocols, and comprehensive sustainable lifecycle management. By synergizing mechanistic insights with scalable manufacturing and ecological assessments, this review provides a holistic framework to accelerate the ubiquitous commercialization of customizable, stable, and high-efficiency perovskite energy systems.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4269-4
Self-assembled molecular interlayers (SAMs) are promising hole-selective contacts for high-efficiency organic solar cells (OSCs) due to their well-defined energy alignment and minimal parasitic absorption. However, their intrinsically limited mechanical robustness often leads to structural degradation and performance loss under mechanical deformation, restricting their application in flexible devices. Here, we report a nanoparticle-reinforced self-assembled composite interface that simultaneously enhances mechanical reliability and optoelectronic performance. Uniformly dispersed SiO2 nanoparticles are introduced as high-modulus reinforcing building blocks without disturbing molecular self-assembly. In contrast to NiOx nanoparticles, which suffer from aggregation and parasitic absorption, SiO2 nanoparticles exhibit excellent dispersion and optical transparency, enabling formation of a structurally compatible hybrid interface. Mechanistic studies reveal that SiO2 nanoparticles redistribute interfacial stress and form dynamic hydrogen-bond networks with phosphonic acid groups of 2PACz, providing efficient energy dissipation during cyclic deformation. Meanwhile, modulation of interfacial polarity extends the crystallization time window of the active layer, resulting in enhanced molecular ordering and improved charge transport. As a result, devices based on the SiO2/2PACz composite interface achieve a power conversion efficiency of 20.14% for rigid devices and 19.30% for flexible devices, placing the flexible devices among the highest-performing flexible OSCs reported to date, while retaining over 90% of their initial efficiency after repeated bending cycles. This work establishes a general strategy for overcoming the trade-off between electronic selectivity and mechanical robustness in ultrathin self-assembled molecular interfaces, providing design insights for high-performance flexible organic optoelectronics.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4303-7
Sodium-ion batteries (SIBs) are promising for grid-scale storage and low-speed electric vehicles, yet their electrochemical behavior is governed by intricate mechanical-electrochemical coupling effects, rendering failure mechanisms not fully understood. Here, we develop an in-situ pressure-electrochemical monitoring system and reveal the failure mechanism of commercial Ah-level NaNi1/3Fe1/3Mn1/3O2//hard carbon (NNFMO//HC) sodium-ion pouch cells. Under an initial external pressure of 500 kPa, the full cell retains 90.07% of its capacity after 500 cycles at 0.5 C. Operating at the optimal pressure of 500 kPa effectively avoids heterogeneous sodium deposition in HC anodes, suppresses gas evolution from electrolyte decomposition, and prevents irreversible phase transitions in NNFMO cathodes during long-term cycling, thereby mitigating capacity degradation. Deviation from this optimal pressure leads to spatially non-uniform sodium deposition, accelerated electrolyte decomposition, and irreversible cathode phase transitions, collectively accelerating capacity fade. This work establishes a quantitative relationship between external pressure and pouch cell degradation, advancing SIBs development and application.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4206-6
Precise patterning of highly ordered organic semiconductor (OSC) thin-film arrays is critical for next-generation electronics. We report a ladder-like polysilsesquioxane (LPSQ) strategy to synthesize two functional analogs with tunable surface energies and robust dielectric properties. These LPSQ dielectrics, functionalized with alkyl or fluoroalkyl side chains, serve dual roles as gate insulators and patterning layers to guide blade-coating of 2,7-dioctyl[1]benzothieno[3,2-b][1]benzothiophene (C8-BTBT). This approach yields highly aligned arrays suitable for three-dimensional integration in flexible electronics. Synergistic combination of dense LPSQ dielectric packing and aligned semiconductor domains leads to excellent organic thin-film transistor (OTFT) performance, achieving approximately four-fold improvement in field-effect mobility compared to conventional silicon oxide dielectrics. Patterned LPSQ dielectrics enable high-resolution C8-BTBT patterning on plastic substrates, supporting 4-inch-scale 3D integration of flexible logic circuits, including inverters (voltage gain >100), NOR gates, and NAND gates. This work provides a scalable route to high-performance, large-area flexible organic circuits.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4277-1
Two-dimensional (2D) magnetic materials hold promise for next-generation spintronics, yet most exhibit Curie temperatures (Tc) far below room temperature, limiting practical applications. Here, we report the realization of room-temperature ferromagnetism in CuCrSe2 nanosheets via controlled anion removal achieved by post-synthetic vacuum annealing. Raw CuCrSe2 shows a low Tc of ~120 K, whereas annealed CuCrSe2 (A-CuCrSe2) nanosheets exhibit robust ferromagnetic ordering above 300 K. Structural and compositional analyses, including transmission electron microscopy, Raman spectroscopy, and X-ray absorption spectroscopy, confirm that A-CuCrSe2 retains the original layered crystal structure with an estimated Se vacancy concentration of approximately 10%. Magnetic measurements reveal room-temperature ferromagnetism in exfoliated nanosheets, corroborated by magnetic imaging and electric transport measurements. Anomalous Hall effect (AHE) measurements uncover the coexistence of two ferromagnetic phases within the same sample: one with low Tc (~120 K) and another with high Tc (>300 K), indicating spatially heterogeneous magnetic ordering driven by anion removal distribution. Density functional theory (DFT) calculations elucidate the microscopic mechanism, suggesting that Se vacancies modulate the magnetic exchange interactions, enhancing Tc. This work demonstrates that anion modulation is an effective intrinsic strategy to achieve room-temperature ferromagnetism in 2D materials, potentially advancing spintronic applications.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4203-7
The solution process holds great promise for organic light-emitting diode (OLED) fabrication owing to its minimal material loss, simple processing and low equipment investment. However, solution-processed blue OLEDs still face the challenges of low electroluminescence efficiency and poor working stability. In this study, two new cross-linkable blue light-emitting molecules, v-4CzBn and v-5CzBn, were synthesized. They featured a multicarbazole-substituted benzonitrile donor–acceptor structure as the emitting core, with two vinyl phenyl units on the carbazole rings serving as cross-linking groups. A singlet–triplet energy gap of ΔEST ≤ 0.10 eV and a high reverse intersystem crossing rate (kRISC > 10^6 s−1) were achieved because the three-dimensionally confined covalent network structure formed through a thermal cross-linking reaction limited intramolecular motions and vibrational relaxations of luminescent units. Moreover, this structure suppressed irreversible morphological changes and structural deterioration of light-emitting units due to aggregation or crystallization, improving the light-emitting performance of the device. Nondoped solution-processed OLEDs with the structure of ITO/PEDOT:PSS/TFB/S-4CzBn/TPBi/LiF/Al exhibited blue emission with a peak at 488 nm, achieving a maximum external quantum efficiency of 12.01%, a maximum luminance of 11,141.15 cd m−2, and a T50 lifetime of 1375.66 h@100 cd m−2. This result represents the longest operational lifetime reported to date for solution-process devices with cross-linked emitting layers.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4213-x
Lipid peroxyl radicals (ROO·) are terminal propagating species in lipid peroxidation, driving oxidative damage in neurological disorders. Their prolonged lifetime and rapid diffusion within lipid membranes render them difficult to neutralize. Here, we report a bioelectric-responsive TEMPO-doped polydopamine (PDA@TEMPO) nanozyme that sustains catalytic interception of ROO· radicals under persistent oxidative stress. By coupling a PDA redox reservoir with TEMPO catalytic centers, the nanozyme establishes a self-regenerating radical-neutralization cycle via proton-coupled electron transfer (PCET). The π-conjugated framework facilitates charge migration and enables an electric-field-enhanced antioxidant response. In a seizure model, the nanozyme dynamically responds to bioelectric fluctuations, accelerating radical interception and alleviating oxidative stress in neural microenvironments. These findings establish bioelectric-coupled nanozymes as a general strategy for catalytic and sustained regulation of oxidative stress in neural microenvironments, providing a potential therapeutic approach for neurological disorders.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4110-9
Flexible tactile sensors are pivotal for human-machine interaction, yet accurate decoupled sensing of three-dimensional (3D) forces and integration into functional systems remain challenging. Here, we present a piezoresistive 3D force sensor based on ionic hydrogels that detects and analyzes multi-directional forces. The sensor exhibits a linear response to normal forces from 1 to 25 N (R²=0.99) and maintains stable sensitivity for shear forces within 0–4 N. By incorporating both force magnitude and direction, the sensor enables multidimensional password input, expanding traditional one-dimensional passwords into numeric, alphabetic, and Morse code formats. Experimental results demonstrate significant potential for enhancing information security. The sensor's simple structure, mature fabrication, and ease of integration with flexible electronics underscore its practicality. This work addresses the bottleneck of unidirectional sensing in conventional flexible pressure sensors, offering a robust solution for multidimensional force acquisition in human-machine interfaces, soft robotics, and biomechanical monitoring.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3848-7
Conventional heterogeneous photocatalysts often suffer from insufficient light absorption, rapid charge recombination, and a lack of specific reactive sites for efficient photocatalytic oxidation. To overcome these limitations, we propose a molecular polarization engineering approach utilizing structurally well-defined donor (D)-acceptor (A) covalent triazine frameworks (CTFs). The construction of dipole-induced built-in electric fields within the D-A-structured CTFs enables enhanced exciton dissociation and facilitates directional charge transfer. Specifically, the asymmetric A1-D-A2 moiety enhances molecular polarization in the dual-acceptor system CTF-TBT (A1-D-A2), enabling efficient charge separation through multiple electron-withdrawing units. This structural design promotes directional electron transfer toward the secondary acceptor (benzothiazole, A2), while simultaneously concentrating holes on the donor unit. Consequently, the A2 moiety acts as a site for efficient O2 activation via electron accumulation, whereas the highly oxidized donor unit provides strongly positive holes (h+) that facilitate substrate oxidation. Experimental and DFT calculation results confirm that CTF-TBT demonstrates highly enhanced photocatalytic oxidation performance, which can be attributed to its multi-channel charge separation mechanism and spatially separated redox-active sites. This study highlights the effectiveness of molecular dipole engineering in designing heterogeneous photocatalysts with controlled charge transfer pathways and improved redox capabilities. The proposed design principles provide a universal approach for promoting solar-driven chemical synthesis applications.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3558-4
The development of advanced titanium alloys capable of operating above 600 °C remains a critical challenge for aerospace propulsion systems, where conventional Ti alloys suffer from insufficient high-temperature strength and microstructural instability. Here, we propose a computationally driven design strategy for titanium-based medium-entropy alloys (MEAs) that integrates thermodynamic phase prediction with mechanistically informed strength modeling, enabling systematic exploration of the Ti-Nb-Al-Cr quaternary system. The optimized Ti70Nb10Al15Cr5 MEA exhibits exceptional performance metrics: 18% room-temperature ductility (as-cast), a yield strength of 520.7 MPa at 650 °C (post-aging), and an ultralow density of 4.76 g/cm3 (45% lighter than Inconel 718). Microstructural characterization reveals a metastable single-phase BCC structure in the as-cast state, which transforms into a BCC/Ti3Al dual-phase system upon aging, with temperature-dependent precipitate morphology and phase stability. The alloy demonstrates superior high-temperature strength retention up to 900 °C (>80 MPa yield strength), outperforming commercial titanium alloys (e.g., Ti-1100, TG6) and bridging the performance gap between conventional Ti alloys and nickel-based superalloys. This work establishes a multi-criteria design paradigm for entropy-engineered alloys, offering a viable pathway to lightweight, high-temperature structural materials for next-generation aerospace applications.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3771-9
High-entropy carbonitride ultra-high temperature ceramics (HECN-UHTCs) typically require high densification temperatures, leading to grain coarsening and degraded mechanical properties. This study introduces CrSi2 as a sintering additive for (Ti, Zr, Hf, Nb, Ta)(C, N), effectively reducing the densification temperature by 200 °C. During sintering, interdiffusion and cation exchange result in the formation of an orthorhombic (Ti, Zr, Nb)2Cr4Si5 phase within the ceramic matrix. The resulting dual-phase ceramic exhibits a hardness of 24.65 ± 0.23 GPa and a fracture toughness of 6.03 ± 0.48 MPa m1/2, significantly surpassing most reported HECN-UHTCs. Enhanced mechanical properties are attributed to crack deflection, increased localized lattice strain, and Cr grain boundary segregation. This liquid phase-assisted low-temperature sintering strategy offers a promising pathway for densifying other ultra-high temperature ceramics.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3664-x
The proliferation of electronic devices and wireless communications has escalated the demand for materials that simultaneously provide electromagnetic interference (EMI) shielding and infrared (IR) thermal camouflage, a combination critical for military and civilian applications. Traditional metallic shields suffer from high density, poor processability, and cost, while polymer-based alternatives often lack sufficient shielding effectiveness and environmental stability. Here, we report a multilayer composite film fabricated via layer-by-layer vacuum filtration and hot-pressing, integrating modified aramid nanofibers (ANF) and MXene (Ti3C2Tx) nanosheets. The film architecture comprises ANF-polypyrrole (ANF-PPy) as the matrix and Ag-MXene as the functional filler, with in-situ grown Ag nanoparticles intercalating between MXene layers to enhance interlayer spacing and electromagnetic wave scattering. At a thickness of only 33 μm, the film achieves an average EMI shielding effectiveness (SE) of 66.75 dB and a specific shielding effectiveness (SSE/t) of 38432.54 dB cm2 g−1. The multilayer structure promotes multiple internal reflections and interfacial polarization losses, while the tight integration ensures high IR reflectivity. This work establishes a foundation for developing multifunctional protective materials with dual EMI shielding and IR camouflage capabilities, addressing the critical bottleneck of simultaneous performance in ultrathin, flexible formats.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3793-9
Organic solar cells (OSCs) require both a high donor/acceptor (D/A) interfacial area for efficient exciton dissociation and a vertically phase-separated morphology for efficient charge transport. Traditional bulk heterojunctions (BHJs) provide large interfacial areas but lack vertical phase separation, while quasi-planar heterojunctions (QPHJs) achieve vertical separation at the cost of reduced interfacial contact. Here, we introduce an in situ pore-forming strategy for polymer thin films. By incorporating an excess of additives as pore-forming agents into the donor layer, a nanoporous film with a fibrous nano-network is generated. Subsequent deposition of acceptor molecules fills these nanopores, creating a hybrid planar/bulk heterojunction (HP/BHJ) that synergizes the strengths of both architectures. This design enhances performance by: (1) increasing the D/A interfacial area via nanopores, forming a three-dimensional network that accelerates exciton dissociation; (2) promoting close molecular packing that minimizes carrier recombination and establishes low-defect charge transport channels; and (3) fostering vertical phase separation through layer-by-layer deposition. Binary OSCs fabricated with this strategy achieve a power conversion efficiency (PCE) of 20.0%, surpassing conventional BHJ and QPHJ devices by a significant margin. The approach demonstrates general applicability, with analogous improvements observed in D18/BTP-eC9-4F and PM6/L8-BO systems, underscoring its potential for advancing OSC performance.
