SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4363-6
Aqueous zinc-ion batteries (AZIBs) offer a compelling combination of high safety, environmental compatibility, and abundant zinc resources, positioning them as viable candidates for grid-scale energy storage. Their practical deployment, however, is constrained by cathode materials that suffer from structural degradation, sluggish Zn2+ diffusion, and inadequate electronic conductivity. Ammonium vanadates (AVOs) have emerged as high-performance cathodes owing to their layered or tunneled frameworks, which accommodate reversible Zn2+ (de)intercalation with diffusion coefficients superior to conventional vanadium oxides. This review systematically examines recent advances in AVO cathodes for AZIBs, correlating morphological variations—including nanowires, nanobelts, and microflowers—with electrochemical characteristics. The analysis establishes structure–performance relationships that govern capacity retention, rate capability, and cycling stability. Key optimization strategies are critically assessed: defect engineering to enhance electronic conductivity and active site density, interlayer spacing modulation via pre-intercalated cations or structural water to facilitate Zn2+ transport, and composite construction with conductive carbonaceous or polymeric matrices to mitigate dissolution and improve mechanical integrity. Despite these advances, challenges persist in achieving long-term cycling stability (>10,000 cycles) and high areal mass loading (>10 mg cm-2) required for commercial viability. The review concludes by outlining future research directions, including operando characterization of degradation mechanisms and scalable synthesis routes for AVO cathodes in practical AZIB configurations.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4279-0
Inkjet printing has emerged as a viable additive manufacturing route for organic light-emitting diodes (OLEDs), offering drop-on-demand patterning, high material utilization, and compatibility with large-area flexible substrates. This review critically examines the formulation science, printhead physics, and drying kinetics that govern the quality of inkjet-printed organic layers. We analyze the rheological window required for stable jetting, typically 1–20 mPa·s viscosity and 25–45 mN/m surface tension, and the dimensionless Ohnesorge number (0.1 < Z < 1) that defines satellite-free droplet formation. The coffee-ring effect, driven by capillary flow and solvent evaporation gradients, remains the dominant failure mode for pixel non-uniformity; binary solvent systems and substrate temperature control (40–60 °C) mitigate this. We survey recent progress in printed hole-transport, emissive, and electron-transport layers, with particular attention to cross-linkable hole-transport materials that resist interlayer dissolution. Device performance metrics from printed OLEDs now reach external quantum efficiencies of 15–20% for fluorescent emitters and >25% for phosphorescent systems, with operating lifetimes (T95) exceeding 1,000 hours at 1,000 cd/m². We identify remaining bottlenecks: nozzle clogging from aggregated nanoparticles, film thickness variation across large panels, and the absence of standardized ink formulations. The review concludes with a roadmap for industrial adoption, emphasizing in-line metrology and closed-loop process control as prerequisites for yield parity with vacuum-deposited OLEDs.
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.
Nano Research Energy•2026•DOI: 10.26599/NRE.2025.9120181
Solid-state lithium metal batteries (SLMBs) demand quasi-solid polymer electrolytes (QSSPEs) that simultaneously deliver high ionic conductivity, interfacial stability, and oxidative resistance. This study reports a QSSPE membrane (MP46) formulated with MG30:LiTFSI:succinonitrile at a 10:4:6 weight ratio, exhibiting a wide electrochemical window of 5.1 V. Complementary infrared spectroscopy, small-angle X-ray scattering, and electron microscopy reveal a hierarchical ionic conductive network consisting of sphere-like nanostructures embedded within microphase-segregated architectures. This morphology enhances lithium-ion transport while preserving mechanical integrity. The strong interfacial adhesion between MP46 and lithium metal enables stable lithium plating and stripping for over 800 h at 0.2 mA·cm–2, effectively mitigating dendrite formation. When paired with LiFePO4 and LiCoO2 cathodes, MP46 sustains prolonged cycling, retaining 80.1% capacity after 1400 cycles at 2 C and 92.1% after 200 cycles at 4.5 V, respectively. Pouch-type cells further demonstrate mechanical flexibility and operational safety under deformation. These results establish MP46 as a viable candidate for stable high-energy-density SLMBs, offering fundamental insights into the design of next-generation polymer electrolytes.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4260-5
Lithium-sulfur batteries (LSBs) are recognized as a leading candidate for next-generation energy storage due to their high theoretical specific capacity (1675 mAh g⁻¹). However, the shuttle effect of lithium polysulfides (LiPSs) severely limits cycle life and energy efficiency. Here, we report a multi-interface engineering strategy employing a MnO₂-TiO₂@Ti₃C₂ MXene (MT@MX) heterojunction, synthesized via a facile redox reaction between MXene and KMnO₄, to modulate bidirectional polysulfide conversion. The 2D structure with high conductivity and abundant heterogeneous interfaces facilitates fast ion/electron transfer, reduces reaction energy barriers, and enhances adsorption via d-band center effects. The stepped built-in electric field (BIEF) in MT@MX lowers the migration energy barrier of LiPSs from catalytic MXene to TiO₂ and then to adsorptive MnO₂, enabling reversible migration across multi-interfaces. Optimized heterointerfaces synergistically integrate adsorption, diffusion, and catalytic conversion, yielding excellent cycling stability even at a high sulfur loading of 6.4 mg cm⁻². This work demonstrates that constructing heterojunctions with stepped BIEF offers a feasible approach to modulate interfacial diffusion and provides a new design strategy for high-performance LSB electrocatalysts.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4300-3
The power conversion efficiency (PCE) of organic solar cells (OSCs) has surpassed 21% with the donor polymer D18, yet its processing from non-halogenated solvents like ortho-xylene (o-XY) remains inefficient due to uncontrolled film formation kinetics. Here, we systematically synthesize D18 polymers with molecular weights ranging from 41.6 kDa to 70.9 kDa to modulate crystallization kinetics. In-situ film drying studies reveal that lower molecular weights accelerate solidification, leading to excessive aggregation, while higher molecular weights slow it, causing insufficient phase separation. A medium molecular weight (D18-M) achieves a balanced crystallization rate, promoting favorable morphology and yielding a PCE of 20.55% with L8-BO as acceptor—one of the highest reported for non-halogenated solvent-processed OSCs. Energy loss analysis indicates that although low-molecular-weight polymers exhibit higher intrinsic luminescence, the blend film's emission is governed by exciton environment, which is dictated by morphology. This work underscores the critical role of molecular weight in controlling film formation and morphology, offering a simple yet effective strategy for high-efficiency, environmentally friendly OSCs.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4319-x
This erratum corrects an error in the Acknowledgments section of the original article 'Investigation on graphene growth by roll-to-roll chemical vapor deposition' published in Science China Materials, Vol. 65, Issue 4, page 1042, 2022. The authors regret that the funding number (No. (2021)105) for the Shenzhen Science and Technology Program was incorrectly used. The correct funding number is No. KQTD20200820113010022. The authors apologize for any inconvenience caused. This correction does not affect the scientific content, results, or conclusions of the original paper. The original research focused on the kinetics of graphene growth via roll-to-roll chemical vapor deposition (CVD), a scalable method for producing high-quality graphene films. The study addressed challenges in continuous manufacturing, such as uniformity, growth rate, and defect control, and provided insights into optimizing process parameters for industrial-scale production. The erratum ensures accurate attribution of funding sources, maintaining the integrity of the research record.
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/s40843-026-4293-9
Traditional soft magnetic alloys (SMAs) suffer from a performance trade-off where enhancing magnetic properties often compromises mechanical and other properties, limiting their use in high-efficiency power systems and advanced electronics. The design concept of medium- and high-entropy alloys (M/HEAs) offers a pathway to overcome this limitation. By leveraging multi-principal-element compositions and tailorable microstructures, medium- and high-entropy soft magnetic alloys (M/HE-SMAs) can integrate superior soft magnetic properties with exceptional mechanical strength-ductility synergy, high electrical resistivity, good thermal stability, and excellent corrosion resistance. This article reviews design strategies for synergistic enhancement of multiple properties in M/HE-SMAs, including blending multiple ferromagnetic and non-ferromagnetic elements into solid solution, inducing local chemical order, tailoring nanoprecipitates, controlling grain size, and engineering dual/multi-phase structures. The cooperative interactions among these strategies are discussed. Potential research directions for further development and practical applications are proposed.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3608-8
Polymeric carbon nitride (PCN) is a promising photocatalyst for H2O2 production due to its visible-light response, low cost, and high selectivity for the two-electron oxygen reduction reaction (ORR). However, its H2O2 yield is limited by narrow light absorption, low charge separation efficiency, and insufficient active sites. Here, crystalline poly(heptazine imide) (PHI)-based carbon nitride with highly dispersed In sites and N defects was prepared via an ionothermal method using LiCl/KCl molten salts. The large π-conjugated system and N defects enhance visible-light harvesting. Remaining K+ ions in nitrogen cavities act as interlayer electron channels, while N defects induce asymmetric charge distribution on the heptazine network, promoting interlayer and in-plane charge separation and transfer. In sites accelerate charge transfer dynamics and serve as active sites for ORR. The synergistic effect of metal modification and defect engineering boosts electron delocalization, significantly improving photocatalytic activity. The H2O2 production rate of 10InPHI reaches 15.3 mmol g−1 h−1 via a two-step single-electron ORR pathway, underscoring the potential of modified carbon nitride for efficient H2O2 photosynthesis.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3575-4
Halide perovskite memristors, known for their ion mobility, have emerged as strong candidates for computational units in next-generation memory and neuromorphic computing systems. Nevertheless, most memristors are limited to operating in a single mode, either resistive switching or threshold switching. In this work, we overcome this limitation by developing dual-mode α-formamidinium lead triiodide (α-FAPbI3) perovskite memristors with switchable volatile/nonvolatile states, enabled by engineered SnO2 electron transport layers (ETLs). Through molecular interface optimization using 3-(N,N′-dimethylmyristylammonio) propanesulfonate (Z14) and 4,4′-(1,10-phenanthroline-3,8-diyl)bis(N,N′-bis(4-methoxyphen-yl)aniline) (PNL), we achieved exceptional device stability. Volatile devices exhibited >500 switching cycles, while nonvolatile devices surpassed 1000 cycles, both maintaining a high on/off ratio (~10^3). Beyond memory applications, these devices successfully emulated biological functionalities. The volatile mode replicated four key nociceptor characteristics (threshold, relaxation, sensitization, and no adaptation), while the nonvolatile mode demonstrated advanced synaptic plasticity, including paired-pulse facilitation (PPF) and spike-timing-dependent plasticity (STDP). Capitalizing on this dual-mode synergy, we constructed a spiking neural network (SNN) for handwritten digit recognition, achieving a 93% accuracy rate—a significant milestone for perovskite-based neuromorphic systems. This study not only provides a material-level strategy for multifunctional memristor design but also bridges the gap between biological sensing and artificial intelligence, paving the way for adaptive neuromorphic hardware.