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/s40843-025-3617-x
Macrophages are pivotal in infection resolution and tissue repair via dynamic M1-to-M2 phenotypic polarization. Although various nano-biomaterials can modulate macrophage polarization, achieving sequential M1-to-M2 transition using a single nanoformulation remains challenging. Here, we propose a strategy employing transition metal carbide/nitride (MXene) nanosheets, internalized by macrophages, as the sole regulator to induce sequential polarization. Under a rotating magnetic field, the high electrical conductivity and magnetoelectric activity of endocytosed MXene generate electrical signals and reactive oxygen species (ROS), driving M1 polarization. Upon magnetic field removal, the inherent bioactivity of MXene facilitates repolarization to the M2 phenotype. Mechanistically, this transition involves inhibition of the NF-κB signaling pathway and activation of the JAK-STAT signaling pathway. In vivo, MXene nanosheets under on-off rotating magnetic field stimulation enabled sequential M1-to-M2 polarization, promoting bacterial clearance and tissue regeneration in infected wounds. This two-step sequential strategy targeting macrophages offers a promising therapeutic approach for infected wound healing.
New Carbon Materials•2026•DOI: 10.1016/S1872-5805(25)61033-X
Carbon-based materials have gained significant attention in anticancer treatment due to their exceptional biocompatibility, yet critical challenges persist in establishing definitive correlations between their porous structures and functional performance. We report the use of a silica template to guide pore formation in the design of mesoporous carbon spheres (mC) with tailored pore structures for improved combined photothermal-chemotherapy. The mesopore size of mC was adjusted by kinetic control of resin polymerization and silica hydrolysis. Structural characterization showed that 4.4 nm mesopores enabled an exceptional gemcitabine loading of 228 mg g−1 and a sustained pH/thermal dual-responsive release with >70% drug release under near-infrared (NIR) irradiation. Finite element analysis demonstrated pore size-dependent heat transfer dynamics, with the improved mC achieving a superior photothermal conversion efficiency of 62% by a combination of N-doping and defect engineering. In vitro evaluations confirmed outstanding biocompatibility with >95% cell viability at 200 μg mL−1 and potent tumor suppression in pancreatic and biliary cancer models with an ~5% cell viability at 25 μg mL−1 where combined therapy showed a 3.7-fold increased cytotoxicity over monotherapy. The improved structure of mC facilitated cascade therapeutic effects with enhanced tumor permeability derived from NIR-triggered hyperthermia and prolonged therapeutic exposure due to pH-responsive drug release. This pore engineering strategy establishes a structure-function process for next-generation theranostic platforms, addressing the critical limitations of conventional pancreatic and biliary cancer therapies through spatiotemporal control of multimodal treatment.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3630-2
This study demonstrates a dual-interface engineering approach for performance enhancement in perovskite-silicon tandem solar cells. By applying ethylenediamine dihydroiodide (EDAI2) to simultaneously modify both top and bottom interfaces of wide-bandgap perovskite layers, we achieve synergistic defect suppression and charge transport optimization. Time-resolved photoluminescence characterization reveals extended carrier lifetimes and improved spatial homogeneity in dual-modified perovskite films. The optimized single-junction wide-bandgap (>1.66 eV) perovskite solar cells attain a champion efficiency of 22.75% with enhanced operational stability. Implemented in perovskite-silicon tandem configuration, the devices achieve over 31% power conversion efficiency, validating the effectiveness of organic ligand-mediated dual-interface engineering in regulating carrier dynamics and advancing perovskite-based tandem photovoltaics.
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/s40843-025-3506-3
Metallic glasses (MGs) often suffer from sluggish hydrogen evolution reaction (HER) kinetics in neutral and alkaline media, with their catalytic performance predominantly confined to acidic environments. Herein, we reported a novel thermoplastic forming technique to fabricate a self-supported partially crystallized nanoporous Pt56.2Ni5.2Cu16.8P21.8 metallic glass (C-NPMG). The C-NPMG catalyst delivers ultralow overpotentials of 18.0 mV (0.5 M H2SO4), 42.2 mV (1 M KOH), and 88.0 mV (1 M phosphate-buffered saline (PBS)) at a current density of 10 mA cm−2, outperforming most state-of-the-art non-noble MGs and Pt-based benchmarks across all pH conditions. Notably, it maintains negligible performance decay for over 1000 h in alkaline electrolytes, showcasing superior stability. Experimental and computational analyses reveal that the enhanced HER activity arises from three synergistic effects: (1) the high-specific-surface-area nanoporous architecture that maximizes active site exposure; (2) the formation of crystallite-amorphous interfaces during partial crystallization, which lowers the energy barrier for H2 desorption; (3) the hierarchical super-hydrophilic and super-hydrophobic wettability of the C-NPMG, which optimizes mass transport and prevents electrolyte-induced corrosion. This work establishes a novel design paradigm for developing high-performance, pH-universal HER electrocatalysts by integrating structural nano-engineering and crystallite-amorphous phase synergy in metallic glass systems to overcome the trade-offs between performance and stability in electrochemical water splitting.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3789-x
Wearable sensors have attracted significant attention due to their superior sensitivity, safety, and adaptability compared with conventional detection technologies. However, developing sustainable sensing materials that combine excellent performance with environmental friendliness remains a significant challenge. In this study, Juncus effusus (JE), a natural fiber featuring a unique internal three-dimensional (3D) network structure, was employed as the substrate. Conductive polyaniline was loaded onto the JE structure to impart electrical conductivity, and Ecoflex encapsulation provided high elasticity. Based on this approach, a JE-based resistive flexible sensor (PHE-JE) was successfully fabricated. The PHE-JE sensor exhibits high stability under various strain conditions, along with excellent flexibility and durability. Moreover, benefiting from its complex 3D structure and synergistic material interactions, the PHE-JE sensor enables accurate detection of diverse motion types, showing promising potential for future wearable sensing applications.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3671-0
Photothermal therapy (PTT) is a non-invasive tumor treatment that offers controllability, non-drug resistance, and precise ablation, yet its efficacy is limited by uncontrolled heat diffusion and weak immune responses, often leading to metastasis. Here, we report a chondroitin sulfate-modified Prussian blue-montmorillonite immunoregulator (PM@CS) that integrates tumor cell adhesion and Golgi targeting to confine photothermal damage at the organelle level. PM@CS accumulates on the Golgi apparatus, reducing heat transfer distance and enhancing photothermal ablation. This targeted hyperthermia disrupts post-translational modification and secretion of metastasis-associated proteins, with GOLPH3 and GOLM1 expression reduced by 63.4% and 70.3%, respectively. Furthermore, PM@CS promotes dendritic cell maturation (3.3-fold increase in CD80+ and CD86+ populations) and enhances antigen-specific CD4+ and CD8+ T cell proliferation, attributed to the immunoadjuvant properties of montmorillonite. Notably, PM@CS upregulates voltage-gated calcium channels (CaV) and enhances Ca2+ influx, activating calcium signaling cascades that amplify immunotherapy. This synergistic approach inhibits primary tumor growth and lung metastasis, offering a promising strategy for cancer treatment.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3679-8
Idiopathic pulmonary fibrosis (IPF) is a chronic interstitial lung disease with high mortality and limited therapeutic options. Dysregulated macrophage polarization drives fibroblast activation and epithelial-mesenchymal transition (EMT), yet no effective management exists. Here, we develop an inhalable methane nanocapsule (MNC) that spatiotemporally controls methane release in the lung to remodel the fibrogenic microenvironment. MNC is formulated via self-assembly of biodegradable poly(lactic-co-glycolic acid)-polyethylene glycol (PLGA-PEG) and a novel acid-responsive methane prodrug Fe(BPY)2(CH3)2, enhancing mucosal penetration and sustained methane release in acidic inflammatory niches. In a bleomycin (BLM)-induced pulmonary fibrosis model, MNC inhalation achieves efficient lung deposition and sustained methane release, significantly reducing inflammation, ameliorating fibrosis, and improving lung function without systemic side effects. Mechanistically, MNC rebalances macrophage polarization by inhibiting M2 phenotype overexpression and downregulates the MMP9/TIMP-1 ratio to suppress myofibroblast proliferation and EMT, synergistically halting fibrotic progression. This inhalable methane nanocapsule offers a promising strategy for safe and effective IPF treatment.
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/s40843-025-3748-9
Direct regeneration is a sustainable solution for recycling spent lithium-ion batteries (LIBs), yet the irregular strains induced by the irreversible FePO4 phase after cycling hinder Li+ replenishment in spent LiFePO4 cathodes. This study proposes a lattice stress modulation strategy that reduces FePO4 to Fe2P2O7, reducing unit cell volume from 271.7 to 122.6 Å3, releasing residual stress and reconstructing continuous Li+ transport channels. The phase transformation reconstructs FeO6 octahedra, lowering the migration energy barrier for ions. This synergistically weakens steric effects, facilitating Li+ replenishment and eliminating Li-Fe anti-site defects. Regenerated LiFePO4 cathodes achieve 80.2% capacity retention after 1000 cycles at 2C, outperforming commercial cathodes. The work establishes fundamental principles for the pre-treatment stage of direct regeneration and provides a paradigm-shifting solution for sustainable LIB recycling.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3785-5
The effective separation and utilization of photo-generated carriers are critical for advancing photocatalysis, particularly in coupled reactions of H2 production and value-added chemical synthesis. Here, a sandwich-structured MnO2@ZnIn2S4@Ti3C2 hollow sphere was designed, with MnO2 and Ti3C2 loaded on the inner and outer surfaces of ZnIn2S4, respectively. MnO2 acts as an oxidation cocatalyst collecting photo-generated holes, while Ti3C2 serves as a reduction cocatalyst for electrons, promoting spatial separation of carriers and enabling spatially separated redox reactions. The hollow structure enhances light harvesting. The optimal catalyst achieves photocatalytic H2 production rate of 6.29 mmol g−1 h−1 and benzaldehyde production rate of 5.26 mmol g−1 h−1 from benzyl alcohol oxidation, significantly outperforming ZnIn2S4, MnO2@ZnIn2S4, and ZnIn2S4@Ti3C2. In situ irradiated X-ray photoelectron spectroscopy confirms effective carrier separation. In situ electron paramagnetic resonance and diffuse reflectance infrared Fourier transform spectroscopy reveal reaction intermediates. This work provides a strategy for designing efficient photocatalysts for coupled H2 production and selective oxidation.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3674-2
Enhancing catalytic activity is a core objective in catalyst design, with active site accessibility being a critical determinant. Polyoxometalate-based metal-organic complexes (POMOCs), combining advantages of POMs and MOCs, offer potential for constructing catalysts with highly accessible active sites. In this study, a series of POMOCs were synthesized using different POM templates: [CoII1.5(L)1.5(PMo12O40)(H2O)4]·3H2O (Co-PMo12), [CoII1.5(L)1.5(PW12O40)(H2O)4]·3H2O (Co-PW12), [CoII2(L)2(SiW12O40)(H2O)4]·11H2O (Co-SiW12), and H[CoII2.5(L)3(P2W18O62)(H2O)8]·10H2O (Co-P2W18). These were characterized by FT-IR, PXRD, and single-crystal X-ray diffraction. Catalytic activity differences for olefin epoxidation were attributed to distinct accessibility of Co(II) sites upon thermal activation. Notably, Co-P2W18 achieved 99% yield of 1,2-epoxycyclooctane within 3 hours at room temperature using O2 as oxidant, owing to highly accessible unsaturated Co(II) sites. This performance is superior to most reported catalysts. The reaction mechanism was investigated using density functional theory. The catalyst exhibited excellent stability over five cycles, with FT-IR, PXRD, and XPS confirming structural and oxidation state integrity. This work highlights the potential of POMOCs in designing catalysts with highly accessible active sites for enhanced catalytic activity.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3736-8
Covalent organic frameworks (COFs) are porous crystalline materials assembled from organic building blocks via strong covalent bonds, offering well-defined pores, high surface area, and tunable properties for applications in gas storage, separation, catalysis, sensing, and energy conversion. However, conventional solvothermal synthesis requires high temperatures, long reaction times, and complex procedures, hindering scalability and increasing costs. Additionally, COFs are typically obtained as microcrystalline powders, limiting their direct use in flow processes. To overcome these barriers, a novel solid-state hot-pressing method was recently reported, enabling rapid synthesis of COF platelets with high crystallinity and porosity. This method involves applying pressure and heat simultaneously, reducing the energy barrier for monomer reactions and facilitating layer growth and stacking, as confirmed by density functional theory and molecular dynamics simulations. The approach demonstrated versatility by synthesizing 15 distinct COFs, including imine-, hydrazone-, β-ketoenamine-, and imide-linked frameworks, a three-dimensional COF (COF-300), and a mixed-monomer COF, all within 0.5–5 minutes. Notably, a free-standing COF platelet of 200 cm² was fabricated, showcasing scalability. This strategy addresses the trade-offs among synthetic convenience, product quality, environmental impact, and scalability, positioning COFs for commercial viability.
Chinese Journal of Environmental Engineering•2026•DOI: 10.12030/j.cjee.202506081
Advanced oxidation processes (AOPs) are promising for degrading organic pollutants in water treatment. Heterogeneous catalytic ozonation (HCO) has gained attention due to its high oxidation efficiency, strong interference resistance, and low secondary pollution. In this study, a series of trimetallic-carbon composite ozone catalysts were prepared via an organic precursor calcination method using γ-Al2O3 as support. This method enhanced catalytic activity and mechanical strength while overcoming the limitations of carbon materials (low mechanical strength) and metal-based materials (poor mass transfer). The optimized catalyst, CA-FeCoCu, comprising Fe, Co, Cu, carbon, and alumina, exhibited excellent performance in phenol degradation and real industrial wastewater treatment. Characterization revealed that the synergistic effect of trimetals and the introduction of multiple carbon types increased specific surface area and hydroxyl radical (·OH) generation. In a pilot-scale fixed-bed reactor, the CA-FeCoCu/O3 system reduced COD from 120 mg·L−1 to below 40 mg·L−1, with an O3 consumption ratio (O/C) of less than 1, effectively lowering operational costs. This work provides a new strategy for developing efficient and stable heterogeneous O3 catalysts and offers a reference for the practical application of HCO in industrial wastewater treatment.
Journal of Fuel Chemistry and Technology•2026•DOI: 10.3724/2097-213X.2025.JFCT.0021
Red mud, an industrial solid waste from alumina production, poses severe environmental challenges. This study presents a resource-efficient strategy to convert red mud into high-performance microwave absorbing materials. FexOy/TiO2/C composites were synthesized via a sol-gel method using starch as carbon source, followed by carbothermal reduction. The phase composition and microstructure were optimized by adjusting calcination temperature and raw material ratio. The optimal sample, RmCT-5.4-700, exhibited a minimum reflection loss (RLmin) of -30.2 dB at 14.0 GHz with an effective absorption bandwidth (EAB) of 5.3 GHz at a coating thickness of 2.0 mm. The superior absorption performance is attributed to the synergistic effects of dielectric components (TiO2, graphitized carbon) and magnetic components (Fe3O4/Fe). Carbothermal reduction introduces defects that induce dipole polarization, while the conductive network formed by graphitized carbon and Fe3O4/Fe particles enhances conductive loss. Heterogeneous interfaces between Fe3O4, Fe, TiO2, and the red mud matrix promote interfacial polarization. The magnetic loss of Fe3O4/Fe improves impedance matching, facilitating electromagnetic wave penetration and absorption. This work not only provides a novel route for red mud valorization but also contributes to the high-value utilization of solid wastes.
Journal of Fuel Chemistry and Technology•2026•DOI: 10.1016/S1872-5813(25)60610-4
In this study, melamine and cyanuric acid were used as precursors to form supramolecular crystals via hydrogen-bond-assisted self-assembly followed by hydrothermal treatment. Subsequent high-temperature calcination yielded a novel brush-like three-dimensional carbon nitride. The brush-like 3D architecture was found to expose more accessible active sites, markedly accelerate electron transfer, and suppress the recombination of photogenerated charge carriers. The resulting superoxide (O2•−) and hydroxyl (•OH) radicals generated via electron reduction were identified as the key reactive species in the photocatalytic process. Moreover, the surface of the brush-like structure is enriched with nitrogen vacancies, which enhance the catalyst’s ability to harvest visible light. The photocatalytic performance of the brush-like CNS-650 catalyst was evaluated for rhodamine B (RhB) degradation. Under red-light irradiation (660 nm), its degradation rate was 7.4 times higher than that of bulk CN. This work provides valuable insights into the design and application of efficient metal-free 3D photocatalysts.
Environmental Chemistry•2026•DOI: 10.7524/j.issn.0254-6108.2025010302
Cadmium (Cd) contamination of agricultural soils poses significant economic and health risks. While extensive research has focused on Cd accumulation in staple crops like rice, data on oilseed crops remain scarce, hindering safety assessments of edible oils and oilseed meals. This study investigated Cd accumulation and translocation in rapeseed (Brassica napus) grown in You County, Hunan Province, a region severely contaminated with Cd. Rhizosphere soil and plant tissues (roots, stems, seeds) were collected and analyzed for Cd concentrations. Results showed that approximately 71% of rhizosphere soil samples exceeded the agricultural soil pollution risk screening value for Cd, indicating high ecological risk. Cd concentrations in roots and stems were (0.49 ± 0.39) mg·kg⁻¹ and (0.54 ± 0.31) mg·kg⁻¹, respectively, comparable to or higher than soil Cd levels (0.51 ± 0.31) mg·kg⁻¹, with elevated bioaccumulation and translocation factors. This suggests that improper disposal of rapeseed roots and stems, such as returning them to fields or burning, could lead to secondary Cd pollution. In contrast, Cd bioaccumulation and translocation factors in seeds were less than 1, and Cd concentrations in seeds, oil, and oilseed meals were relatively low. Comparative analysis with sesame, camellia oleifera, and peanut indicated that rapeseed-derived oil and meal contain lower Cd levels, positioning rapeseed as a promising low-Cd-accumulating edible oil crop for cultivation in Cd-contaminated areas.
Journal of Environmental Engineering Technology•2026•DOI: 10.13205/j.hjgc.202604013
Reclaimed water serves as an alternative water source for replenishing natural water bodies, yet residual pollutants pose ecological risks. A pilot-scale hybrid vertical flow constructed wetland filled with manganese ore sand, quartz sand, and cobblestones was operated for approximately 140 days to assess nutrient and organic matter removal, ecotoxicity, and the suitability of manganese sand as a functional medium. Influent concentrations were up to 0.4 mg/L ammonia, 0.2 mg/L phosphate, 8 mg/L nitrate, and 30 mg/L COD. After 2–3 months of operation, ammonia and phosphate removal efficiencies exceeded 90% and 80%, respectively. Average reductions for nitrate and COD were 0.67 mg/L and 4.2 mg/L. Manganese sand enhanced organic decomposition, reducing maximum 3D fluorescence intensity by 26%, humic substances by 48%, UV254 by 38%, and achieving 70.8% removal of four target antibiotics. Purified water exhibited no significant genotoxicity, with micronucleus rates approaching tap water levels, and non-concentrated samples showed no acute biotoxicity. However, concentrated samples displayed acute toxicity, suggesting different causative pollutants for genotoxicity and acute toxicity. The study supports manganese sand as an effective medium for improving reclaimed water quality and controlling ecological risks.
The Chinese Journal of Process Engineering•2026•DOI: 10.12034/j.issn.1009-606X.225185
Sulfur hexafluoride (SF6), widely used as an insulating gas in high-voltage electrical equipment, possesses a global warming potential (GWP) 25,200 times that of CO2, necessitating efficient degradation technologies. This study employed computational fluid dynamics (CFD) to simulate the thermal catalytic degradation of SF6 in a fixed-bed reactor, integrating models for porous media, heat transfer, turbulence, and chemical kinetics. The simulations revealed significant radial non-uniformities in pressure, velocity, temperature, and species concentration distributions, with temperature identified as the dominant factor influencing degradation efficiency. Radial temperature gradients caused uneven reaction rates, with degradation rates near the wall substantially exceeding those at the central axis, thereby reducing overall SF6 conversion. To address this, structural optimizations were implemented, including reducing the reactor tube diameter and incorporating inert porous media with high thermal conductivity at both ends of the catalytic section. These modifications enhanced radial heat transfer, homogenized the temperature field, and improved the uniformity of reaction rates and species concentrations. Parametric studies on inlet gas velocity showed that both excessively low and high flow rates were detrimental: low velocities led to underutilization of the downstream catalyst and increased energy consumption, while high velocities deteriorated heat transfer and exacerbated radial temperature gradients. The optimal inlet velocity range was determined to be 0.4–0.8 m/s for a reactor tube inner diameter of 10 mm, balancing catalyst utilization, energy consumption, and degradation efficiency. This research provides data-driven guidance for the design and scale-up of SF6 catalytic degradation reactors.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3935-1
Silk fibroin (SF)-based hydrogels are promising for biological interfaces, yet achieving multifunctionality—mechanical robustness, adhesion, conductivity, and stability—often requires chemical modification that compromises biocompatibility. Here, we report a protonation-mediated SF/polyvinyl alcohol (PVA) hydrogel adhesive that retains natural silk properties while gaining tailored functionalities. The physically crosslinked network is formed solely via molecular interactions, with phosphoric acid (H3PO4) as a protonation agent to modulate hydrogen bonding, enabling precise control over adhesion, mechanical strength, and electronic conductivity. Glycerol (Gly) is incorporated as a moisturizing agent to enhance long-term stability for skin applications. The resulting hydrogel exhibits excellent performance in monitoring electrophysiological signals, including electrocardiogram (ECG), electromyogram (EMG), and electroencephalogram (EEG), demonstrating its potential as a platform for advanced biological interfaces. This work addresses the critical challenge of developing SF-based hydrogels that combine natural advantages with multifunctionality, offering a promising route for wearable health monitors and human-machine interfaces.
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/s40843-025-4028-5
The escalating thermal management demands of modern electronics necessitate materials with superior thermal conductivity and matched thermal expansion. Cu/Diamond composites are promising, yet their fabrication typically requires extreme conditions (high temperature/pressure) or complex coating processes. This work introduces a one-step, heat-source-free cold manufacturing method using ultrasonic vibration to consolidate Cu/Diamond composites at room temperature and a low pressure of ~16 MPa within seconds. The applied pressure is reduced by 200–500 times, and the required temperature is only 20% of that used in conventional high-temperature high-pressure sintering. Direct metallurgical bonding at Cu-Cu interfaces and solid embedding of diamond particles in the Cu matrix are achieved, yielding a composite with a high yield strength of 150 MPa. The method enables a maximum diamond proportion of ~60%, resulting in a thermal conductivity exceeding 1043 W/(m·K) and a coefficient of thermal expansion below 10×10⁻⁶ K⁻¹. Complex shapes are readily fabricated, and heat dissipation tests demonstrate superior performance compared to commercial Al₂O₃ and AlN substrates. The loose preparation conditions and rapid processing confer significant industrial production potential.
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.