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/s40843-025-3770-9
Intramolecular through-space charge-transfer (TSCT)-enabled thermally activated delayed fluorescence (TADF) emitters have shown exceptional potential for advancing organic light-emitting diode (OLED) technologies, owing to their efficient utilization of triplet excitons and optimized photophysical properties. To date, the intrinsic correlation among molecular geometries, intramolecular non-covalent interactions, and photophysical properties in TSCT-TADF emitters remains unconfirmed, and this study theoretically clarifies this critical correlation. Specifically, through integrating molecular engineering, screening strategies, first-principles calculations, energy decomposition analysis, and statistical modeling, we systematically investigated 24 experimentally reported TADF molecules, and 54 newly designed structures in both solution and thin-film environments. We establish a clear geometric criterion for high-efficiency TSCT-TADF emitters: donor-acceptor (D-A) dihedral angles below 25° and interfragment distances within 4 Å—conditions validated by both theoretical predictions and experimental evidence. Based on this insight, we designed two novel molecular libraries with benzene- or carbazole-derivative bridges, using O-bridged triphenylamine (DPXZ) as the donor and quinolino[3,2,1-de]acridine-5,9-dione (QAO) as the acceptor. Our calculations confirm that sub-25° D-A dihedral angles correlate with exceptional delayed fluorescence efficiency, with predictions reaching up to 96% and an average of 70% for the new thin film systems. This study provides a rational design strategy for high-performance TSCT-TADF emitters, significantly advancing the molecular-level understanding of through-space interactions and accelerating the discovery of tailored, efficient OLED materials.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3708-y
Polar two-dimensional (2D) perovskites, with their excellent semiconductor properties, intrinsic anisotropy, and bulk photovoltaic effect, have emerged as promising candidates for self-driven polarization-sensitive photodetectors. However, these self-driven polarized detectors typically require fabrication along the spontaneous polarization direction to maintain device operation in the self-driven mode, which imposes additional limitations. Herein, we demonstrate multidirectional self-driven polarization-sensitive photodetection by constructing 2D perovskite-based asymmetric contact devices, Ag/2D perovskite/C. The built-in electric field, originating from the difference in work functions, acts as the driving force for the separation and transport of photogenerated carriers. Notably, this approach does not necessitate a specific direction, thereby enabling multidirectional self-driven photodetection. Under excitation by linearly polarized light, our devices exhibit impressive polarization-sensitive discrimination in multiple directions, achieving polarization ratios of 3.3 and 3.1 along the a and b-axes, respectively. Our work enriches the approaches enabling self-driven polarization-sensitive photodetection, free from the previous limitations.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3838-5
Air-permeable and ultrathin conductive electrodes are essential for next-generation soft electronics, including breathable wearables, on-skin devices, and bio-integrated electronics. However, conventional metallization strategies, such as sputtering and ink-printing, often suffer from severe vertical charge leakage due to the porous and ultrathin characteristics of nanofibrous networks, leading to device short-circuiting, operational failure, and limited vertical integration. Here, we present a solvent-selective dissolution-assisted transfer printing strategy to achieve surface-confined metallization of ultrathin, lightweight, and gas-permeable nanofibrous networks, enabling lateral conductivity while maintaining vertical insulation. This transfer printing process facilitates not only the rapid formation of conductive patterns on the surface of nanofibrous networks but also mechanical reinforcement through solvent evaporation-induced interlocked fiber-fiber welding. Meanwhile, the strategy preserves the high permeability of the nanofibrous networks and imparts a unique combination of surface conductivity (2 Ω cm) and vertical insulativity (10^11 Ω cm). The resulting anisotropic conductive networks enable low-voltage wearable heaters, high-sensitive pressure sensors, and ultralight temperature sensors. A pressure-temperature dual-modal sensing patch is further fabricated for intelligent grasping classification. The proposed surface-confined metallization strategy enables rapid fabrication of an anisotropic conductive network as a building block to construct air-permeable, ultrathin, and lightweight wearable electronics.
Chinese Journal of Environmental Engineering•2026•DOI: 10.12030/j.cjee.202506041
Urban and rural multi-source organic waste faces bottlenecks including high compositional heterogeneity, single resource recovery pathways, and uneven product quality. In the Taihu Lake region, active tourism and catering, high greening, and dense water networks generate large volumes of diverse waste with high moisture content, exacerbating these issues. This study evaluated a coupled bio-drying and aerobic composting process at a demonstration center in Linhu Town, Suzhou, Jiangsu Province, employing a three-stage control strategy: gradient dewatering, high-temperature stabilization, and maturation enhancement. Continuous operation showed that kitchen waste moisture content decreased from 77.70% to 58.69% after 1 day of bio-drying, to 23.22% after 7 days of silo reactor composting, and to 17.70% after at least 20 days of maturation. The aerobic composting phase maintained temperatures above 55°C for over 5 days, reaching a maximum of 68.1°C, meeting the harmless treatment requirements of CJJ 52—2014. After 20 days of maturation, the organic fertilizer product had an electrical conductivity below 4.00 mS·cm−1, organic matter content of 51.22%, total nutrient content of 5.61%, and heavy metal concentrations below the limits of NY/T 525—2021. The results provide technical support for efficient treatment and resource utilization of urban and rural organic waste.
Journal of Fuel Chemistry and Technology•2026•DOI: 10.3724/2097-213X.2025.JFCT.0026
The catalytic hydrogenation of carbon dioxide (CO2) to light olefins (C2–C4) represents a pivotal route for mitigating greenhouse gas emissions while producing high-value chemical feedstocks. This review systematically examines the two principal technological pathways: CO2-Fischer-Tropsch synthesis (CO2-FTO) and CO2-methanol-to-olefins (CO2-MTO). The CO2-FTO route couples reverse water-gas shift (RWGS) with Fischer-Tropsch synthesis, whereas CO2-MTO proceeds via methanol intermediate. Key challenges arise from the thermodynamic stability of CO2 (C=O bond dissociation energy ~750 kJ/mol) and kinetic limitations. The review critically evaluates the influence of catalyst promoters (e.g., Na, Mn, Cu), support structures, and surface defect site concentrations on CO2 activation and olefin selectivity. For zeolite-based catalysts, pore architecture and acidity are shown to govern methanol conversion to olefins. Representative data from the literature indicate that Fe-based catalysts with Na promotion achieve CO2 conversion up to 40% with olefin selectivity exceeding 50% under optimized conditions. The review underscores the necessity of integrating catalyst design with reactor engineering to overcome thermodynamic constraints and achieve industrially viable performance.
Journal of Fuel Chemistry and Technology•2026•DOI: 10.3724/2097-213X.2025.JFCT.0020
Ammonia borane (AB) is a promising hydrogen storage material due to its low molecular weight and high hydrogen content. The development of low-cost, high-activity catalysts for AB hydrolysis is critical for industrialization. In this work, CuO nanosheets (CuO NS) were synthesized via a solvothermal method under alkaline conditions using anhydrous copper chloride as precursor. Subsequently, low-temperature phosphating converted CuO NS into Cu3P@CuO nanosheets (Cu3P@CuO NS). The morphology and structure were characterized by SEM, TEM, AFM, XRD, and XPS. The catalytic performance for AB hydrolysis was evaluated, revealing that at a phosphating ratio of m(CuO NS)/m(NaH2PO2)=1 (0.1 g each), Cu3P@CuO NS exhibited excellent activity with a TOF of 57.23 min−1 and an apparent activation energy of 44.31 kJ/mol. The reaction followed pseudo-first-order kinetics with respect to catalyst amount and pseudo-zero-order kinetics with respect to AB concentration. The superior performance is attributed to the abundant active sites exposed by the nanosheet structure. Given the extremely low cost, Cu3P@CuO NS is a promising alternative to noble metal catalysts for hydrogen generation from AB.
Environmental Chemistry•2026•DOI: 10.7524/j.issn.0254-6108.2025091203
The persistence of tetracycline (TC) in aquatic environments poses significant ecological risks. This study developed a homogeneous reaction system based on carboxylated Fe2+ enhanced peroxymonosulfate (PMS) activation, using citric acid (CA) as a ligand. Carboxylation improved Fe2+ stability and catalytic activity, while solid PMS served as the oxidant, circumventing issues of traditional Fenton processes such as H2O2 instability, complex heterogeneous catalyst preparation, high disposal costs, and toxic metal leaching. The acidic pretreatment enabled by CA inhibited Fe2+ oxidation and promoted sustained PMS activation without external energy input. Under optimized conditions (TC 5 mg·L−1, Fe2+ 0.02 mmol·L−1, CA 0.001 mmol·L−1, PMS 2 mmol·L−1), 88.80% TC degradation was achieved within 60 min. Mechanistic studies revealed that CA protected Fe2+ active sites via carboxyl coordination, facilitating continuous generation of reactive species, including singlet oxygen (1O2) and sulfate radicals (SO4•−). 1O2 was the dominant species (50.5% contribution), followed by SO4•− (35.7%), synergistically driving efficient TC degradation while significantly reducing iron sludge production. Phytotoxicity assays confirmed that treated water exhibited no significant toxicity to wheat seedlings (P > 0.05), indicating effective ecological risk elimination. This work provides a low-energy, operationally simple, and environmentally friendly technology for antibiotic-contaminated water treatment, with promising practical application potential.
Environmental Chemistry•2026•DOI: 10.7524/j.issn.0254-6108.2025010203
The production and disposal of lithium batteries release not only hazardous metals and particulates but also substantial amounts of harmful organic pollutants. This study focuses on N-methyl-2-pyrrolidone (NMP) to investigate the environmental release and human exposure of organic pollutants throughout the lithium battery lifecycle. Using liquid chromatography-high-resolution mass spectrometry (LC-HRMS), NMP was quantified in environmental samples from battery production and dismantling facilities, as well as in pyrolysis products from simulated thermal recovery of mainstream lithium batteries. Key release stages were identified: slurry mixing and coating/drying during production; shredding, electrolyte volatilization, and high-temperature pyrolysis during disposal. In unprotected occupational settings, estimated NMP exposure via dust ingestion exceeded reference doses, underscoring the need for health impact assessments and evaluation of protective measures. This research provides critical insights into the environmental release and population exposure of organic pollutants across the lithium battery lifecycle, informing health policy for vulnerable populations.