Journal of Fuel Chemistry and Technology•2026•DOI: 10.1016/S1872-5813(25)60625-6
The electrocatalytic reduction of nitric oxide to ammonia (NORR) is a key green energy conversion technology. Its efficiency relies on high-performance electrocatalysts to enhance both ammonia yield (YNH3) and Faradaic efficiency (FNH3). Conventional experimental screening methods are resource- and time-intensive. Here, machine learning combined with SHAP feature analysis was employed to establish a stacked ensemble model integrating multiple algorithms, enabling systematic investigation of key descriptors governing NORR performance based on an experimental dataset. Evaluation of eight model algorithms revealed that the Stacked-SVR model achieved an R² of 0.9223 and RMSE of 0.0608 for predicting YNH3 on the test set, while the Stacked-RF model achieved an R² of 0.9042 and RMSE of 0.0900 for predicting FNH3. The stacked ensemble model integrates strengths of individual algorithms, demonstrating strong prediction performance while avoiding overfitting. SHAP analysis revealed that Cu content in catalyst composition has the most significant impact on catalytic performance. Moreover, the combination of wet chemical reduction synthesis, carbon fiber (CF) conductive substrate, and HCl electrolyte is more favorable for enhancing catalytic activity. Additionally, moderately lowering working potential, controlling electrolyte volume at low-to-medium levels, reducing catalyst loading, and increasing electrolyte concentration synergistically enhance both YNH3 and FNH3.
Journal of Environmental Engineering Technology•2026•DOI: 10.13205/j.hjgc.202605007
Reservoirs are significant sources of nitrous oxide (N2O), a potent greenhouse gas. The nosZ-type denitrifying bacteria, which reduce N2O to inert N2, play a critical role in mitigating emissions. This study investigated the community structure, diversity, and abundance of nosZ-type denitrifiers in surface sediments (0-15 cm) from 18 reservoirs in the northeastern Qinghai-Tibet Plateau, including 10 in the Yellow River mainstem and 8 in the Huangshui River basin. Sampling occurred during dry (May 2023) and wet (August 2023) seasons. High-throughput sequencing of the nosZ gene and quantitative PCR were employed. Results showed that Proteobacteria dominated (78.91%). Paracoccus and Halomonas were biomarkers in the Yellow River mainstem. Diversity was significantly higher in the Huangshui basin (P<0.05), with no temporal difference. Gene abundance was higher in the Huangshui basin (165.24×10^5 copies/g) than in the Yellow River mainstem (34.43×10^5 copies/g), and higher in wet season (128.55×10^5 copies/g) than dry season (61.27×10^5 copies/g) (P<0.05). Redundancy analysis and hierarchical partitioning identified sediment temperature, pH, total phosphorus, and water total nitrogen as key drivers, explaining 17.14%, 16.89%, 13.83%, and 11.23% of community variation, respectively. These findings reveal significant spatiotemporal heterogeneity and provide a scientific basis for N2O mitigation in plateau reservoirs.
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.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3956-0
Chiral organic-inorganic hybrid metal halides (OIHMHs) are multifunctional materials with structural diversity and chiroptical properties. However, current chiral OIHMHs predominantly exhibit circularly polarized luminescence (CPL) in the visible spectrum, while ultraviolet and near-infrared (NIR) CPL remains challenging. Here, we report lead-free chiral zero-dimensional (0D) OIHMHs, (R/S-DACH)2In2Br10:Sb3+/Yb3+ (DACH = 1,2-diaminocyclohexane), featuring spectrally tunable CPL emissions covering visible to NIR regions. Single-crystal X-ray diffraction, circular dichroism, and CPL spectroscopy revealed that robust hydrogen-bonding interactions between organic cations and inorganic emitters are crucial for chirality expression. Sb3+-doped (R/S-DACH)2In2Br10 single crystals exhibited intense broadband emission at 644 nm from the 3P1 to 1S0 transition of Sb3+, achieving a record photoluminescence quantum yield (PLQY) of 49.9% (two orders of magnitude higher than pristine crystals) and a luminescence dissymmetry factor (glum) of ±7.1×10−3. Notably, Sb3+/Yb3+ co-doped crystals simultaneously generated dual-band CPL at 644 nm (glum = ±2.1×10−2) and 994 nm (glum = ±6.8×10−3), representing an important example of NIR-CPL in OIHMHs. An LED device based on (R-DACH)2In2Br10:2.7%Sb3+ exhibited bright orange emission with a color-rendering index of 78.4 and excellent spectral and operational stabilities. These findings establish a design strategy for broadband CPL and expand applications of chiral metal halides in advanced optoelectronics.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3786-8
Conventional cancer diagnostic techniques, such as tissue sampling and microscopy, are invasive and prone to misdiagnosis, driving the need for non-invasive, precise alternatives. Chiral biophotonics, exploiting circularly polarized light (CPL), offers unique polarization-selective interactions with biological tissues, enabling higher imaging contrast and molecular-level discrimination. However, current CPL detection technologies are passive and single-mode, lacking dynamic tunability and parallel processing capabilities. Meanwhile, AI-assisted diagnostics rely on separated sensing and computing units, suffering from poor integration and transmission inefficiency. Here, we report a near-infrared (NIR) chiral organic synaptic photodiode with electrically tunable dual-mode operation, enabling simultaneous CPL detection and neuromorphic processing. Under negative bias, the device operates as a highly sensitive CPL detector for chiroptical signal acquisition. Under positive bias, it exhibits history-dependent synaptic behavior with photocurrent dissymmetry factor (g_ph) dynamically tunable up to -0.06. By integrating this device into an optical convolutional neural network (OCNN), we achieved intelligent cancer detection with CPL-based imaging. Experimental results demonstrate that CPL detection accuracy reaches 83%, approaching the theoretical 87%, significantly outperforming natural light detection at 65%. The device enhances image contrast and feature extraction, laying a foundation for intelligent, adaptive diagnostic systems.
Chinese Journal of Environmental Engineering•2026•DOI: 10.12030/j.cjee.202509039
Under the dual-carbon strategic goal, China's wind power installed capacity continues to grow rapidly, making the low-carbon recycling of decommissioned wind turbine blades increasingly prominent. This study systematically reviews material recovery pathways, policy support systems, and life-cycle carbon benefits of decommissioned blades. It first analyzes regional distribution and unit characteristics of wind power installations, identifying differentiated challenges in dismantling, transportation, and reuse across regions. Subsequently, it compares mechanical/physical, pyrolysis, chemical, and combined recycling technologies. Results show that mechanical/physical methods are low-cost but yield fiber retention rates of only 10%–78%; pyrolysis has reached industrial scale but exhibits high carbon emission intensity; chemical methods achieve higher fiber retention (55%–96%) with potential carbon reduction advantages; combined methods overcome single-technology limitations, achieving fiber retention exceeding 95%, demonstrating potential for high-value utilization and low-carbonization. At the policy level, China has proposed a two-stage target: initially establishing a blade recycling responsibility mechanism by 2025 and forming industrial clusters by 2030, with gradual improvements in standards and incentives. Life-cycle assessment indicates that wind power has slightly higher global warming potential (GWP) than photovoltaics, but its emissions are mainly concentrated in component manufacturing; if efficient recycling is achieved, wind power could surpass photovoltaics in full life-cycle carbon benefits. In summary, promoting efficient recycling and policy coordination for decommissioned wind turbine blades can achieve dual benefits of resource recycling and carbon reduction, providing strong support for reconstructing a sustainable renewable energy development paradigm.
Chinese Journal of Environmental Engineering•2026•DOI: 10.12030/j.cjee.202510041
This study presents a full-scale engineering practice of retrofitting an idle upflow anaerobic sludge blanket (UASB) reactor into an aerobic granular sludge (AGS) system for treating low-strength municipal wastewater. The design capacity was 20,000 m3/d (maximum 24,000 m3/d), achieving separate treatment of industrial and domestic wastewater to reduce operational costs. Systematic analysis covered hydraulic capacity enhancement, effluent quality, pollutant removal efficiencies, sludge granulation progress, and operational costs. Results showed rapid start-up: the system reached 75% of design capacity by day 10 and 90% by day 26. During a 4-month operation, average removal efficiencies for COD, NH4+-N, TN, and SS were 83.2%, 97.0%, 75.9%, and 94.4%, respectively, even under low influent BOD5/TN ratios (typically below 4). Granulation progressed quickly: by day 44, average particle size was 2.6 times that of the inoculum and over 4 times that of flocs, with granules (>200 μm) accounting for 17.3%; by day 110, these values increased to 3.2 times and 5 times, with granule proportion reaching 33.4%. Compared to the previous year (June–August), the AGS process reduced electricity consumption, chemical consumption, and sludge production by 77.3%, 25.4%, and 30.4%, respectively, while saving 65.6% of footprint. This ten-thousand-ton case provides a practical basis for AGS technology application in China.
Journal of Fuel Chemistry and Technology•2026•DOI: 10.3724/2097-213X.2026.JFCT.0001
The escalating global demand for carbon reduction has positioned chemical absorption using alkanolamine solvents as the predominant post-combustion CO2 capture technology, owing to its high absorption efficiency and process maturity. However, the regeneration of CO2-rich solvents is energy-intensive, with the desorption step accounting for 40.0%–60.0% of total energy consumption. Traditional amine-based methods suffer from high energy penalties, solvent degradation, and equipment corrosion, limiting scalability. Catalytic CO2 desorption, employing solid acid catalysts (SACs), has emerged to address these challenges by lowering the activation energy for CO2 release, enhancing reaction kinetics, and enabling efficient regeneration at lower temperatures (110–130 °C reduced). This review systematically examines research from the past five years on key catalyst materials, focusing on structure-activity relationships, synergistic mechanisms of Lewis acid, Brønsted acid, and basic sites, and their influence on desorption pathways. It highlights that SACs not only improve desorption dynamics but also facilitate catalyst recovery, avoiding adverse effects on absorption. The paper analyzes current scientific and technological challenges, including catalyst stability, selectivity, and scale-up, and provides an outlook on industrial application in low-cost carbon capture. Key findings indicate that catalysts such as metal-organic frameworks (MOFs), heteropolyacids, and waste-derived materials can reduce regeneration energy by up to 30%–40% while maintaining high desorption efficiency. The review underscores the potential of catalytic regeneration to significantly lower operational costs and enhance the viability of amine-based CO2 capture in industrial settings.
Journal of Fuel Chemistry and Technology•2026•DOI: 10.1016/S1872-5813(26)60654-8
The declining costs of renewable energy are progressively improving the economic viability of employing electrochemical techniques for carbon dioxide capture. Electrochemical carbon capture (ECC) technology utilizes electrical energy to drive electrode reactions, enabling the selective separation of CO2. The vigorous development of ECC powered by renewable energy offers a promising alternative route to conventional carbon capture methods, overcoming limitations associated with thermally driven capture and release cycles. This approach provides a promising alternative route that is more efficient, flexible, scalable, low-energy-consuming and low-polluting for traditional carbon capture technologies. This review begins by introducing established, large-scale carbon capture technologies, such as pre-combustion capture, post-combustion capture, oxy-fuel combustion, adsorption, membrane separation and the calcium looping process. It then transitions to several rapidly developing ECC technologies, including electrochemically mediated amine regeneration (EMAR), pH-swing-mediated systems, and methods involving redox-active molecules. The pH-swing systems are further categorized into bipolar membrane electrodialysis (BMED), proton-coupled electron transfer (PCET), and membrane capacitive deionization (MCDI). For each method, the underlying principles, technological advancements, advantages, as well as current problems and challenges, are systematically elucidated. It is anticipated that with the widespread deployment of green electricity and persistent innovation in electrochemical materials, ECC technology will emerge as a highly efficient and low-carbon strategy, contributing significantly to the global goal of achieving carbon neutrality.
Journal of Fuel Chemistry and Technology•2026•DOI: 10.1016/S1872-5813(26)60701-3
Hydrodenitrogenation (HDN) is an effective method for removing nitrogen-containing heteroatom compounds from inferior feedstocks, with the core challenge being the development of catalysts that combine low cost and high performance. In this study, a FeZn-supported catalyst was modified by introducing six different metal promoters (La, Ti, Ce, Mn, Mg, and Cr). It was found that Cr exhibited a pronounced promotional effect on HDN performance. The promoting effect of Cr on the FeZn catalyst's activity originates from its electronic interaction with sulfided Fe species, rather than functioning as an independent active site. Specifically, Cr and Zn species act synergistically as electron donors, transferring electron density to the sulfided Fe species, thereby modulating the electronic structure of Fe to render it in an electron-rich state. This increased electronic density weakens the Fe–S bonds in the active phase, promoting their cleavage and facilitating the formation of hydrogenation active sites known as coordinated unsaturated sulfur vacancies (CUS). After introducing 3% Cr, under conditions of 340–380 °C, 4 MPa pressure, and a high weight hourly space velocity (WHSV) of 8.7 h−1, the catalyst's HDN conversion rate for the basic nitrogen compound quinoline increased by 14.5%–19.7% compared to the unmodified catalyst, reaching 81.9% at 380 °C. Furthermore, Cr introduction increased the number of medium-strength Lewis acid sites, which work synergistically with the increased CUS sites to enhance overall hydrogenation activity. Cr addition effectively governs the selectivity of the HDN pathway, with the reaction rate constant for the deep hydrogenation pathway over the FeZn3Cr@GA catalyst reaching 3.2 times that of the unmodified FeZn@GA catalyst. In summary, using Fe as the primary active metal component and regulating its electronic structure through promoters represents an effective approach for designing low-cost, high-performance HDN catalysts.
Environmental Chemistry•2026•DOI: 10.7524/j.issn.0254-6108.2025112603
The cycloaddition of carbon dioxide (CO2) to epoxides (CCE) is a 100% atom-economical transformation yielding cyclic carbonates, which are valuable chemical products. This reaction valorizes CO2 as a carbon feedstock, mitigating the greenhouse effect and aligning with carbon neutrality goals. Conventional covalent organic framework (COF) catalysts often require co-catalysts to achieve high efficiency. To address this, we designed and prepared a series of ionic COFs, denoted EB-BT(nOH), that simultaneously incorporate acid (hydroxyl), base (nitrogen), and nucleophilic bromide (Br−) functionalities. These materials efficiently catalyze the CCE reaction without any co-catalyst. Among them, EB-BT(OH) exhibited the highest catalytic activity, achieving a 99% yield of the target product at 120 °C and 2.0 MPa CO2 pressure. By systematically varying the hydroxyl content in the COF backbone, we investigated the critical role of hydrogen bond donors (HBDs) in the CCE reaction. This work provides new design principles for COF-based catalysts for CCE, eliminating the need for co-catalysts and enhancing process sustainability.
Environmental Chemistry•2026•DOI: 10.7524/j.issn.0254-6108.2025030302
A novel core-shell composite adsorbent, C18-SiO2@C, was synthesized for the determination of five phthalates in food samples. The adsorbent was prepared by assembling hexamethylcyclotrisiloxane (D3) into γ-cyclodextrin (γ-CD) cavities via saturated solution method, followed by hydrothermal oxidation to form SiO2@C, and subsequent C18 modification on the inner SiO2 core. The outer hydrophilic amorphous carbon shell enables effective extraction, while the inner C18 layer provides hydrophobic interactions. Using tip-based solid-phase microextraction (SPME), the adsorbent (10 mg) efficiently enriched phthalates from water, milk, and cola. Under optimized conditions (pH, eluent type/volume, sample volume, salt concentration), the method coupled with GC/MS exhibited linearity in the range of 0.5–10 ng·mL−1 (R² > 0.99), limits of detection (S/N ≥ 3) of 0.04–0.15 μg·L−1, and spiked recoveries of 74%–100% (RSD 1.32%–3.49%). For real samples, recoveries were 84.6%–102.3% for tap water, 80.7%–104.6% for cola, and 80.2%–101.4% for milk. The method offers simplicity, rapidity, low sample consumption, high enrichment efficiency, and strong matrix interference resistance, demonstrating significant potential for trace phthalate monitoring in foods.
Environmental Chemistry•2026•DOI: 10.7524/j.issn.0254-6108.2025022501
The pretreatment of trace emerging contaminants in environmental matrices is challenging due to diverse methods and uncertain applicability. This study compared solid-phase extraction (SPE) and liquid-liquid extraction (LLE) for extracting endocrine-disrupting compounds (EDCs), particularly phthalate esters (PAEs), using laboratory-spiked blank samples. LLE achieved satisfactory recoveries for PAEs at spike levels below 4 μg·L−1, enabling detection of five PAEs including diisodecyl phthalate (DIDP), with improved efficiency via repeated extraction. SPE offered lower detection and quantification limits, higher accuracy and sensitivity, and achieved high recoveries for 12 EDCs and 10 antibiotics at spike levels ≥0.2 μg·L−1, with detection limits as low as 0.1–6.4 ng·L−1. The developed SPE coupled with liquid chromatography-Orbitrap mass spectrometry (LC-Orbitrap MS) method was applied to industrial wastewater samples. Across five industrial sectors (coatings, rubber, pharmaceuticals, inks, and materials technology), five antibiotics and ten EDCs were detected, with total concentrations ranging from 0.03–0.56 μg·L−1 and 0.07–1.91 μg·L−1, respectively. Sector-specific profiles emerged: rubber industry effluent was dominated by dibutyl phthalate (DBP) at 1.07 μg·L−1, while pharmaceutical effluent featured sulfamonomethoxine (SMM) at 0.34 μg·L−1. This systematic evaluation demonstrates that SPE-LC-Orbitrap MS is robust for complex matrices, providing a technical foundation for accurate quantification of emerging contaminants in industrial wastewater.
Environmental Chemistry•2026•DOI: 10.7524/j.issn.0254-6108.2025092801
Urban river water quality is critically influenced by outfall discharges, yet the seasonal dynamics of dissolved organic matter (DOM) and its linkage to water quality remain poorly constrained. This study collected outfall water samples seasonally during 2023–2024 along the Nanfei River and Banqiao River in Hefei, Anhui Province. Parallel factor analysis of excitation-emission matrices identified three fluorescent components: fulvic acid-like C1, tryptophan-like (protein-like) C2, and terrestrial humic-like C3. Seasonal variations were pronounced: protein-like C2 dominated in winter and spring, whereas summer and autumn showed lower C2 proportions due to rainwater dilution and urban nonpoint source runoff inputs. Water quality indices decreased in summer and autumn, primarily attributed to dilution by rainfall runoff. Fluorescence index (FI > 1.9) and biological index (BIX > 1.0) indicated predominantly autochthonous DOM sources. During summer and autumn, humification index (HIX) and specific UV absorbance (SUVA) increased, while spectral slope ratio (SR) decreased, suggesting enhanced terrestrial and urban runoff influence. Significant positive correlations were observed between protein-like C2 and terrestrial humic-like C3 with water quality parameters, indicating their utility as precise indicators of pollution sources and seasonal water quality variations. These findings provide a scientific basis for integrated management of urban outfalls.
Environmental Chemistry•2026•DOI: 10.7524/j.issn.0254-6108.2025022502
The design of stable and efficient O3 catalysts is critical for advancing heterogeneous catalytic ozonation (HCO) in industrial wastewater treatment. In this study, various iron-based bimetallic oxides were synthesized, and Fe-Co bimetallic oxide (FeCo-O) was identified as the optimal catalyst through degradation experiments and structural characterization. FeCo-O exhibits a single spinel structure with abundant metal valence states and synergistic effects between Fe and Co. Compared to conventional O3 oxidation, the FeCo-O/O3 system enhanced organic pollutant degradation by 2–3 times, demonstrating broad applicability under neutral or weakly acidic/alkaline conditions. Characterization revealed that FeCo-O promotes O3 activation via enhanced inter-metal electron transfer on the catalyst surface, increasing the generation of highly oxidative free radicals (·OH, ·O2−) and thereby improving pollutant degradation efficiency. In treating real industrial wastewater, the FeCo-O/O3 system achieved excellent COD removal, indicating its potential for both pre-treatment and advanced treatment applications. This study provides theoretical and practical guidance for designing efficient catalytic ozonation catalysts.
Journal of Environmental Engineering Technology•2026•DOI: 10.13205/j.hjgc.202606002
Industrial volatile organic compounds (VOCs) emissions are a major contributor to regional air pollution, and the rubber paste preparation process is a significant source. This study developed an intelligent monitoring system for whole-process VOCs management in a rubber paste preparation workshop, integrating software engineering and Internet of Things (IoT) technologies. The system architecture combines a hybrid database (MySQL relational and InfluxDB time-series), MQTT-based low-power wide-area communication, role-based access control, and containerized microservices. Field deployment at a large rubber enterprise enabled real-time monitoring of adsorption/desorption centrifugal fans and data fusion analysis. Under typical operating conditions, the extraction and ventilation systems achieved volume flow rates of 40,000 m³/h and 30,000 m³/h, respectively, maintaining a continuous micro-negative pressure environment that effectively suppressed fugitive emissions. The purification process, comprising zeolite rotor adsorption and regenerative thermal catalytic oxidation, reduced non-methane hydrocarbon (NMHC) concentrations to below 10 mg/m³, meeting the GB 27632—2011 emission standard. The system's multi-level permission management module precisely allocated operational responsibilities across production, environmental, and management roles, reducing response time to abnormal conditions. An online evaluation model for purification efficiency was constructed based on the actual process. The system demonstrates potential for extension to other high-VOCs industries such as coatings and printing. This research provides theoretical and practical references for applying computer technology to VOCs reduction and whole-process management in typical industries.
Journal of Environmental Engineering Technology•2026•DOI: 10.13205/j.hjgc.202606003
Membrane separation technology, offering high separation efficiency, low energy consumption, and operational flexibility, is promising for lithium recovery. However, selective lithium extraction from complex matrices such as salt lake brines and battery leachates remains challenging. Traditional membrane development relies on empirical trial-and-error, suffering from low efficiency and the permeability-selectivity trade-off. This review systematically delineates machine learning (ML)-based frameworks for membrane material development, including high-throughput rational screening, inverse design of synthesis protocols, and high-fidelity performance prediction. We elucidate how advanced ML algorithms decipher structure-activity relationships at the molecular level, enabling breakthroughs in performance ceilings and guiding bottom-up fabrication of next-generation membranes. Critical challenges are assessed: scarcity of high-quality standardized datasets, limited model interpretability, and poor generalizability to industrial scales. Future directions emphasize physics-informed hybrid models, open-source global databases, and full-process system optimization to bridge laboratory innovation and industrial deployment.
Journal of Environmental Engineering Technology•2026•DOI: 10.13205/j.hjgc.202606022
This study presents a numerical simulation of the internal flow field in a volatile organic compounds (VOCs) catalytic combustion reactor used in an enameled wire enterprise. Using ANSYS Fluent, the effects of inlet expansion section length, inlet expansion section angle, and catalyst bed spacing on the velocity field were systematically investigated. Additionally, the influence of heating tube configuration on the temperature field was analyzed. The results indicate that an expansion section length of 250 mm is optimal, balancing spatial constraints and the avoidance of recirculation zones. A zero-degree expansion angle yields the most uniform velocity distribution, though practical considerations necessitate case-specific angle selection. A catalyst bed spacing of 0.05 m satisfies the engineering requirement of maintaining pressure drop across a single catalyst layer below 200 Pa while significantly improving gas distribution within the bed. Alternating heating tubes on both sides of the reactor enhance temperature uniformity and elevate the overall catalyst bed temperature, thereby promoting efficient VOCs catalytic combustion. These findings provide quantitative guidance for reactor design optimization, contributing to improved catalytic performance and extended catalyst lifespan.
Journal of Environmental Engineering Technology•2026•DOI: 10.13205/j.hjgc.202606018
Swine wastewater, a high-strength organic effluent, offers a viable substrate for anaerobic biohydrogen production, aligning with clean energy recovery. This study compared hydrogen production in three anaerobic sequencing batch reactors (ASBRs) treating: raw wastewater (R1), supernatant after MAP (magnesium ammonium phosphate) precipitation for nitrogen and phosphorus recovery (R2), and the same supernatant with anaerobic sludge heat-treated at 75°C for 0.5 h (R3). Without pH adjustment, hydrogen production in R1 remained below 0.50 mmol/(kg·d). At an influent COD of 1800 mg/L, R2 and R3 achieved hydrogen production rates of 48.17 and 71.44 mmol/(kg·d), respectively. At COD 2400 mg/L, methane concentrations in R1, R2, and R3 were 10.8%, 14.2%, and 9.1%, respectively, indicating MAP pretreatment enhanced both hydrogen and methane production. As COD increased, R1's methane concentration rose to 14.6%, while average COD removal efficiencies for R1, R2, and R3 were 78.9%, 70.8%, and 52.5%, respectively. Under pH adjustment, all reactors peaked at pH 4.0, with hydrogen production rates of 0.10, 7.74, and 8.83 mol/(kg·d) for R1, R2, and R3, respectively. These findings demonstrate that MAP pretreatment combined with sludge heat treatment significantly enhances biohydrogen production, offering a promising strategy for swine wastewater valorization.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3820-5
Two novel N-heterocyclic carbene (NHC)-based ligands featuring rigid boron-oxygen (BO) fused-ring units, named Bpmi and Bpmb, and the two corresponding homoleptic meridianal iridium complexes, namely mer-Ir(Bpmi)3 and mer-Ir(Bpmb)3, were designed and synthesized. Single-crystal structures revealed a meridional coordination geometry for both complexes. Shorter Ir–C carbene bond lengths and rigid planar BO-fused ring units contribute to enhanced stability. Both complexes exhibit efficient green phosphorescence (λem = 536/521 nm in toluene, ΦPL > 78%) with short lifetimes (τ = 846/1083 ns), leading to high radiative rate constants (Kr = 10.04 × 10^5 and 7.29 × 10^5 s−1, respectively). Theoretical calculations indicate significantly increased metal-to-ligand charge transfer (MLCT) character (21.69% for mer-Ir(Bpmi)3; 17.30% for mer-Ir(Bpmb)3) compared to reference complexes (13.01% for mer-Ir(pmi)3; 15.99% for mer-Ir(pmb)3). Both complexes exhibit exceptional thermal stability with decomposition temperatures of 491°C (mer-Ir(Bpmi)3) and 540°C (mer-Ir(Bpmb)3). OLED devices using mer-Ir(Bpmb)3 and mer-Ir(Bpmi)3 as emitters demonstrate maximum external quantum efficiencies of 20.0% and 15.6%, respectively. This research pioneers boron-fused ring-containing NHCs and their phosphorescent iridium(III) complexes, establishing a novel design strategy for high-performance NHC-based OLED phosphorescent emitters.