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/s40843-025-3882-y
Organic semiconductor crystals with well-defined morphologies are highly desirable for high-performance optoelectronic devices, yet precise control over their growth remains a challenge. Here, a novel donor-acceptor (D-A) molecule, TQDPT, has been successfully developed, featuring a rigid π-conjugated acceptor core composed of thiazoloquinoxaline and naphthalene, coupled with phenylphenothiazine donors. This study presents a temperature-mediated crystallization strategy for precisely controlling the morphology and carrier transport properties of TQDPT single crystals. By systematically investigating the growth kinetics across a controlled temperature range (15–35°C), we reveal a distinct transition from needle-like structures to plate-like crystals, with tunable average widths spanning from around 2.8 to 30.1 μm. This morphological evolution is driven by temperature-dependent molecular diffusion and nucleation kinetics. Significantly, the plate-like crystals grown at 25°C exhibit an order-of-magnitude enhancement in mobility compared to needle-like counterparts, while higher temperatures of 35°C yield broader crystals with improved carrier mobility and device stability. This work highlights the critical role of temperature as a pivotal parameter in the dimensional and electronic optimization of organic crystals, offering an attractive approach to optimize functional materials for advanced optoelectronics.
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.
New Carbon Materials•2026•DOI: 10.1016/S1872-5805(26)61093-1
Advanced catalyst structures with good active site accessibility and strong metal-support interactions are crucial for oxygen reduction reaction (ORR) catalysis. A hierarchically porous Pt catalyst supported on honeycomb-like nitrogen-doped carbon (Pt/HNC-400, where 400 denotes the optimal dosage (mg) of the sacrificial SiO2 hard template used during synthesis) was fabricated by combining template-assisted pyrolysis and alcohol reduction. The fabrication involves the template-assisted pyrolysis of ZIF-67 (which provides the N-dopant through its 2-methylimidazole ligand) followed by HF etching to completely remove the SiO2, yielding a 3D interconnected porous carbon support. Compared to a commercial Pt/C, it had an exceptional ORR performance with a half-wave potential of 0.901 V (41 mV higher), a mass activity at 0.9 V that was 15.3 times higher, and significantly improved durability (a half-wave potential decay of 25 mV vs. 80 mV after 10,000 accelerated durability tests (ADTs)). Mechanistic investigations showed that this superior performance is due to the combined effects of the 3D porous structure, ultrafine Pt nanoparticles with strong metal-support interactions, and in-situ formed Co-Nx moieties from the pyrolysis of precursor ZIF-67. After 10,000 ADTs it was shown to have excellent structural integrity, retaining 87.4% of its initial electrochemically active surface area (102.7 m2 g−1). This study may assist the development of new high-performance ORR catalysts.
Journal of Fuel Chemistry and Technology•2026•DOI: 10.3724/2097-213X.2025.JFCT.0029
Pingshuo coal ash, characterized by high silicon-aluminum content (Si+Al >85%) and low Si/Al ratio (<1.5), exhibits ash fusion temperatures (AFTs) exceeding 1550 °C, rendering it unsuitable for entrained-flow gasifiers. This study investigates the effect of calcium-sodium composite flux on ash fusibility and mineral transformation. X-ray diffraction (XRD) and FactSage thermodynamic simulations were employed to analyze mineral evolution, while molecular dynamics (MD) simulations revealed the underlying melting mechanism. Results show that adding 20% composite flux (CaO/Na2O) lowers AFTs more effectively than equivalent additions of CaO or Na2O alone, indicating a synergistic effect. At a CaO/Na2O ratio of 3:7, the flow temperatures (FT) of two Pingshuo coal ashes decreased to 1377 °C and 1279 °C, respectively. The composite flux promotes reactions between quartz and Na2O/CaO, forming low-melting-point minerals such as nepheline, albite, and gehlenite, while inhibiting mullite formation. Additionally, Na+ disrupts the silicate network, inducing Ca2+ to preferentially coordinate with [AlO4]5- tetrahedra, further breaking Si-O-Si bonds. MD simulations show that atomic diffusion, quantified by mean square displacement (MSD), is significantly enhanced below 1600 K with composite flux addition compared to single fluxes. These findings provide a mechanistic basis for optimizing flux formulations to enable efficient gasification of high-AFT coals.
Environmental Chemistry•2026•DOI: 10.7524/j.issn.0254-6108.2025110501
Ultrashort-chain perfluoroalkyl substances (PFAS) exhibit high hydrophilicity, mobility, and root concentration factors, facilitating their transport and accumulation in soil-crop systems and posing phytotoxicity risks. Post-drought rehydration (PDR) is a critical water management strategy to mitigate drought effects in paddy fields. This study investigated the regulation and mechanisms of PDR on ultrashort-chain PFAS transport in paddy soils through sterilized and non-sterilized experiments, employing three-dimensional fluorescence spectroscopy, Fourier-transform infrared spectroscopy, X-ray photoelectron spectroscopy, X-ray fluorescence spectroscopy, and amplicon sequencing. Results showed that PDR increased the bioavailable fraction of ultrashort-chain PFAS in soil solution while delaying their release into overlying water. Sterilization experiments confirmed that PDR-induced compensatory migration was primarily driven by microbial activity. Geochemical analyses revealed that PDR reduced hydrophilic functional groups (e.g., hydroxyl) on soil particle surfaces and increased cation bridging sites. Microbiological sequencing indicated that PDR activated secondary metabolic pathways, enhancing microbial extracellular polymeric substances (EPS) production, which provided binding sites for ultrashort-chain PFAS. Consequently, EPS competed with soil particles for cation bridging, altering PFAS interfacial partitioning and increasing bioavailable and cation-complexed fractions in soil solution, thereby exacerbating rhizosphere exposure risk to rice. This study elucidates the coupled geochemical and microbiological mechanisms governing ultrashort-chain PFAS mobility under PDR, informing risk assessment and management in paddy agroecosystems.
Environmental Chemistry•2026•DOI: 10.7524/j.issn.0254-6108.2025010701
This study investigated the long-term effects of biochar application on physicochemical properties and microplastic accumulation in aeolian sandy soils, based on a field experiment established in 2014. After seven years of mulched cultivation, soil samples were collected from 0–30 cm and 30–60 cm depths. Biochar application significantly increased soil porosity and available nitrogen, phosphorus, and potassium contents, while reducing bulk density. At a biochar rate of 126.00 t·hm−2, soil water content was significantly reduced. Microplastic abundance averaged 3459.57 pieces·kg−1 in the 0–30 cm layer, with the highest abundance at 126.00 t·hm−2; in the 30–60 cm layer, average abundance was 3163.50 pieces·kg−1, with the highest at 63.00 t·hm−2. Microplastics were predominantly transparent, film-shaped, and 0–0.5 mm in size. The results indicate that biochar application significantly increased microplastic abundance in aeolian sandy soils, providing insights into microplastic adsorption and enrichment in agricultural ecosystems. Further research is needed to elucidate underlying mechanisms.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3899-9
Metal halide hybrids have emerged as a highly promising class of optoelectronic materials owing to their rich chemical and electronic diversity, high luminescence efficiency, and tunable photophysical properties. Incorporating chirality into these systems imparts pronounced circularly polarized luminescence (CPL) activity, creating new opportunities for advanced smart optoelectronic and spintronic applications. Although numerous reviews have been dedicated to CPL-active perovskites, their non-perovskite ionic counterparts have yet to be systematically and comprehensively reviewed. Given the rapid advancements in this burgeoning field, such a work is both timely and crucial to chart its future course. This review summarizes recent progress in non-perovskite ionic metal halide hybrids exhibiting CPL emission, highlighting four aspects: (1) the intrinsic correlations among different characterization techniques; (2) the strategic advantages of these materials for CPL applications; (3) methodologies for enhancing their CPL performance; (4) the prerequisites and mechanisms underlying CPL generation in achiral metal halide hybrids. Finally, we discuss their emerging applications in light-emitting devices, information encryption, anti-counterfeiting technologies, and scintillators, and provide perspectives on the remaining challenges and future directions in this rapidly evolving field.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3784-9
Symmetry-breaking charge separation (SB-CS) is a fundamental process in natural photosynthesis and holds promise for organic semiconductor applications. However, the influence of SB-CS on excited-state chirality has remained unexplored. Here, we employ femtosecond time-resolved circularly polarized luminescence (TRCPL) and transient absorption (TA) spectroscopy to investigate the excited-state chirality dynamics of a chiral perylenediimide bichromophore (Cy-PDI 2). Our results reveal that the locally excited (LE) state decays to a symmetry-breaking charge-separated (SB-CS) state within 88 ps in tetrahydrofuran (THF), while this process is strongly quenched in toluene (TOL). Time-dependent emission dissymmetry factor g_lum(t) extracted from TRCPL kinetics demonstrates a one-order-of-magnitude enhancement of circularly polarized luminescence after SB-CS, directly reflecting the asymmetry of electron cloud distribution on an ultrafast timescale. This work provides the first direct observation of excited-state chirality evolution during SB-CS and proposes a mechanistic framework. Our findings offer deeper insight into the origin of excited-state chirality, which is crucial for understanding efficient energy transfer, enantiospecific recognition, and asymmetric catalysis in biological and chemical systems.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3936-8
The precise separation of enantiomers is essential for developing effective chiral drugs, yet conventional membranes are constrained by the ubiquitous selectivity-permeability trade-off and low flux, limiting scalable production of single-enantiomer drugs. Herein, we present a cascade reaction strategy integrating Sonogashira-Hagihara coupling and Friedel-Crafts alkylation to fabricate porous conjugated microporous polymer membranes (CCMP-M P1–4/SiO2). This approach enhances specific surface area by 400-fold compared to the product from the Sonogashira-Hagihara coupling reaction alone, creating interconnected porous networks that facilitate mass transport. This hypothesis was confirmed by pore-size gradient experiments, which revealed a critical size-matching effect: matched molecular dimensions enable high-speed mass transfer with 97% enantioselectivity, while mismatch reduces selectivity to 9%, as visualized in a separation performance matrix across four chiral molecules. Precise chiral recognition is programmable via absolute configuration control of chiral monomers, with the mechanism of “preferential adsorption–interfacial enrichment–promoted diffusion” confirmed by static adsorption and density functional theory calculations. This strategy achieves breakthrough performance: Naproxen flux reaches 37 mmol m−2 h−1, surpassing literature values, and enables membrane-based separation of Raceanisodamine (89% selectivity of 6S, 2′S and 6R, 2′R-isomer after cascade enrichment) for the first time. This work provides a new paradigm for designing high-performance chiral separation membranes, facilitating scalable and sustainable production of single-enantiomer drugs.