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/s40843-025-3863-x
Lead-free double perovskites are promising for optoelectronic applications due to their tunable optical properties, stability, and non-toxicity. However, achieving efficient ultrabroadband near-infrared (NIR) emission and X-ray radioluminescence (RL) simultaneously remains challenging. Here, we report a Mo4+-doped Cs2(Na0.4Ag0.6)InCl6 double perovskite that exhibits efficient blue-light-excitable NIR emission with a near-unity photoluminescence quantum yield. The emitter demonstrates robust thermal stability, retaining 84% of its initial emission intensity at 420 K relative to 300 K. Under X-ray irradiation, the material shows bright NIR RL with a high light yield of 39,400 ± 1100 photons/MeV. A flexible film of Mo4+-doped Cs2(Na0.4Ag0.6)InCl6/polydimethylsiloxane (PDMS) was fabricated and applied as an NIR light source and X-ray scintillator. A dual-functional platform for cooperative NIR and X-ray imaging was established using a bullfrog palm as the target, achieving pixel-level fusion of NIR and X-ray images without spatial mismatch or complex image processing. The fused image simultaneously visualizes blood vessels and skeleton textures under the skin tissue. This work provides a viable strategy for lead-free double perovskites in advanced optoelectronic devices, particularly for multispectral imaging.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3890-6
Photothermal catalysis offers a sustainable route for CO2 conversion to value-added chemicals, yet precise control of active sites and light-harvesting materials remains challenging. Here, we report the rational integration of three-dimensional ordered macroporous (3DOM) CeO2 with positively charged (Niδ+)n clusters to construct efficient photothermal catalysts for the reverse water gas shift (RWGS) reaction. The 3DOM architecture enhances light absorption, improves access to active sites, and provides a confined environment for reactant enrichment. Engineering (Niδ+)n clusters within 3DOM CeO2 not only affords highly active sites for H2 adsorption and dissociation but also modulates the local structure of CeO2 to promote CO2 adsorption and activation. Furthermore, the (Niδ+)n clusters significantly enhance light-harvesting capability across the UV-vis-NIR spectrum, generating a pronounced photothermal effect that accelerates reaction kinetics. The optimized (Niδ+)n/CeO2 catalyst exhibits outstanding photothermal catalytic performance, achieving a CO production rate of 63.36 mmol g−1 h−1 in a flowing reaction with CO selectivity of 93% under simulated solar irradiation (2.6 W cm−2). Theoretical calculations reveal that the (Niδ+)n/CeO2 catalyst reduces the thermodynamic energy barrier for *COOH formation in CO2 hydrogenation. This study offers valuable insights into the design of photothermal catalysts, highlighting the significant potential of active-site engineering in promoting efficient CO2 conversion for practical solar-to-fuel production.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4053-5
The rapid and efficient removal of radioactive iodine species from water is critical for nuclear waste treatment, particularly given the short half-life of 131I (8.02 days). Traditional porous inorganic materials exhibit low uptake capacities (<1 g g−1), while porous frameworks such as MOFs and COFs achieve high capacities (>5 g g−1) but suffer from slow removal kinetics, often requiring hours to capture 80% of iodine. This study introduces nonporous naphthobipyrrole-based organic cages (NBP-Cages) that demonstrate ultrafast iodine removal from water. Among the materials tested, type-II Me-NBP-Cage and Et-NBP-Cage, prepared via reprecipitation, exhibit amorphous morphology with small particle sizes (2–6 μm) and low BET surface areas (33.4 and 2.3 m2 g−1, respectively). Despite their nonporosity, these materials achieve >99% iodine removal within seconds, outperforming previously reported sorbents. The adsorption performance correlates with particle size and morphology: amorphous, small particles with effective surface gaps show superior kinetics. The materials are recyclable; for instance, Et-NBP-Cage can be regenerated by washing with acetonitrile, maintaining removal efficiency over five cycles. This work highlights the potential of nonporous organic cages as high-performance iodine sorbents, addressing the critical need for materials that combine high uptake capacity with rapid removal kinetics.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-3961-8
This correction addresses an inadvertent misplacement of Fig. 4b3 during figure reorganization in the original article published in Science China Materials, volume 65, issue 10, 2022, page 2850 (DOI: 10.1007/s40843-022-2024-6). The corrected Fig. 4b is presented herein. The authors confirm that this correction does not affect the results, conclusions, text, or figure caption of the original work. The correction was requested by the authors and received on 6 January 2026, accepted on 8 January 2026, and published online on 10 February 2026. The original study introduced flexible electrostatic hydrogels derived from marine organisms for nitric oxide-enhanced photodynamic therapy against multidrug-resistant bacterial infections. The correction ensures the accurate representation of experimental data, maintaining the integrity of the scientific record.
Chinese Journal of Environmental Engineering•2026•DOI: 10.12030/j.cjee.202509055
Microbial communities are the core functional units in environmental biotechnology. Magnetic field technology, as a non-invasive physical enhancement method, has shown application potential in wastewater treatment and waste resource recovery. Traditional ecological theory posits a positive correlation between species diversity and system function/stability. However, magnetic field enhancement often coincides with improved system performance and decreased microbial diversity, indicating a decoupling. This review systematically explains this phenomenon as the result of magnetic field-driven functional specialization of microbial communities. Magnetic fields act on paramagnetic targets in energy metabolism, including iron-sulfur clusters and cytochromes, alter cell surface physicochemical properties, impose oxidative stress, and select strains with high metabolic flexibility, thereby achieving targeted enrichment of key functional groups such as ammonia-oxidizing bacteria and electroactive bacteria within Proteobacteria. Although such functionally specialized communities have reduced species richness, they exhibit higher energy metabolism efficiency, enhanced electron transfer capacity, optimized interspecies cooperation networks, and strengthened system robustness. These advantages collectively support efficient and stable macroscopic bioprocess performance. This study also discusses potential limitations regarding ecosystem resilience and scenario dependence, and envisions future directions such as quantitative modeling and synergy with magnetic materials to advance magnetic field technology from empirical application to rational design.
Chinese Journal of Environmental Engineering•2026•DOI: 10.12030/j.cjee.202511076
This study investigated the altitudinal distribution and enrichment characteristics of heavy metals in the soil-plant system of the northern and southern mountains of Lhasa on the Tibetan Plateau. Soil and dominant plant samples were collected from three sites along an elevation gradient from 3,650 to 4,150 m, and concentrations of Cr, Cd, Cu, Zn, Ni, As, and Pb were analyzed. Soil heavy metal concentrations ranged from 0.06 to 184.4 mg·kg−1, with all elements except Cd and Pb exceeding local background values. Plant heavy metal concentrations were within normal ranges, indicating no obvious stress. Correlation analysis revealed significant positive correlations between soil Zn and Cd, Cr and Ni, and plant Zn and Cu. Except for Cr, Cu, and Cd, plant and soil concentrations of the same element were significantly correlated. Bioconcentration factor (BCF) analysis showed that most plants had weak enrichment capacity (BCF < 1), but five species, including Ephedra sinica and Rheum likiangense, exhibited BCF > 1 for Cd, with R. likiangense showing the highest BCF of 4.01. The enrichment capacity varied with altitude and species. Potential ecological risk assessment indicated that Cd posed a relatively high risk in plants, warranting attention. This study fills a gap in understanding the spatial distribution and enrichment of heavy metals in this region, providing a scientific basis for ecological management and environmental protection.
Chinese Journal of Environmental Engineering•2026•DOI: 10.12030/j.cjee.202511020
With the increasing number of oil pipelines crossing rivers, the potential risks of oil leakage and surface spreading to river ecosystems and water environments are becoming more severe. Scenario-based simulation of oil spill diffusion is a prerequisite for effective interception point placement and leakage risk prevention. Numerous factors influence oil spill diffusion, including environmental conditions, river hydrology, and accessibility of emergency resources. This study integrates these factors and multiple dynamic processes to design eight typical scenarios for oil spill diffusion simulation, considering emergency resource locations, river hydrological regimes, and leakage modes. A case study is conducted on an oil pipeline crossing a river in northwest China. Results indicate that the diffusion distance and affected area are primarily controlled by water conditions and emergency resource accessibility. In emergency management, the efficiency of maintenance and repair resources during high-water months should be prioritized. Mechanistically, external forces such as hydraulic and wind forces have a greater influence on diffusion distance, surpassing internal forces like gravity, viscosity, and surface tension within a short time. For river crossings near emergency resources, internal force effects should be considered in oil spill diffusion simulations. When emergency resource arrival times are long, the diffusion distance based on Fay's theory is relatively small and can be neglected in engineering practice. This study provides a computational basis and methodological reference for risk assessment and emergency response to potential oil spills from pipelines crossing rivers, enhancing the scientific and effective nature of risk prevention and emergency handling.
Journal of Fuel Chemistry and Technology•2026•DOI: 10.3724/2097-213X.2025.JFCT.0037
Alumina microspheres with a lamellar-assembled flower-like morphology were synthesized via a urea-assisted hydrothermal method and used as supports to prepare Pd/Al2O3-M catalysts by incipient wetness impregnation. The catalytic performance was evaluated in the selective hydrogenation of isoprene and the hydrogenation of 2-ethylanthraquinone for hydrogen peroxide production, and compared with a commercial alumina-supported Pd catalyst (Pd/Al2O3). Characterization revealed that the flower-like structure, composed of stacked nanosheets, promoted high Pd dispersion and enhanced metal-support interaction, leading to a higher surface Pd content and more abundant active sites. Under 60 °C and 1 MPa H2, Pd/Al2O3-M achieved 95.2% conversion of isoprene with 98.3% total selectivity to isoamylenes, and exhibited good stability over 24 h. In anthraquinone hydrogenation, it reached a hydrogenation efficiency of 15.8 g/L, a 27.4% improvement over Pd/Al2O3 (12.4 g/L). The study demonstrates that modulating carrier morphology is an effective strategy to simultaneously enhance activity, selectivity, and stability of Pd catalysts, offering a promising approach for designing efficient hydrogenation catalysts.
Environmental Chemistry•2026•DOI: 10.7524/j.issn.0254-6108.2025032001
This study investigates the variation of polychlorinated dibenzo-p-dioxins and dibenzofurans (PCDD/Fs) and their monomer components during low-temperature thermal decomposition (250–500 °C) of municipal solid waste incineration fly ash from a typical mechanical grate furnace. Results demonstrate that pyrolysis temperature and time significantly affect the solid-phase removal rates of PCDD/F mass concentration and toxic equivalent (TEQ) concentration. The influence weights of temperature on mass and TEQ removal rates are 20.86 and 21.41, respectively, while those of time are 4.27 and 3.36. Response surface analysis identifies optimal conditions at 380 °C for 1.0 h. At 250–300 °C, both PCDFs and PCDDs concentrations increase synchronously, indicating enhanced formation. At 300 °C for 2.0 h, high-chlorinated congeners undergo dechlorination to low-chlorinated ones, notably increasing 2,3,7,8-T4CDD (I-TEF=1.0) and 1,2,3,7,8-P5CDD (I-TEF=0.5). From 350 °C upward, significant degradation occurs; at 380 °C (1.0 h), degradation rates for PCDDs and PCDFs reach 97.8% and 97.6%, respectively, effectively reducing TEQ-contributing congeners. The process proceeds in two stages: initial dechlorination, followed by destruction of dioxin-like compounds at higher temperatures. 2,3,7,8-T4CDD emerges as a critical component for detoxification. These findings provide a scientific basis for optimizing thermal treatment of fly ash to minimize environmental and health risks.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-4079-4
Utilization of ultrahigh-nickel LiNi_xCo_yMn_1-x-yO_2 (NCM) (x > 0.97) in Li-ion batteries can distinctively boost energy density through enhanced discharge capacity. However, capacity and thermal stability deteriorate as Ni content approaches the limit. Here, we propose a facile strategy by introducing high-valence tungsten (W) into ultrahigh-nickel polycrystalline LiNi_0.98Co_0.01Mn_0.01O_2 (PCNCM98). W-doped PCNCM98 (W-PCNCM98) exhibits refined, compactly stacked primary particles, whereas PCNCM98 shows equiaxial, non-uniform larger particles. The refined microstructure enhances mechanical strength: average particle hardness of W-PCNCM98 is 104 MPa, 1.5 times higher than PCNCM98 (68 MPa). This improved mechanical property suppresses lattice volume changes and relieves microcrack formation from H2–H3 phase transition. Consequently, cycling performance in pouch-type full cells is significantly enhanced, with capacity retention of 73% after 2000 cycles at 1 C and 25 °C, 54% higher than PCNCM98. Enhanced structural stability and strong electron affinity of W6+ also improve thermal stability: exothermic peak for W-PCNCM98 is postponed to 203 °C with heat generation of 1287 J g−1, versus 190 °C and 1528 J g−1 for PCNCM98. This high-valent doping strategy stabilizes ultrahigh-nickel NCM cathodes, accelerating large-scale EV applications.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3949-4
Sodium metal is considered an ideal anode material for high-performance sodium-based batteries. However, volume changes and dendrite growth during cycling seriously restrict its practical application. To address these challenges, this study utilizes harmful green tide algae Enteromorpha prolifera as a raw material to fabricate a self-supporting, sodiophilic, 3D Enteromorpha prolifera-derived carbon (EC) matrix via defect engineering. The results demonstrate that the 3D EC matrix can reduce nucleation overpotential, enhance binding ability with sodium atoms, and induce sodium to deposit horizontally inside EC, effectively addressing the issue of dendrite formation. Furthermore, the Na-EC symmetric cell demonstrates exceptional cycling stability with an ultralow polarization of 12 mV over 1000 h at 5 mA cm−2, 5 mA h cm−2. Notably, this stability persists even under ultrahigh current density and areal capacity conditions (30 mA cm−2, 30 mA h cm−2), maintaining stable operation for 500 h. When configured in full-cell systems with Na3V2(PO4)3 cathode, the assembled cell delivers an initial discharge capacity of 108.1 mA h g−1 at a 1 C rate, and maintains a capacity retention rate of 94.4% after 500 cycles. This study proposes an innovative strategy to advance high-performance dendrite-free sodium metal batteries through the recycling of marine environmental waste into functional energy materials.