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.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3741-3
Functional motifs are essential microscopic units that govern the second harmonic generation (SHG) response in nonlinear optical (NLO) materials. While nonmetal-centered motifs have been extensively studied, metal-centered motifs with outstanding comprehensive performance remain scarce. Here, we report the successful synthesis of the first seven-coordinated indium oxy-chloride and oxy-bromide polyhedra, InO6X (X = Cl, Br), by leveraging the chelating and structure-directing properties of SeO3 groups. The InO6Br polyhedra exhibit the highest polarization anisotropy and hyperpolarizability among all reported indium oxy-chloride and oxy-bromide groups. Consequently, the first non-centrosymmetric halogenated indium selenites, In2(OH)(SeO3)2Cl (ISOC) and In2(OH)(SeO3)2Br (ISOB), were obtained. Both compounds demonstrate strong SHG intensity exceeding six times that of KDP (potassium dihydrogen phosphate) and wide band gaps greater than 4.0 eV, a combination rarely observed in inorganic selenites. This work presents a viable strategy for developing new NLO functional motifs and offers valuable insights for designing novel SHG materials with enhanced performance.
Environmental Chemistry•2026•DOI: 10.7524/j.issn.0254-6108.2025120801
The interaction between microplastic-derived dissolved organic matter (PSDOM) and iron oxides in soil environments can modulate its photosensitization effects, yet the underlying mechanisms remain elusive. This study investigated the influence of hematite with distinct morphologies—flake-shaped (HNPs) and cubic (HNCs)—on the photosensitization of polystyrene-derived dissolved organic matter (PSDOM). Under 500 W mercury lamp irradiation, both hematite morphologies promoted PSDOM degradation, with HNCs exhibiting superior performance: total organic carbon (TOC) decreased from 18.4 mg·L−1 to 12.3 mg·L−1 within 90 min, compared to 13.3 mg·L−1 for HNPs. Three-dimensional fluorescence spectroscopy indicated that hematite alters the humification process, thereby modifying photosensitization. Electron paramagnetic resonance (EPR) spectroscopy identified the generation of singlet oxygen (1O2), hydroxyl radicals (·OH), and carbon-centered radicals (CH3C(=O)OO·). HNCs significantly enhanced 1O2 production, while HNPs favored ·OH generation; both inhibited CH3C(=O)OO· formation. Quantitative analysis via high-performance liquid chromatography revealed that the steady-state concentration of 1O2 was highest with HNCs, reaching 2.80 times that of the PSDOM control, whereas ·OH concentration peaked with HNPs at 1.98 times the control. Notably, the steady-state concentration of 1O2 was approximately three orders of magnitude higher than that of ·OH. These findings elucidate the morphology-dependent role of hematite in PSDOM photosensitization, providing mechanistic insights into the environmental fate of microplastic-derived organic matter in complex soil systems.
Environmental Chemistry•2026•DOI: 10.7524/j.issn.0254-6108.2026011902
The migration of perfluoroalkyl and polyfluoroalkyl substances (PFASs) at the water–soil interface in paddy fields is a critical determinant of their environmental fate and crop safety. This study investigated the influence of low-molecular-weight organic acids (LMWOAs) on PFASs mobility under waterlogged conditions. Four LMWOAs—oxalic, citric, lactic, and acetic acids—were individually enriched in paddy soils, and the migration of 15 PFASs was monitored. Acetic acid enrichment most strongly suppressed PFASs release into overlying water. Mechanistic analyses using X-ray photoelectron spectroscopy, three-dimensional excitation–emission matrix spectroscopy, microbial amplicon sequencing, and metagenomics revealed that acetic acid reshaped the microbial community, enriching sulfate-reducing bacteria and upregulating sulfur reduction genes (SULT1A) and nitrogen transformation genes (nifN, nirI, nthB). This drove sulfate reduction to sulfite and sulfide. ABT modeling identified sulfur metabolism as the dominant factor controlling PFASs immobilization (26.06% contribution). Experiments under varying sulfur redox conditions confirmed that sulfite (SO3^2−) oxidation indirectly altered dissolved organic matter (DOM) composition, weakening PFASs–DOM binding and reducing PFASs in overlying water. These findings demonstrate that LMWOAs accumulation, particularly acetic acid, can effectively impede PFASs migration at the paddy water–soil interface via microbial sulfur cycling and associated DOM structural changes, offering a potential strategy for PFASs remediation in agricultural systems.
Environmental Chemistry•2026•DOI: 10.7524/j.issn.0254-6108.2025030602
In the context of accelerated urbanization, regional air composite pollution in medium and large urban agglomerations is primarily characterized by PM2.5-O3 compound pollution. To elucidate the meteorological causes of PM2.5-O3 compound pollution in the Yangtze River Delta (YRD) region over the recent seven years (2017–2023), this study analyzed monitoring data from typical cities (Nanjing, Shanghai, Hangzhou, and Hefei) using Pearson and partial correlation coefficients. Results indicate: (1) PM2.5 pollution exhibited a significant downward trend across all four cities, with notable improvement during the COVID-19 pandemic in 2020, underscoring the effectiveness of air pollution control measures. Conversely, O3 pollution remained elevated or increased in some cities, indicating persistent challenges in O3 control. (2) During O3 pollution episodes, PM2.5 and O3 concentrations were positively correlated, whereas during PM2.5 pollution episodes, they were negatively correlated. (3) Compound pollution days were predominantly observed from February to October, with the highest frequency (20 days) occurring from April to June. (4) The significant reduction in PM2.5 weakened the aerosol 'umbrella effect', enhancing surface radiation and promoting near-surface O3 formation. Concurrently, changes in the NOx/VOCs ratio weakened O3 titration, and climate warming accelerated O3 precursor generation and potentially altered boundary layer structure, collectively contributing to O3 accumulation in the cold season and an increasing frequency of compound pollution during that period. (5) The formation mechanisms of PM2.5 and O3 are driven by distinct meteorological conditions, with low overall concentration correlation; however, under compound meteorological conditions such as high temperature, stagnant air, and weak diffusion, both pollutants tend to rise synchronously, indicating that compound pollution events are typically driven by multiple adverse meteorological factors. This study demonstrates that from 2017 to 2023, PM2.5 pollution significantly decreased while O3 pollution showed an increasing trend. Compound pollution was concentrated in April–June and influenced by high temperature, stagnant air, and weak diffusion. With effective PM2.5 control, enhanced surface radiation and changes in O3 precursors led to O3 accumulation in the cold season, increasing compound pollution frequency. Overall, compound pollution is driven by multiple meteorological factors, posing complex challenges for control.
Journal of Environmental Engineering Technology•2026•DOI: 10.13205/j.hjgc.202606019
Sludge co-combustion in coal-fired power plants generates flue gas dust with high viscosity, causing severe dust deposition on downstream environmental protection equipment. This study analyzed the dust deposition mechanism in electrostatic precipitators (ESPs) and characterized the dust layer properties. Results indicated that sludge co-combustion increased flue gas moisture content, altered particle morphology, and elevated dust viscosity. To address these issues, an anode pneumatically rapped ESP technology was developed to enhance anode plate cleaning. This technology was retrofitted on a 1000 MW unit at Zhejiang Jiahua Power Plant, and performance tests under sludge co-combustion conditions were completed in February 2025. At a specific dust collection area of 118 m²·s/m³ and a unit load of 987 MW, the ESP outlet dust concentration decreased from 25.32 mg/m³ before retrofit to 7.95 mg/m³ after retrofit. Analysis revealed that sludge co-combustion caused excessive dust deposition on the first electric field anode plates, inducing back corona, high-voltage power supply flashover, and low secondary voltage and current. After retrofit, regions with low rapping acceleration were eliminated, achieving effective dust cleaning. Secondary voltage and current were significantly improved, and overall ESP efficiency was remarkably enhanced. The proposed technology provides a reference for ESP retrofitting of coal-fired units under biomass (sludge) co-combustion and low-load conditions.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3894-9
Photocatalytic production of hydrogen peroxide (H2O2) using water and O2 offers an economical, environmentally friendly, and sustainable route for H2O2 synthesis. However, current photocatalytic systems suffer from poor charge carrier transport, narrow light absorption, and insufficient active sites, leading to unsatisfactory H2O2 production efficiency. In this study, a CoS/ZnIn2S4 (ZIS) composite was constructed by in-situ growing CoS nanoclusters on ZIS via a solvothermal method for photocatalytic H2O2 production. The integration of CoS with ZIS broadened the light absorption spectrum. The optimized CoS/ZIS-3 composite exhibited an exceptional H2O2 production rate of 2693.39 μmol g−1 h−1 under visible light in isopropanol, surpassing pristine ZIS and CoS by factors of 6.54 and 18.08, respectively. The S-scheme heterojunction and built-in electric field synergistically enhanced the separation and transportation of photogenerated charge carriers, thereby improving photocatalytic efficiency. The H2O2 synthesis mechanism involves dual-channel oxygen reduction and water oxidation reactions mediated by CoS/ZIS. The produced H2O2 effectively degraded organic pollutants and inhibited the growth of E. coli. This study presents a promising green strategy for enhancing ZIS-based photocatalysts through constructing S-scheme heterojunctions for efficient H2O2 synthesis.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3859-y
Photocatalytic CO2 reduction is an attractive route to address sustainable energy crises and environmental issues, yet its efficiency is limited by poor charge separation, narrow light absorption, sluggish kinetics, and low CO2 adsorption/activation. Here, a series of Co SA-TT-COF/CdS S-scheme heterojunction photocatalysts were synthesized by integrating Co single atoms (Co SA) decorated covalent organic frameworks (COFs) with CdS nanotubes via in situ condensation and post-modification. The TT-COF layer thickness on CdS was regulated to optimize active site density and accessibility. The optimal Co SA-TT-COF/15 wt% CdS heterojunction, with a TT-COF thickness of 50.5 nm, achieved a CO production rate of 14157 μmol g−1 h−1 and a selectivity of 90.9%, among the best COF-based photocatalysts reported. Theoretical calculations, experiments, and femtosecond transient absorption spectroscopy revealed that the S-scheme heterojunction enhances the built-in electric field, optimizes energy levels, narrows bandgaps, extends light harvesting, improves charge separation and transfer kinetics, and lowers energy barriers for CO2 adsorption/activation, directly contributing to superior performance.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3862-x
Hexagonal boron nitride (hBN) is indispensable for next-generation electronics and quantum technologies, yet controlled synthesis of isotopically engineered hBN with macroscopic scalability and atomic-level precision remains challenging. Here, we present a plasma-enhanced chemical vapor deposition (PECVD) method using elemental boron (B) and nitrogen (N) precursors to achieve wafer-scale growth and precise isotopic control of hBN films. High-quality hBN films are synthesized on Cu substrates via optimized B evaporation and N2 plasma activation. The growth mechanism involves an oxygen-mediated pathway for B transport and a layer-by-layer (Frank-van der Merwe) mode for multilayer formation. By employing isotopically enriched B powders (10B and 11B) and N2 gases (14N2 and 15N2), we demonstrate tunable isotopic compositions with phonon mode shifts quantitatively matching harmonic oscillator predictions. Furthermore, we realize unprecedented in-plane h10BN-h11BN heterostructures through dynamic B source switching during growth. This PECVD strategy establishes a transformative synthesis platform merging industrial-scale production capacity with atomic-scale isotopic precision, enabling new opportunities to engineer thermal transport, optical response, and quantum coherence in two-dimensional materials.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3885-8
Photocatalytic production of hydrogen peroxide (H2O2) via oxygen reduction reaction (ORR) and water oxidation reaction (WOR) from water and air offers a sustainable alternative to conventional anthraquinone processes. However, the intrinsic kinetic mismatch—fast ORR (microseconds to milliseconds) versus sluggish WOR (seconds)—limits overall efficiency. Here, we report aliphatic acylhydrazone covalent organic frameworks (AA-COFs) synthesized by coupling aliphatic hydrazides with benzotrithiophene motifs via acylhydrazone linkages. The pore walls are decorated with abundant S, O, and N heteroatoms, enhancing affinity toward both O2 and H2O, thereby improving the kinetics of both half-reactions. Through single-carbon atomic engineering, the optimized AA-COF achieves a trade-off between ORR and WOR kinetics, enabling efficient overall H2O2 photosynthesis from water and air without sacrificial agents. The material exhibits a H2O2 production rate of 4777 μmol g−1 h−1 and an O2 utilization/conversion efficiency of 99.3%. This work demonstrates that rational design of heteroatom-rich COFs can synchronize ORR and WOR, overcoming a major bottleneck in artificial photosynthesis.
Chinese Journal of Environmental Engineering•2026•DOI: 10.12030/j.cjee.202511003
Tailings dam leakage can cause secondary sudden water pollution events, imposing severe combined stress of high turbidity and heavy metal contamination on natural water bodies within a short period, threatening aquatic ecological security. Existing studies have systematically revealed the pollution characteristics and biological effects of such events, which are fundamentally distinct from natural high-turbidity water and industrial wastewater leakage. Compared with natural high-turbidity water, tailings leakage inputs finer particles with higher specific surface area, leading to more intense and prolonged turbidity stress. Meanwhile, heavy metals in tailings are more enriched than natural sediments, with higher proportions of active forms and bioavailability, causing significant bioaccumulation and toxic effects, and long-term decline in benthic community species richness. Compared with industrial wastewater leakage, tailings leakage simultaneously releases high concentrations of fine suspended solids and multiple heavy metals, forming a unique 'physical-chemical' combined stress. This synergistic effect amplifies biological toxicity through multiple pathways such as mechanical damage, light limitation, and oxidative stress, resulting in severe and often irreversible ecological damage, such as impaired fish swimming behavior and collapse of benthic community structure. Analyzing the long-term impacts of tailings leakage on aquatic ecosystems from the perspective of combined stress is helpful for providing scientific basis for emergency response and medium-to-long-term ecological risk prevention of related sudden water pollution events.
Chinese Journal of Environmental Engineering•2026•DOI: 10.12030/j.cjee.202505108
Open-pit mining in high-cold regions causes severe ecological degradation, including vegetation loss, soil structure destruction, and frequent freeze-thaw disturbances, complicating ecosystem recovery. This review systematically synthesizes the current status, theories, and key restoration technologies for degraded ecosystems in high-cold mining areas. Comparative analysis with typical high-cold degraded ecosystems worldwide reveals that high-cold mining areas face challenges such as frequent freeze-thaw cycles, hydrological disruption, wind erosion, and difficult vegetation establishment. We propose strengthening aboveground-belowground synergistic restoration: (1) aboveground restoration should focus on screening cold-resistant native plants and optimizing mixed community configurations, combined with plant growth-promoting multi-microbial consortia to facilitate vegetation recovery; (2) belowground restoration should be based on engineering soil profile reconstruction, integrating physical-chemical-biological multi-dimensional remediation techniques to achieve aboveground and belowground community reconstruction and functional recovery; (3) a progressive restoration framework is established, with short-term goals targeting soil stabilization and structure improvement, medium-term goals focusing on constructing multifunctional plant-soil communities, and long-term goals achieving self-sustaining, maintenance-free restored ecosystems. Finally, addressing the unclear mechanisms of aboveground-belowground synergistic interactions and insufficient environmental adaptability of restoration technologies, two prospects are proposed: (1) deepening research on aboveground-belowground synergistic mechanisms to reveal interactions between cold-tolerant microorganisms and plants; (2) advancing the development of characteristic restoration technologies adapted to high-cold environments.
Chinese Journal of Environmental Engineering•2026•DOI: 10.12030/j.cjee.202510034
Phosphonate wastewater, characterized by stable C–P bonds, poses significant environmental risks due to its resistance to degradation and potential to contribute to eutrophication. This study developed a chloride-enhanced Fe(II)/PMS/H2O2 system for the oxidative degradation of 2-phosphonobutane-1,2,4-tricarboxylic acid (PBTC) and simultaneous recovery of phosphorus as iron phosphate (FePO4). Under optimal conditions (0.1 mmol/L PBTC, 1.0 mmol/L Fe(II), 0.5 mmol/L PMS, 0.5 mmol/L H2O2, 10 mmol/L NaCl, initial pH 3.0, 60 min), total phosphorus (TP) removal reached 100%, with phosphorus nearly completely recovered as FePO4 precipitate. Increasing NaCl concentration and temperature enhanced TP removal, while pH significantly influenced removal efficiency and product speciation; acidic conditions (pH < 4.3) favored FePO4 precipitation. Coexisting Ca2+ and Mg2+ had negligible effects, whereas HCO3− and humic acid (HA) inhibited TP removal in a concentration-dependent manner. Radical quenching and electron spin resonance (ESR) analyses identified hydroxyl radicals (•OH), ferryl ion (Fe(IV)=O), sulfate radicals (SO4•−), and chlorine radicals (Cl•) as primary reactive species, with •OH playing a dominant role. Chloride introduction promoted the generation of multiple reactive species, and Cl• and its derivative Cl2•− directly attacked the C–P bond and phosphonate group, facilitating phosphorus release as PO43− and subsequent FePO4 formation. The system's feasibility was validated using actual industrial circulating cooling water. This study provides a novel approach for phosphonate wastewater treatment and phosphorus recovery.
Chinese Journal of Environmental Engineering•2026•DOI: 10.12030/j.cjee.202503016
Open-pit coal mining severely damages soil and plant community structure and function, causing soil nutrient loss and ecological degradation. Vegetation reconstruction is a key measure for restoring degraded mining ecosystems, with the core challenge being the selection of suitable plant species and optimization of plant configurations. This study focused on the degraded ecosystem of the Baiyinhua open-pit mine in Inner Mongolia, screening native plant species for vegetation reconstruction experiments to investigate early-stage changes in soil nutrient availability and the underlying microbial mechanisms. Results showed that soil physicochemical properties and fungal community diversity exhibited strong adaptability during early reconstruction. However, soil fungal community composition and the relative abundance of saprotrophic fungi differed significantly among plant configurations. Leymus chinensis significantly increased the proportion of soil saprotrophic fungi from 67.28% in the control to 81.63%, while reducing the relative proportion of pathogenic fungi from 15.63% to 4.33%, demonstrating its potential to enhance soil health. Medicago rivularis improved soil microbial community composition and increased soil available phosphorus content, highlighting its capacity as an excellent pioneer species for optimizing soil nutrient availability. Furthermore, mixed sowing of grasses and legumes showed potential to enhance the nitrogen-fixing effect of legumes. Given the significant positive correlation between soil fungal community composition and total nitrogen and available nitrogen, the effects of different plant configurations on soil nutrient availability and biological health likely stem largely from the regulation of soil fungal community composition. In conclusion, achieving the goal of selecting optimal plant configurations still requires long-term continuous observation and analysis, particularly for optimizing configurations between high-quality grasses like Leymus chinensis and legumes.
Journal of Fuel Chemistry and Technology•2026•DOI: 10.1016/S1872-5813(26)60659-7
Coal gasification fine slag (CGFS), a solid waste from entrained-flow coal gasification, is characterized by fine particles and high silicon and aluminum content. This study proposes a simple and economical hydrothermal synthesis of ZSM-5 molecular sieve using CGFS as raw material. Impurities were removed by acid washing, followed by alkaline extraction of silicon and aluminum species. The extracted Si-Al precursors were crystallized hydrothermally at 170 °C for 48 h, yielding ZSM-5 with a high specific surface area of 358 m2/g. Adsorption experiments showed that the synthesized ZSM-5 exhibited excellent Pb2+ removal performance: at 25 °C, the removal efficiency for a 50 mg/L Pb2+ solution reached 83.7%, with an adsorption capacity of 104.625 mg/g under optimized conditions. The adsorption process is mainly governed by chemisorption mechanisms, including surface complexation, precipitation, and ion exchange. Thermodynamic analyses indicated that Pb2+ adsorption is spontaneous and endothermic, consistent with multilayer chemisorption. The synthesized ZSM-5 shows promising potential for application in the treatment of lead-containing wastewater, offering a high-value utilization route for coal-based solid waste.
Environmental Chemistry•2026•DOI: 10.7524/j.issn.0254-6108.2025031302
Trifluoropropylmethylsiloxanes (D3F and D4F) are emerging contaminants whose environmental behavior remains poorly understood. This study investigated their occurrence, bioaccumulation, and elimination in sediments and mollusks collected from 60 sites across 12 coastal cities along Bohai Bay, China. Concentrations in sediments ranged from <LOD to 17.1 ng/g dry weight (dw) with a detection frequency of 30% and a mean of 5.6 ng/g dw. In mollusks, concentrations ranged from <LOD to 20.2 ng/g wet weight (ww) with a detection frequency of 21.7% and a mean of 4.1 ng/g ww. Compared with cyclic dimethylsiloxanes (D4, D5, D6), trifluoropropylmethylsiloxanes exhibited 1–2 orders of magnitude lower concentrations and 1.4–2.2 times lower biota-sediment accumulation factors (BSAF: 0.67 for D3F, 0.61 for D4F). However, from 2017 to 2023, trifluoropropylmethylsiloxanes showed higher annual accumulation rates in sediments (21.5%) and mollusks (32.8%) than dimethylsiloxanes (10.2% and 6.7%, respectively). This discrepancy is attributed to their higher usage growth, stronger sorption (lg KOC: 6.77 for D3F, 8.81 for D4F vs. 4.22–5.99 for D4–D6), and slower elimination in mollusks (half-lives: 11.1 d for D3F, 20.1 d for trans-D4Fa vs. 5.4–8.6 d for D4–D6). The primary degradation product, methyl(3,3,3-trifluoropropyl)silanediol, was detected in sediments (mean 15.7 ng/g dw, detection frequency 33.3%) and mollusks (mean 31.2 ng/g ww, detection frequency 33.3%). Its accumulation rate in mollusks was 1.4 times faster than in sediments, suggesting its potential as an exposure indicator. These findings highlight distinct environmental behaviors of trifluoropropylmethylsiloxanes, necessitating further monitoring and risk assessment.