Chinese Journal of Environmental Engineering•2026•DOI: 10.12030/j.cjee.202511025
Under the national carbon peak and carbon neutrality goals, carbon reduction in municipal wastewater treatment plants (WWTPs) has been largely overlooked, yet accurate accounting is the first step toward mitigation. This study establishes a carbon emission accounting method for a municipal WWTP in Lanzhou, covering the operation and maintenance phase, to identify key emission sources and propose feasible reduction pathways. The results show that the total annual carbon emission in 2023 was 61,399.80 t CO2-eq, with an emission intensity of 0.71 kg CO2-eq per tonne of wastewater treated. Monthly emissions were relatively stable, with a coefficient of variation of 3.46%. Direct emissions accounted for 47.47% of the total, with N2O being the dominant contributor (61.89% of direct emissions), followed by CO2 (30.88%) and CH4 (7.23%). Indirect emissions accounted for 52.53%, dominated by electricity consumption (95.15% of indirect emissions). Pearson correlation analysis revealed that direct carbon emissions per tonne were significantly correlated with influent BOD5 concentration, influent TN concentration, BOD5 removal rate, and TN removal rate (P < 0.01). Sensitivity analysis identified sewer retention time, fossil carbon fraction in influent, and solids retention time as the most influential parameters, with sensitivity coefficients of 0.42, 0.35, and 0.28, respectively. Considering uncertainties in emission factors and monitoring errors, the 95% confidence interval for annual total emissions was 55,200–67,600 t CO2-eq, corresponding to an emission intensity of 0.64–0.79 kg CO2-eq per tonne. Recommendations focus on three synergistic reduction strategies: reducing source emissions, lowering energy consumption, and enhancing carbon compensation.
Chinese Journal of Environmental Engineering•2026•DOI: 10.12030/j.cjee.202510017
Municipal solid waste (MSW) is a significant source of urban carbon emissions. This study integrates life cycle assessment (LCA) and system dynamics (SD) to construct a multi-subsystem LCA-SD model covering economy, population, waste generation, transportation, treatment, and resource utilization, using Fuzhou City as a case study. The model was validated against historical data and uncertainty analysis. Carbon emissions from MSW transportation, treatment, and resource utilization during 2013–2023 were calculated, and emission trends under seven reduction scenarios for 2024–2035 were predicted. Results show that Fuzhou's MSW treatment evolved through three stages: 'landfill+incineration', 'treatment structure adjustment', and 'incineration+kitchen waste resource utilization', corresponding to emission growth, fluctuation, and reduction periods. In 2023, total net carbon emissions were 1.07×10^6 t CO2-eq, with incineration being the largest contributor (9.93×10^5 t), followed by transportation (2.93×10^4 t), leachate treatment (2.14×10^4 t), and kitchen waste treatment (7.90×10^3 t, negative emission). Scenario analysis indicates that without further measures, carbon neutrality cannot be achieved. Synergistic enhancement of kitchen waste separation and incineration power generation efficiency can significantly boost reduction, potentially achieving carbon neutrality by 2032. The study provides a dynamic accounting and scenario assessment framework for low-carbon transition of urban solid waste systems.
Journal of Fuel Chemistry and Technology•2026•DOI: 10.1016/S1872-5813(26)60676-7
Landfilled municipal solid waste (MSW) in China exceeds 8 billion tons, with high moisture (30–50%) and ash content (>50%), complicating conventional treatment. Slag gasification offers a clean and resource-oriented route, but heavy metal leaching from the resulting slag poses environmental risks. This study investigates the effect of rice husk addition (5–15%) on the vitrification of landfilled-waste slag and the immobilization of heavy metals (Cr, Zn, Cu). Results show that adding 5–10% rice husk lowers the slag flow temperature to a minimum of 1213 °C, attributed to active SiO2 reacting with CaO and Fe2O3 to form low-melting eutectics like anorthite. Leaching concentrations of Cr and Zn decrease from 41.60 and 108.00 mg/L to 5.89 and 7.10 mg/L, respectively, with 10–15% rice husk. The amorphous SiO2 enhances silicate polymerization (Q3, Q4 networks), promoting physical encapsulation and chemical incorporation of heavy metals into stable phases such as Zn2SiO4 and CuFe2O4, increasing the residual fraction and reducing bioavailability. At temperatures >1400 °C, volatilization of Cu and Zn increases, with residual rates dropping to 33–60% and 31–55%, respectively, while Cr remains stable (70–123%). This work elucidates the mechanistic role of rice husk in slag structure modulation and heavy metal immobilization, providing a theoretical basis for the co-treatment of landfilled waste and biomass via a 'treating waste with waste' strategy.
Chinese Journal of Environmental Engineering•2026•DOI: 10.12030/j.cjee.202511062
Sediment microbial fuel cells (SMFCs) are a green technology for simultaneous polluted sediment remediation and energy recovery, yet their performance is constrained by insufficient anodic microbial activity and low electron transfer efficiency. This study employed lactate addition combined with composite engineered microbial immobilization to synergistically optimize SMFC performance by enhancing microbial stability and carbon source supply. Results showed that lactate, as an easily utilized electron donor, promoted electrochemical activity, achieving a maximum power density of 22.06 mW·m−2 at 6 mmol·L−1, a 194% improvement over the blank group. Immobilization further enhanced electron transfer efficiency, with the highest output voltage (88.75 mV) being 2.09 times that of the non-immobilized group. For pollutant degradation, the 6 mmol·L−1 lactate group achieved TOC and TN removal rates of 29.02% and 28.4%, respectively, outperforming the control (22.41% and 21.42%). However, high lactate concentrations inhibited microbial metabolism, leading to TOC accumulation. 16S rRNA analysis revealed that the anodic microbial community was dominated by Bacillota and Pseudomonadota, both possessing electroactive and pollutant-degrading capabilities, indicating that lactate and immobilization exert a synergistic effect in SMFCs, simultaneously enhancing electricity generation and pollutant removal efficiency.
Environmental Chemistry•2026•DOI: 10.7524/j.issn.0254-6108.2025051502
Contamination of indoor air with illicit drugs poses a serious threat to public health and safety. Accurate and precise methods for monitoring these drugs are crucial for combating drug production, trafficking, and abuse, as well as reducing the risk of occupational exposure in law enforcement and healthcare workers. Current on-site rapid detection techniques for drugs in indoor air primarily include ion mobility spectrometry and electronic nose technology. Chromatography-mass spectrometry techniques are often used in the laboratory. Monitored drug types include heroin, amphetamine-type stimulants, cannabis, cocaine, synthetic cannabinoids, and fentanyl analogs, with concentration ranges ranging from a few ng·m−3 to several hundred µg·m−3. Drug concentrations are influenced by factors such as the drug type, methods involved in production and abuse, intensities of human activity, and ventilation conditions. While it has been demonstrated that long-term exposure to drug-contaminated environments may cause persistent physical discomfort, the specific mechanisms underlying health risks require further investigation. This paper reviews the sources of illicit drugs in indoor air, their detection methods, and typical application scenarios. It also analyzes the shortcomings of existing studies and proposes future research directions. The aim is to provide technical references for the monitoring of drugs in indoor air environments.
Environmental Chemistry•2026•DOI: 10.7524/j.issn.0254-6108.2025051802
This study investigates the recovery of nitrogen and phosphorus from anaerobic digestion biogas slurry of chicken manure via magnesium-modified zeolite coupled with electrochemical precipitation crystallization. Three types of magnesium-modified zeolites were prepared using alkali activation and magnesium loading to enhance adsorption capacity. A coupled 'magnesium-modified zeolite-electrochemical MAP' reactor was constructed, and key parameters (N/P ratio, pH, current density) were optimized via response surface methodology. The results show that MgCl2-modified zeolite (MgCl2-ZO) exhibited the best coupling precipitation performance. Under optimal conditions (N/P ratio 3.78, pH 8.43, current density 13.11 A·m−2), the removal efficiencies for total nitrogen (TN), total ammonium nitrogen (TAN), total phosphorus (TP), and total phosphate (TPS) reached 54.84%, 62.93%, 82.02%, and 77.72%, respectively. The mechanism involves synergistic adsorption and electrochemical release of Mg2+ from the magnesium electrode, which promotes struvite crystallization. The electrochemical field enhances ion exchange and chemical precipitation on the zeolite surface, facilitating efficient nutrient recovery. This approach offers a promising solution for nutrient management in livestock wastewater.
Environmental Chemistry•2026•DOI: 10.7524/j.issn.0254-6108.2025051404
Rubber additives, such as 1,3-diphenylguanidine (DPG) and p-phenylenediamine antioxidants (PPDs), are widely used in the rubber industry and have been increasingly detected in aquatic environments. This study investigated the distribution characteristics and potential sources of seven typical rubber additives (DPG, 6PPD, IPPD, DPPD, CPPD, DNPD, and 77PD) and the transformation product 6PPD-Q in surface water of the Guangzhou section of the Pearl River, China. A total of 29 sampling sites were analyzed. Total concentrations of the target compounds ranged from 205 to 5400 ng·L−1, with a mean of (820±1100) ng·L−1. DPG was the dominant compound in both dissolved and particle phases, accounting for (99±1.9)% and (66±13)% of the total concentrations, respectively. Source analysis indicated that aquaculture, vessel navigation, agricultural runoff, and wastewater treatment plant discharges likely influence the occurrence of rubber additives in this river section. Risk quotient (RQ) assessment revealed that 6PPD-Q posed high ecological risk at all sampling sites (RQ > 1), while DPG exhibited moderate to high risk at most sites (RQ > 0.1). In contrast, 6PPD, IPPD, CPPD, and DPPD showed low ecological risk. These findings highlight the need for heightened attention to the ecological risks posed by 6PPD-Q and DPG in the Pearl River Basin and provide scientific data for pollution prevention and risk management.
Journal of Environmental Engineering Technology•2026•DOI: 10.13205/j.hjgc.202608015
Inter-basin water diversion projects can profoundly alter the water quality dynamics of receiving basins. Taking the Qincun Reservoir and its downstream reaches in the Huangze River Basin as a case study, this research quantitatively evaluates water-quality responses under multiple coordinated management measures. An integrated Environmental Fluid Dynamics Code-Soil and Water Assessment Tool (EFDC-SWAT) modeling framework was established, coupling a two-dimensional hydrodynamic-water-quality model for the reservoir with a hydrology-water-quality model for the downstream reaches. Seven management scenarios were designed to reflect various combinations of point- and non-point-source pollution control strategies. Simulations focused on spatiotemporal variations in key indicators—total nitrogen (TN), total phosphorus (TP), ammonia nitrogen (NH3-N), and permanganate index (CODMn)—and assessed pollution-load reduction effectiveness. Comparative analysis using the comprehensive water quality identification index (CWQII) revealed that under Scenario 3 (highest pollution-control standards with lowest diversion volume), TN and TP concentrations in the reservoir decreased by 80% and 50%, respectively, achieving Class II water-quality standards. Downstream TN and TP levels declined by 36% and 33%, and the CWQII improved from 4.211 to 3.410. Land consolidation contributed 77% and 45% to TN and TP load reductions in the reservoir, respectively, while a 20% reduction in diversion volume was most effective in improving downstream TN (>50%). These results demonstrate that the coupled EFDC-SWAT model effectively elucidates mechanisms through which inter-basin water diversion influences water quality in supply areas. Moreover, synergistic point- and non-point-source controls exhibit a nonlinear enhancement effect on overall water-quality improvement.