Environmental Chemistry•2026•DOI: 10.7524/j.issn.0254-6108.2025032401
Diazepam (DZP), a benzodiazepine anxiolytic drug, has been a persistent contaminant in fishery water environments. In China, DZP is classified as a veterinary drug that must not be detected in animal-derived foods, yet it is frequently found in aquatic products, posing significant risks to ecological health and food safety. This review systematically summarizes the current pollution status of DZP in fishery water and its adverse effects on aquatic organisms, emphasizing its persistence in both water and aquatic products. The paper comprehensively examines advances in detection techniques, including gas chromatography-mass spectrometry (GC-MS) and liquid chromatography-tandem mass spectrometry (LC-MS/MS), as well as treatment technologies such as adsorption, photolysis, chemical oxidation, and biodegradation. Critical gaps remain in the integration of these technologies for practical remediation. The review underscores the urgent need for enhanced monitoring and risk assessment of DZP contamination, alongside the development of more efficient and scalable treatment methods. By consolidating current knowledge, this work provides technical support for aquatic organism protection and fishery water management, and serves as a reference for future research and technological innovation in this field.
Environmental Chemistry•2026•DOI: 10.7524/j.issn.0254-6108.2025031304
The Qingling River, a representative silicate rock catchment in the upper Yangtze Basin, is vital for agricultural productivity in central Yunnan. To investigate its hydrochemical characteristics, river water samples were systematically collected during both dry and wet seasons. Employing hydrochemical diagrams, statistical analysis, and absolute principal component score-multiple linear regression (APCS-MLR) modeling, we identified influencing factors and their contributions to water chemistry and evaluated irrigation suitability. Results showed that pH ranged from 7.36 to 9.18 in dry season and 7.12 to 8.92 in wet season, with total dissolved solids (TDS) varying between 119–2684 mg·L−1 and 125–2342 mg·L−1, respectively. Dominant cations were Ca2+ and Na+, while anions were primarily SO4^2− and HCO3^− in both seasons; notably, SO4^2− concentrations significantly exceeded the Yangtze River Basin’s average. Hydrochemical types varied seasonally: HCO3·SO4-Ca·Mg and HCO3·SO4-Ca dominated in dry season, whereas HCO3·SO4-Ca·Na, HCO3·SO4-Ca·Mg, and HCO3-Ca prevailed in wet season. The river water was affected by five factors: sulfuric acid-dominated water-rock interactions, carbonic acid-dominated water-rock interactions, domestic sewage discharge, agricultural non-point source pollution, and unknown sources. Contribution rates were 47.90%, 24.80%, 16.98%, 2.40%, and 7.92% in dry season, and 28.23%, 28.94%, 27.48%, 2.02%, and 13.34% in wet season, respectively. Water-rock interactions emerged as the primary control on hydrochemistry. While most samples were suitable for irrigation, a few exhibited high salinity, warranting cautious use. This study provides scientific support for irrigation water resource management and safe utilization in the Qingling River Basin.
Environmental Chemistry•2026•DOI: 10.7524/j.issn.0254-6108.2025051307
This study investigates the ionic concentration characteristics and sources of atmospheric precipitation in Changsha, China, based on samples collected from December 2019 to November 2021. The total dissolved solids (TDS) in precipitation ranged from 51.71 to 813.40 μeq·L−1, with a volume-weighted mean (VWM) concentration of 245.58 μeq·L−1. The VWM ionic concentrations followed the order: Ca2+ > SO4^2− > NO3^− > HCO3^− > K+ > Na+ > Cl− > Mg2+. Ca2+ and SO4^2− together accounted for 55.76% of the total ionic mass. Seasonal variation of total ionic concentration was highest in winter and lowest in spring, following the order winter > autumn > summer > spring. Correlation analysis revealed strong positive correlations between SO4^2− and NO3^− (r = 0.78) and between Ca2+ and Mg2+ (r = 0.70), suggesting common sources. Principal component analysis and enrichment factor (EF) analysis indicated that SO4^2− and NO3^− predominantly originated from anthropogenic activities, with contribution rates of 99.5% and 95.4%, respectively, likely from coal combustion and industrial emissions. Ca2+ and K+ were mainly terrestrial, with contribution rates of 99.2% and 98.3%, respectively, from soil and biomass burning. Mg2+ had dual sources: 68.8% terrestrial and 31.2% marine. Cl− exhibited an EFmarine of 0.74 and EFsoil of 50.20, indicating a dominant marine source contributing 98% of its input. These findings provide a scientific basis for understanding regional atmospheric pollution and supporting environmental management strategies.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-4010-4
Liver fibrosis, a critical pathological consequence of chronic liver injury, remains a therapeutic challenge due to its complex mechanisms and limited effectiveness of conventional treatments. Recent advancements in two-dimensional (2D) nanomaterials, such as graphene derivatives, transition metal dichalcogenides (TMDs), black phosphorus nanosheets (BPNSs), MXenes, and layered double hydroxides (LDHs), have created novel opportunities for antifibrotic therapy. These materials exhibit exceptional physicochemical properties, including ultrahigh surface area, tunable surface chemistry, biocompatibility, and photothermal/electrochemical functionalities, enabling multifaceted interventions in fibrosis progression. The core therapeutic strategies mainly involve modulating hepatic stellate cells (HSCs) activation, inhibiting excessive extracellular matrix (ECM) deposition, and alleviating oxidative stress and inflammatory responses. However, 2D nanomaterials still face great challenges, such as long-term biosafety, precise functionalization for tissue-specific targeting, and scalable synthetic methods. This review systematically summarizes the recent breakthroughs in anti-fibrosis strategies based on 2D nanomaterials, elucidates their potential mechanisms of action, and explores the prospects for clinical translation of these nanoplatforms. Serving as a nexus between materials science and hepatology, 2D nanomaterials offer revolutionary prospects for precision medicine applications in hepatic fibrosis management.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3966-0
The development of low platinum-loading catalysts for the economically viable hydrogen evolution reaction (HER) remains challenging. Herein, a precursor dilution strategy is used to fabricate Pt nanoclusters anchored on Ni-embedded porous carbon microspheres. The approach begins with the facile synthesis of Zn/Ni-based coordination polymers (Ni-BTC-Zn) due to the isomorphic substitution of Zn2+ and Ni2+. During pyrolysis, the evaporation of zinc species results in a highly porous carbon structure with well-dispersed nickel nanoparticles. Subsequent solvothermal treatment allows for the uniform deposition of Pt nanoclusters to form the final bimetallic PtNi catalysts (PtNi-BTC-C). Among them, the optimized PtNi-BTC-C10 exhibits exceptional alkaline HER performance, requiring an overpotential of only 41 mV to achieve 10 mA cm−2 and a low Tafel slope of 31.1 mV dec−1. It also demonstrates outstanding durability with a current retention of 90.7% after 70 h, far exceeding Pt/C. Extensive characterization confirms that moderate Zn dilution optimally modulates the Ni particle size and dispersion, leading to maximized active sites and enhanced charge transfer. Combined with DFT calculations, the Pt-Ni-cluster model for PtNi-BTC-C10 possesses an optimized electronic structure with a shifted d-band center, which facilitates water dissociation and optimizes H* desorption with the most favorable energetics (0.262 eV). This work provides a fundamental understanding of precursor dilution engineering and offers a versatile pathway for designing advanced noble-metal-based bimetallic electrocatalysts.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3950-x
Photocatalytic oxygen reduction reaction (ORR) for hydrogen peroxide (H2O2) production via the two-electron pathway offers an environmentally friendly oxidant and a clean fuel. However, challenges exist in optimal oxygen (O2) adsorption capacities and maintaining O–O bond during O2 activation. Herein, we present a zinc single-atom catalyst (Zn/VN-CN) incorporating nitrogen vacancies (VN), designed to modulate the electronic structure of the photocatalyst, leading to optimized O2 adsorption energy and a remarkable enhancement in H2O2 yield. Benefiting from the synergistic effect between nitrogen vacancies and Zn single atoms, the optimized Zn/VN-CN catalyst exhibits a photocatalytic H2O2 production rate of 2.399 mmol g−1 h−1 under visible-light irradiation, representing a 12-fold enhancement compared to pristine g-C3N4 (CN), along with a high H2O2 selectivity of 87.4%. Combined experimental and theoretical studies indicate that the Zn-N3 sites act as highly active reaction centers, while nitrogen vacancies increase the charge density and downshift the d-band center of the Zn sites, thereby moderating O2 adsorption strength, lowering the activation energy barrier for the formation of *H2O2, and further converting it to H2O2. This work proposes an effective strategy for tuning O2 adsorption behavior to achieve highly selective and active photocatalytic H2O2 production.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4076-x
The transition from laboratory-scale to industrial hydrogen peroxide (H2O2) production hinges on achieving ultra-high photocatalytic efficiency. Herein, we demonstrate a nitrogen-substitution engineering strategy for photocatalysts by replacing partial carbon atoms in benzene-1,3,5-triamine with nitrogen atoms, showing dual synergistic effects: (1) electronic structure modification upon electronegativity and dipole moment of the building blocks, creating built-in electric fields that promote charge separation and interfacial electron transfer; (2) enhancement in adsorption of reaction intermediates significantly boosting oxygen reduction reaction (ORR) and water oxidation reaction (WOR) kinetics. This dual-modification system exhibits broadband light absorption extending to 700 nm (near-infrared), enabling outstanding performance under ambient conditions with a H2O2 production rate of 12099 μmol g−1 h−1 from water and O2 without any sacrificial agent, an apparent quantum efficiency (AQE) of 19% at 500 nm, and a solar-to-chemical energy (SCC) efficiency of 1.38%. This work establishes atom-engineered nitrogen substitution as a general approach for designing high-performance photocatalysts, offering a viable pathway for large-scale H2O2 production with solar-driven chemical synthesis paradigm.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3964-5
The escalating demand for personalized thermal-moisture comfort, coupled with the high energy consumption of conventional heating and cooling systems and the imperative for low-carbon energy conservation, has driven the development of shape memory smart fabrics that respond to environmental changes. However, existing shape memory thermal-moisture management fabrics suffer from excessively high response temperatures, inadequate response performance, and suboptimal thermal-moisture management. In this work, a dual-network shape memory polymer (SMP) was synthesized, and its shape memory transition temperature was tuned to align with the human thermal comfort range. The polymer was processed into fibers and subsequently into twisted-coiled artificial muscles to enhance reversible strain. Woven with wool into a plain fabric, the resulting textile exhibits adaptive thermal-moisture management, achieving a warp reversible strain of up to 17.5%. At elevated temperatures, the fabric contracts, exhibiting an air permeability of 1546 mm/s and thermal conductivity of 0.0518 W/(m·K); at lower temperatures, it elongates, with air permeability of 1322 mm/s and thermal conductivity of 0.0426 W/(m·K), thereby realizing 'warm when cool and cool when hot' functionality. Compared with commercial wool fabrics, this smart fabric lowers the skin microenvironment temperature by 1.5 °C and offers an energy savings potential of approximately 222.58 MJ/m² per year in capital cities such as Beijing. This work provides a novel technical pathway and design approach for future personalized comfort and low-carbon, energy-saving textiles.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-4011-7
Biomass-derived room-temperature phosphorescence (RTP) carbon dots (CDs) hold great promise for anti-counterfeiting and information encryption. However, achieving solid-state matrix-free long-lived CDs with time-dependent phosphorescence colors (TDPC) remains challenging due to aggregation-induced quenching. Here, solid-state matrix-free RTP phosphorus-doped CDs (P-CDs) are developed via one-step hydrothermal treatment of feather powder and phytic acid. The resulting P-CDs powder exhibits bright blue fluorescence under UV illumination and unprecedented TDPC shifting from yellow to green after UV removal, with afterglow lasting 12 s (average lifetime 1.15 s). Enhanced RTP is attributed to increased triplet-state excitons via spin-orbit coupling induced by P-doping. A dual-mode luminescent ink formulated by combining P-CDs with polyvinyl alcohol (PVA) is successfully applied to commercial A4 paper, showing pronounced TDPC (light-yellow to green) with improved RTP lifetime (1.31 s) after ceasing UV irradiation. The P-CDs/PVA ink demonstrates excellent anti-counterfeiting and information encryption capabilities, outstanding luminescent durability, and broad practicability on cellulosic substrates including fabric and paper. These findings provide a strategy for exploiting matrix-free solid-state RTP P-CDs with distinctive TDPC properties and offer a sustainable route to converting feather wastes into high-value materials.
Chinese Journal of Environmental Engineering•2026•DOI: 10.12030/j.cjee.202512025
Persulfate (PS) is a common oxidant in in-situ chemical oxidation (ISCO) for groundwater organic contamination, but its vertical concentration stratification may lead to inefficient remediation of light non-aqueous phase liquids (LNAPLs). To investigate the vertical stratification characteristics of PS in porous aquifers and its impact on LNAPLs remediation, static water column experiments and flowing water sand tank experiments were conducted. The migration behavior of PS under non-slow-release and slow-release conditions was compared, with Br− as a reference tracer and benzene, toluene, and xylene (BTX) as LNAPLs contaminants. Results showed that in static water columns, Br− exhibited weak vertical migration, short migration distance, and a low decay rate (0.009 d−1), consistent with a stable tracer. In contrast, PS showed strong vertical migration, with concentrations increasing with depth; under slow-release conditions, the concentration difference between the top and bottom of the column could reach two orders of magnitude. Br− migration was dominated by molecular diffusion (effective diffusion coefficient 2.2×10−9 m2·s−1), while PS migration was driven by both diffusion and density. Under slow-release conditions, the average PS decay rate was 0.072 d−1, slightly higher than the non-slow-release rate (0.059 d−1). In both column and sand tank experiments, BTX exhibited a distinct shallow-layer distribution, contrasting with PS. When the aquifer thickness is large, PS stratification limits its contact with LNAPLs contaminants, increasing remediation cost and difficulty. These findings provide theoretical reference for PS-based ISCO remediation of LNAPLs in porous aquifers.
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.
Journal of Fuel Chemistry and Technology•2026•DOI: 10.1016/S1872-5813(26)60762-1
The CO2 dry reforming of methane (DRM) is pivotal for CO2 utilization within the dual-carbon framework, offering advantages in carbon reduction and value-added chemical production. However, shaped catalysts suitable for industrial-scale DRM remain limited. This work constructs a monolithic catalyst using honeycomb cordierite as the structural support, systematically investigating the effects of organic and inorganic binders on coating structure and catalytic performance. Comparative studies reveal that the active coating fabricated with inorganic aluminum sol exhibits a continuous uniform morphology and excellent adhesion strength. During high-temperature calcination, elemental diffusion within Al2O3 networks bridges the cordierite surface with active catalyst particles, forming a (Ni-Mg)AlxO4 composite structure. This creates robust metal-support interactions between active sites and the residual alumina matrix. The interconnected mesoporous framework provides superior pore confinement, contributing to strong coating adhesion, enhanced activity, and improved resistance to carbon deposition in the monolithic m-NCM-Al-sol catalyst. In contrast, coatings derived from inorganic silica sol suffer from detachment and activity loss due to heterogeneous surface structures and poor adhesion. Organic binders demonstrate inferior performance in macroscopic coating uniformity, adhesion strength, mesoporous confinement, and localized electronic effects, resulting in the poorest catalytic performance. By optimizing aluminum sol coating parameters—binder content, active component dosage, and coating cycles—a synergistic balance between coating thickness and mass transfer is achieved. The optimized catalyst demonstrates excellent DRM performance, providing insights for constructing high-performance shaped catalysts with cordierite coatings.
Environmental Chemistry•2026•DOI: 10.7524/j.issn.0254-6108.2025041502
Microplastics (MPs), defined as plastic particles smaller than 5 mm, are ubiquitous environmental contaminants with documented presence in urban, rural, marine, remote, and polar atmospheres. The atmosphere serves as a primary medium for their long-range transport, raising concerns regarding climate interactions and human health. This review synthesizes recent advances in atmospheric MPs research, encompassing sampling strategies, pretreatment protocols, analytical techniques, occurrence characteristics, and ecological ramifications. Passive and active sampling methods are delineated, with active samplers enabling quantitative flux measurements. Pretreatment typically involves sequential steps of sieving, density separation, digestion, staining, and filtration to isolate MPs from complex matrices. Identification relies on visual inspection, micro-Fourier transform infrared spectroscopy (μ-FTIR), micro-Raman spectroscopy, laser direct infrared imaging (LDIR), and mass spectrometry. Reported atmospheric MPs predominantly exhibit dimensions below 700 μm, with fibrous morphologies being most prevalent. Color distribution is dominated by black, followed by white and transparent particles. Over 20 polymer types have been identified, with textiles, tire wear, and dust identified as principal sources. Atmospheric MPs can influence solar radiation balance, cloud formation processes, and pose risks to flora, fauna, and human health. However, research remains nascent; standardization of sampling and analytical protocols, along with comprehensive toxicological assessments, are critical knowledge gaps requiring urgent attention.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3969-9
Phosphor-in-glass (PiG) materials are promising color converters for high-power laser illumination, yet suppressing interfacial reactions between phosphor and glass matrix at elevated sintering temperatures remains a critical challenge. Here, we report a Y3Al5O12:Ce3+ (YAG:Ce) phosphor-in-silica glass (PiSG) with high SiO2 content (>85 wt%) fabricated via a Cs2CO3 flux. Incorporation of Cs2O significantly inhibits SiO2-YAG:Ce reactions, preserving internal quantum efficiency (IQE) at 97.7% of pure YAG:Ce, and achieving 88.3% IQE even after calcination at 1400°C for 2 h. In contrast, smaller alkali ions (Li+, Na+) accelerate YAG:Ce decomposition. Mechanistic studies reveal that Cs+ with large ionic radius and weak interaction with oxygen suppresses non-bridging oxygen (NBO) formation, promoting a complete silica network that limits alkali ion diffusion. Leveraging the mixed alkali effect (10% Li2O + 5% Cs2O), the PiSG exhibits enhanced hydrothermal stability, withstanding 200°C treatment for 10 h. A PiG film-sapphire device delivers 3080 lm luminous flux and 213 lm W−1 efficiency under blue laser excitation. These findings establish YAG:Ce-PiSG as a highly promising color-conversion material for high-performance laser illumination.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3978-0
All-polymer solar cells (all-PSCs) are promising for flexible and wearable electronics due to their excellent stability and mechanical stretchability. However, achieving high performance remains challenging due to difficulties in controlling the morphology of polymer blend films. In this study, a novel polymer donor, PBDTF-DTP, incorporating a weak electron-withdrawing yet large-dipole-moment dithienylphthalimide (DTP-2T) unit, was rationally designed and synthesized for ternary all-PSCs. Introducing PBDTF-DTP as a guest donor enables complementary light absorption and deepens the highest occupied molecular orbital level, simultaneously improving short-circuit current density (J_SC) and open-circuit voltage (V_OC). The large dipole moment of DTP-2T increases the dielectric constant, suppressing non-radiative energy loss and further boosting V_OC. Notably, PBDTF-DTP exhibits a relatively higher molecular electrostatic potential than the host donor, effectively tuning compatibility with both polymer donor and acceptor, regulating blend morphology, and promoting formation of a nanoscale fibrillar network. This optimized morphology facilitates efficient charge generation and transport while suppressing charge recombination. Consequently, ternary all-PSCs based on PM6:PBDTF-DTP:PYIT achieve a synergistic enhancement in J_SC, V_OC, and fill factor, yielding a remarkable power conversion efficiency of 18.01%, significantly higher than that of binary PM6:PYIT devices (15.51%). This study demonstrates that combining electrostatic potential optimization with a ternary strategy provides an effective approach to regulate morphology and achieve high-efficiency all-PSCs.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3998-8
Constitutional isomerism in covalent organic frameworks (COFs) has emerged as a powerful strategy to tailor material properties for photocatalytic applications. Here, we report the design and synthesis of two isomeric multicomponent COFs (MC-COFs) via Schiff-base condensation followed by Povarov reaction, converting imine linkages into quinoline structures. These isomeric MC-COFs exhibit opposing C=N bond orientations and distinct phenyl group alignments within the COF pores, leading to different torsion angles in the COF layers. Structural analyses reveal that enhanced planarity promotes π-π stacking and electron delocalization, resulting in favorable band structures and reduced exciton binding energies. Consequently, the optimized COF achieves a superior hydrogen peroxide (H2O2) production rate of 3128 μmol g−1 h−1 under visible light irradiation. This work underscores the critical influence of structural isomerism on the photocatalytic efficiency of MC-COFs and provides insights for rational design of high-performance COF-based photocatalysts.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-4017-y
Lattice distortion via entropy engineering can significantly optimize thermoelectric performance by intensifying phonon scattering. However, excessive lattice distortion in high-entropy materials inevitably hinders carrier transport, limiting the wide-temperature average ZT (ZTave). To enhance the wide-temperature thermoelectric performance of low-cost PbS-based compounds, this work introduces moderate lattice distortion by controlling entropy around 1.0R (R is the gas constant) to balance phonon and carrier transport, alleviating restrictions on carrier mobility. Substantial Se and Te alloying in PbS induces rock-salt lattice distortion, effectively impeding phonon propagation, thus suppressing lattice thermal conductivity (κlat) from 2.41 W m−1 K−1 in PbS to 0.66 W m−1 K−1 in PbS0.5Se0.35Te0.15 at 300 K. Additionally, Cu interstitials are introduced into the lattice-distorted PbS0.5Se0.35Te0.15 to further optimize carrier density and weighted carrier mobility (μW), leading to significant improvement in μW/κlat parameter at 300–773 K. Finally, a room-temperature ZT of 0.53 and a maximum ZT of 1.44 are obtained in PbS0.5Se0.35Te0.15-1%Cu sample, contributing to an impressive ZTave of 1.08 at 300–773 K and a maximum power generation efficiency (ηmax) of 7.5%. The results outperform previously reported cost-effective PbS-based compounds and highlight the importance of lattice distortion regulation in enhancing wide-temperature thermoelectric performance.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-4045-x
The release of radioactive iodine from nuclear accidents and nuclear medicine poses significant environmental and health risks. Here, we report the design and synthesis of two cross-linked macrocycle-based porous organic polymers (P1 and P2) with different functionalities for efficient and rapid capture of radioactive iodine. P1 achieves complete iodine adsorption within 5 minutes, with an exceptional adsorption rate constant (k_obs) of 18.92 g g−1 min−1 (8.24 g g−1 min−1 for P2), representing a record-high iodine removal rate among state-of-the-art porous organic polymers. P1 demonstrates superior iodine adsorption efficacy in dynamic flow-through experiments, achieving a remarkable efficiency of 96.4% for radioactive 131I removal, greatly minimizing radiation contamination. Experimental and modelling techniques reveal that the superior iodine adsorption performance originates from electron-rich functional groups, hydrophobic surface, and porous structure of P1, thus exhibiting remarkable iodine capture capabilities through charge transfer, halogen bonding, and hydrophobic effects. The adsorbents show excellent stability and performance under complex and harsh conditions (pH 2–10) and can be easily regenerated, confirming their excellent reusability and potential for practical applications.