Journal of Environmental Engineering Technology•2026•DOI: 10.13205/j.hjgc.202608013
Eutrophication and cyanobacterial blooms threaten aquatic ecosystems and drinking water safety globally. This study evaluated the efficacy of a compound algicide (PQGA-126, PAC, and red soil) combined with submerged plants (Vallisneria natans and Hydrilla verticillata) for suppressing blooms and restoring eutrophic water. Indoor static experiments used algae-laden water from Nanhu Lake, Gongqingcheng, Jiangxi. Six treatments were established: control, V. natans alone, H. verticillata alone, algicide alone, algicide + V. natans, and algicide + H. verticillata. Results demonstrated that combined treatments significantly reduced total nitrogen (TN), total phosphorus (TP), chlorophyll-a (Chl-a), and turbidity, markedly lowering eutrophication within a short period. The combined approach outperformed single-plant treatments, with algicide + V. natans achieving the greatest reduction in the comprehensive trophic state index. Additionally, the algicide significantly enhanced V. natans growth rate and H. verticillata catalase (CAT) activity, indicating species-specific physiological responses. These findings suggest that integrating compound algicide with submerged plants, particularly V. natans, offers a promising strategy for rapid and effective eutrophic water remediation.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4091-4
Perovskite photovoltaics offer exceptional promise for next-generation solar energy, yet their commercialization is impeded by a critical scalability-stability gap: scalable solution-processed coating methods introduce distinct fluid dynamics and crystallization kinetics, yielding varied film morphologies and unstable degradation behaviors. This review addresses this challenge by re-examining stability exclusively through scalable solution-based fabrication. Degradation mechanisms in scalable processing are dissected, emphasizing precursor ink design—solute purity, ink aging, and solvent engineering—which collectively govern film uniformity and reproducibility. Intrinsic instabilities exacerbated under scalable processing are analyzed via crystal and compositional design, defect generation and passivation, and ion migration in large-area devices. Stable device architectures suitable for scalable manufacturing are explored, comparing n-i-p and p-i-n configurations and advancements in charge transport layers. Encapsulation is critically evaluated as the ultimate barrier for commercial modules, covering scalable techniques and material selections, alongside an assessment of operational stability under real-world environments including moisture ingress, thermal cycling, and UV-induced degradation. By integrating these insights, this review establishes a holistic framework for co-designing process scalability and operational longevity, outlining a coherent pathway toward durable and commercially viable perovskite solar modules.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3991-3
Ionic covalent organic frameworks (ICOFs), as an emerging subclass of covalent organic frameworks (COFs), have garnered significant attention owing to their unique integration of structural precision and ionic functionality. Although conventional neutral COFs possess excellent crystallinity, tunable porosity, and high stability, their limited electronic tunability and poor charge-transport properties have constrained their performance in various applications. The incorporation of ionic sites into COF skeletons or pore environments effectively overcomes these intrinsic limitations. The presence of charged centres enhances framework polarity, modulates local electrostatic fields, and facilitates efficient ion migration and charge separation, thereby endowing ICOFs with superior functionality. As a result, ICOFs have demonstrated remarkable potential in diverse fields, including adsorption, sensing, ion conduction, energy devices, photocatalysis, and electrocatalysis. This review provides an integrative perspective by systematically linking framework design, ionic site engineering, structure-property relationships, and functional performance in various applications, highlighting ICOFs distinct advantages over neutral COFs and providing fundamental insights for the rational design of next-generation ionic frameworks toward energy and environmental applications.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-4021-5
Lead-free halide double perovskites have attracted significant attention owing to their eco-friendliness, structural tunability, and self-trapped exciton emission. Nevertheless, achieving efficient and stable near-infrared-II (NIR-II) luminescence, especially in materials incorporating lanthanide ions, remains a considerable challenge in photonics research. Herein, we report a notable advance in the design and synthesis of Sb3+-sensitized Cs2NaLuCl6:Er3+ double perovskite single crystals, which exhibit an unprecedented external quantum efficiency of 45.3% for emission at 1542 nm. Sb3+ acts as a broadband ultraviolet absorber and transfers energy to Er3+ via self-trapped exciton emission. Moreover, at high concentrations of Er3+, Er3+-Er3+ cross relaxation (2H11/2 + 4I15/2 → 4I9/2 + 4I13/2) selectively populates the NIR-emitting 4I13/2 state, suppressing competitive visible emission pathways. This synergistic host-sensitizer-activator design strategy, supported by density functional theory calculations, addresses long-standing efficiency limitations and opens new avenues for high-performance NIR-II emitters in bioimaging, night vision, and optical communications.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-4009-0
Micro light-emitting diode (Micro-LED) display technology is a promising next-generation display technology due to its high brightness, high contrast, low power consumption, long life, and fast response. However, aggressive downscaling of Micro-LEDs to a few microns makes lift-off fabrication of metal bumps for soldered joints between Micro-LEDs and driver substrates increasingly difficult, challenging high-yield bump arrays under high-density conditions. This study innovatively replaces conventional metal bumps with a photosensitive conductive polymer (PCP), enabling fabrication of polymeric micro-bump arrays via well-established photolithography, bypassing complex lift-off processes and reducing short-circuit risk. Isopropyl alcohol regulates developer wettability for optimal development, yielding bump arrays with bump size 20 μm × 12 μm and height (1.9288 ± 0.0213) μm on thin-film transistor (TFT) drivers with yield over 99.99%. The issue of low bonding yield from polydimethylsiloxane (PDMS) thermal expansion was resolved by adjusting chip spacing on the temporary substrate, achieving bonding yield exceeding 99.8%. A 0.99-inch full-color Micro-LED display with density 114 pixels per inch (PPI) and brightness 5537 cd/m² was fabricated. High-yield bump arrays, Micro-LED arrays, and high bonding yield are highly reproducible, promoting development of Micro-LED displays and related fields.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-4068-2
Eutectic high-entropy alloys (EHEAs) combine multi-principal-element compositions with regular lamellar microstructures, offering exceptional high-temperature stability and mechanical properties. However, conventional casting yields random solidification microstructures and inhomogeneous phase distributions, constraining strength-ductility synergy. This study employs directional solidification (DS) on Al19Fe20Co20Ni41 EHEA to achieve precise microstructural control, constructing a multi-level lamellar architecture with a herringbone-like alternating arrangement. This tailored microstructure refines interlamellar spacing, eliminates detrimental isolated B2 phases, and promotes slip continuity at interfaces, enhancing coordinated dislocation motion and uniform distribution across multiple slip systems. Consequently, the DS EHEA exhibits superior mechanical properties compared to most reported thermomechanically processed and directionally solidified HEAs. Micro-mechanistic analysis reveals that homogenized geometrically necessary dislocation (GND) density, interface-assisted crack deflection, and multi-stage strain-hardening from sequential dislocation activation collectively contribute to outstanding strength-ductility synergy. This work demonstrates that programming solidification paths enables design of unique multi-level lamellar architectures, serving as intrinsic microstructural composites that optimize dislocation management and crack propagation, offering a novel paradigm for developing ultra-robust EHEAs for extreme service environments.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-4056-1
Nanoparticle-based therapeutics have been intensively explored for tumor treatment. However, developing convenient and specific strategies that do not rely on exogenous energy-guided activation remains challenging. Herein, an ion-exchange-driven chemodynamic therapy is proposed based on the TME K+-mediated cation exchangeability of layered ferrous silicates (LFSs). LFSs were prepared by a facile "in situ 3D-to-2D structural transformation" strategy through valence bond transition from SiO–H–OSi to Fe–O, providing extensive convenience compared to conventional exfoliation methods. The structure-activity relationship and mechanism between surrounding TME ions and the cation exchange behavior of LFSs were revealed by both experimental investigation of the cation-exchange process and DFT calculations of the adsorption hydration behavior. As a result, the interlayered Fe ions were selectively and preferentially exchanged by TME K+ rather than surrounding TME Na+, Mg2+, Ca2+, or Cl−, thereafter activating specific Fenton reaction together with TME H+, H2O2, and glutathione, demonstrating highly precise catalytic therapeutic efficacy both in vitro and in vivo. This study proposes an original tumor-specific therapy modality with high precision and safety through taking advantage of ionic exchangeability of layered silicate, and provides enlightenment to reverse the TME K+ disorder.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3996-x
Bioadhesives that rapidly and reliably seal wet tissues remain a formidable challenge due to the trade-off between mechanical compliance and swelling-induced instability in physiological environments. To address this limitation, we report a hydrophobic effect-mediated bioadhesive, consisting of methacrylated phenylalanine hyaluronic acid (HA) adhesive (MPAH), which integrates ultrafast photo-crosslinking with strong tissue adhesion and low swelling. Through the synergistic incorporation of hydrophobic phenylalanine groups and N-hydroxysuccinimide (NHS) esters, MPAH forms gelation within 2 s under UV irradiation, significantly outperforming commercial fibrin glues. The adhesive shows a lap shear strength of ~35 kPa on wet porcine casings, an extensibility exceeding 60%, and a compressive strength of ~475 kPa. In contrast to conventional HA hydrogels and commercial fibrin glues, MPAH maintains a low equilibrium swelling ratio below 30% in PBS over 16 days. This behavior is attributed to hydrophobic interactions and π-π stacking within the network, effectively preventing tissue compression and interfacial detachment. In rat wound models of linear incision and full-thickness skin defects, MPAH demonstrated rapid sealing, reduced inflammation, and accelerated re-epithelialization compared to fibrin glue and sutures, highlighting its potential as an effective bioadhesive for wound closure and soft tissue repair.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-4052-0
Cutaneous wound infections affect millions of patients annually worldwide, and early diagnosis is critical for timely anti-infection treatment. Bacterial infections alter wound pH, offering a promising diagnostic approach. Here, a diagnostic smart dressing (CMC-PDBI) is developed by ultraviolet-initiated crosslinking of a pH-responsive indicator coating, incorporating modified bromothymol blue, onto a carboxymethyl cellulose substrate. The dressing exhibits superior pH-triggered color-changing performance in both phosphate buffer solution and bacterial cultures across the pH range associated with wound infection (orange at pH 6.0, green from pH 6.5 to 7.5, blue at pH 8.0). In a murine wound infection model, CMC-PDBI indicates infection two days before symptomatic manifestation. Early therapy guided by the dressing accelerates wound healing and reduces inflammation. A smartphone application (InfectSense) assists in identifying infection risk. This work presents a novel early-warning platform for qualitative visual diagnosis of wound infections before clinical symptom onset, with high potential for clinical and home care settings.
Journal of Fuel Chemistry and Technology•2026•DOI: 10.1016/S1872-5813(26)60668-8
A series of Co-based molecular sieve catalysts with varying Si/Al ratios was synthesized via impregnation. Microstructural properties of Co active sites were characterized by XRD, TEM, Raman, H2-TPR, Py-FTIR, and XPS. Results indicate that surface Co species predominantly exist as CoOx nanoclusters and isolated Co2+, with the latter exhibiting superior N2O decomposition activity. Decreasing the Si/Al ratio of the MFI zeolite promotes the formation of isolated Co2+ active sites, thereby enhancing catalytic performance. Compared to Co/S-1 (pure silica support), the Co/HZ60 catalyst (low Si/Al ratio ZSM-5) lowers the temperature for complete N2O decomposition by 80 °C and demonstrates excellent resistance to O2 and NO. The strong interaction between the zeolite framework and Co2+ inhibits oxidation to Co3+, improving N2O adsorption and activation. This work provides a rational design strategy for efficient and stable Co-based catalysts for N2O abatement in industrial tail gases.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4126-0
Flexible X-ray detectors are constrained by the difficulty of producing semiconductor films that simultaneously exhibit uniform morphology, high crystallinity, and mechanical robustness. Here, we introduce a hydrogen-bond engineered supramolecular (HBES) strategy to overcome these limitations in supramolecular bismuth halide clusters (PDBiI5). By incorporating polyacrylic acid (PAA), a dynamic supramolecular network is formed that suppresses the coffee-ring effect during ultrasonic spray-coating via increased solution viscosity and controlled kinetic balance between solvent evaporation and solute diffusion. The HBES approach also modulates crystallization kinetics, extending crystal growth time from 23 to 41 s, yielding densely packed films with enhanced crystallinity and reduced defect states. These improvements lead to superior charge transport: a hole mobility of 2.16 cm2 V−1 s−1 and a mobility-lifetime product of 9.1 × 10−4 cm2 V−1. The resulting X-ray detectors achieve a record sensitivity of 19,009 μC Gyair−1 cm−2 and an ultralow detection limit of 3.35 nGyair s−1, with excellent operational and environmental stability. Leveraging the mechanical robustness from the supramolecular network, we demonstrate the first direct-type flexible X-ray imager, retaining 85% performance after 1000 bending cycles. This imager overcomes geometric distortion and vignetting, maintaining 85% edge photocurrent versus 58% for rigid detectors, enabling clear imaging of curved objects. This work establishes a versatile supramolecular engineering paradigm for high-performance flexible X-ray detection and imaging.