Journal of Fuel Chemistry and Technology•2026•DOI: 10.1016/S1872-5813(26)60671-8
The conversion of CO2 into gasoline-range hydrocarbons represents a sustainable pathway to achieve deep decarbonization in the transportation sector. Nevertheless, the traditional Fischer-Tropsch synthesis (FTS) suffers from a broad product distribution, which restricts the achievable selectivity toward C5−C11 gasoline-range hydrocarbons to roughly 45%. This study presents the development of a bifunctional catalyst that integrates In2O3/ZrO2 metal oxides with SAPO-11 molecular sieves, aiming at efficiently converting CO2/CO mixtures into C5−C11 gasoline hydrocarbons. Catalysts with varying In/Zr ratios were prepared via co-precipitation. By employing a COx (CO/CO2) co-feeding strategy (CO/COx = 0.5), the formation of by-product CO was significantly suppressed, thereby enabling the selectivity for gasoline hydrocarbons to exceed the maximum predicted by the Anderson-Schulz-Flory (ASF) model. Notably, under identical reaction conditions, the In2Zr1Ox/SAPO-11 catalyst exhibited higher performance compared with In2O3/SAPO-11 and ZrO2/SAPO-11. The COx conversion was elevated by 1.7% and 0.2%, while the selectivity toward C5–C11 hydrocarbons was enhanced by 8.0% and 16.0%, respectively. Furthermore, the In2Zr1Ox/SAPO-11 catalyst delivered a single-pass performance of 24% COx conversion and 68% selectivity for C5−C11 hydrocarbons at 380 °C, 3 MPa and a gas hourly space velocity (GHSV) of 2400 mL/(min·g). Within this product distribution, isoparaffins accounted for 32.6% of the total components, corresponding to an isoparaffin/neoparaffin ratio of 12.3. After 150 h of stability testing, the catalyst maintained a single-pass COx conversion of 23% and a C5−C11 selectivity of ~65%, demonstrating excellent catalytic activity and promising potential for industrial application.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-4029-4
Chemical sensing technology is pivotal in modern industry and daily life, with sensor performance critically reliant on nanomaterials. While sensors based on traditional nanomaterials, such as inorganic semiconductors and organic conductive polymers, have achieved commercialization, they face persistent challenges. As an emerging subclass, conductive metal-organic frameworks (c-MOFs) not only inherit the core advantages of traditional MOFs—high specific surface area, porosity, and tunable composition/structure—but also offer adjustable electrical conductivity, rendering them ideal for sensing applications. This review systematically elucidates the construction and properties of c-MOFs across microscopic crystalline and macroscopic micro-nano structural scales. Special emphasis is placed on the structural design and regulation of c-MOFs for analytical sensing, and the intrinsic structure-performance relationship is clarified to achieve higher sensitivity, selectivity, response speed, and long-term stability, as well as other performance metrics. Finally, we comprehensively summarize the typical applications of c-MOFs-based sensors, covering environmental and safety monitoring, photoelectric detection, and health monitoring and diagnosis. At the same time, the key challenges existing in this field, such as the controllable preparation of high-quality single-crystal materials, the theoretical analysis of intrinsic electrically conductive mechanisms, and the balance between macroscopic material stability and the processing performance of devices, were evaluated. The future research directions should focus on developing new ligands and metal combinations to optimize the band structure, deepening the exploration of the mechanisms of emerging physical effects such as piezoelectricity, and promoting the integration and application of materials in practical scenarios such as flexible electronics and wearable devices.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-4024-1
Sonodynamic therapy (SDT) faces limited efficacy due to robust antioxidant systems in tumors that scavenge reactive oxygen species (ROS). To overcome this, we developed a pH/ultrasound-responsive theranostic nanoplatform, Mn-CaCO3@NGQDs/PAA, via self-assembly of nitrogen-doped graphene quantum dots (NGQDs), Mn-doped CaCO3, and polyacrylic acid (PAA). This platform synergistically combines SDT with calcium overload. Under ultrasound irradiation, it generates abundant singlet oxygen (1O2), while the acidic tumor microenvironment triggers sustained Ca2+ release, inducing calcium overload. The combined effects amplify oxidative stress, suppressing tumor growth. Additionally, the nanoplatform exhibits dual-mode T1/T2-weighted magnetic resonance imaging (MRI) performance, enabling tumor localization. In vivo studies demonstrated significant tumor inhibition and apoptosis, with no notable toxicity. This integrated strategy maximizes therapeutic efficacy, offering a promising approach for enhanced tumor therapy.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-4222-9
The proliferation of high-frequency communication technologies has escalated electromagnetic (EM) pollution, posing risks to health and device reliability. Conventional microwave absorbers dissipate EM energy as heat, creating thermal management burdens and energy waste. This study introduces Bi2Se3 nanosheets, a topological insulator with surface conductivity and internal insulation, as a dual-functional material capable of both microwave absorption and thermoelectric conversion. Nanosheets with controlled morphology were synthesized via a polyol reduction method, with thickness and lateral size tuned by preparation conditions. The resulting composites exhibited excellent microwave absorption, achieving a broad absorption bandwidth of 2.95 GHz at sub-millimeter thickness. A multilayered structure design enabled full-band absorption from 2 to 18 GHz using a single absorbent. The Seebeck coefficient, derived from temperature differences up to 110 °C, was -152 μV/K, indicating efficient conversion of absorbed EM energy into electrical energy. This work demonstrates the potential of Bi2Se3 nanomaterials for self-powered electromagnetic devices, addressing both EM pollution and energy supply challenges.
SCIENCE CHINA Materials•2025•DOI: 10.1007/s40843-025-3631-1
Anion exchange membrane water electrolysis (AEMWE) offers cost and dynamic-response advantages over proton exchange membrane systems, yet commercial deployment is constrained by the alkaline stability of anion exchange membranes (AEMs) and the sluggish kinetics of non-precious metal catalysts. This work reports a series of poly(terphenyl-diphenylmethane piperidinium) (QPDPMTP) membranes synthesized with varied diphenylmethane (DPM) content. The alkyl chain of DPM induces pronounced microphase separation and elevates free volume fraction, yielding an OH− conductivity of 152 mS cm−1 at 80 °C for QPDPMTP-10. After 1032 h immersion in 6 M NaOH at 80 °C, the membrane retains 90.7% of its initial conductivity. An AEMWE cell integrating QPDPMTP-10 with a non-precious NiFeCo LDH/NiS/NF anode achieves 3.11 A cm−2 at 2 V in 1 M KOH at 80 °C and sustains 1 A cm−2 for 1800 h under gradient KOH concentration. These results establish a viable pathway for durable, low-cost AEMWE systems.
SCIENCE CHINA Materials•2025•DOI: 10.1007/s40843-025-3548-9
Photodynamic therapy (PDT) is constrained by the absence of tumor selectivity in conventional photosensitizers (PSs), which produces phototoxicity in normal tissues and risks activation by ambient light. Covalent conjugation of PSs to targeting peptides improves accumulation but does not suppress off-target activation. This work reports B-HCPP-RGD, a single-molecule PS that integrates αVβ3 integrin targeting with dual responsiveness to H2O2 and cathepsin B. The hypocrellin-derived type I PS HCEA is masked by a 4-(bromomethyl)phenylboronic acid pinacol ester H2O2-responsive group and conjugated to cyclic Arg-Gly-Asp (cRGD) through a cathepsin B-cleavable Gln-Val dipeptide linker. ROS generation in solution is effectively suppressed until both H2O2 and cathepsin B are present, at which point HCEA is released. In vitro, B-HCPP-RGD shows negligible phototoxicity toward normal cells and pronounced phototoxicity toward tumor cells, including under hypoxic conditions. In vivo, the conjugate actively targets tumor tissue and achieves a high tumor inhibition rate with favorable biosafety. The results establish a modular design for dual-responsive, tumor-targeted PSs that improves the precision and safety of PDT.