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Verified CAS / Academic Author46 Decoded Studies

Prof. Dongzhu Liu

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Co-Affiliations:Science China MaterialsInstitute of Advanced Electrochemical Energy, Xi'an University of Technology

Research Publications & English Decoded Briefs

Showing 46 publications
SCIENCE CHINA Materials2026DOI: 10.1007/s40843-026-4505-9

Ce-induced dynamic electron buffering to regulate controllable surface reconstruction of Co for alkaline oxygen evolution reaction

Transition metal hydroxides are promising oxygen evolution reaction (OER) catalysts for alkaline water electrolysis. This study reports Ce-doped Co(OH)2 electrocatalysts synthesized via one-step electrodeposition, where the Ce3+/Ce4+ ratio is precisely controlled by deposition temperature. The optimized Ce-Co(OH)2 catalyst, obtained at 40°C, exhibits an overpotential of 236 mV at 10 mA cm-2 and maintains stability for 200 h. In an anion-exchange membrane water electrolyzer (AEMWE), the Ce-Co(OH)2 anode achieves a cell voltage of 2.04 V at 1 A cm-2 and operates for over 500 h at 500 mA cm-2. Mechanistic analysis reveals that Ce3+/Ce4+ dynamic electron buffering regulates surface reconstruction: during OER, electron transfer direction reverses (Ce → O → Co), with Ce donating electrons to Co sites to prevent over-oxidation and structural collapse. This work establishes a versatile strategy for balancing surface reconstruction and structural stability in Co-based OER catalysts, providing a foundation for designing high-performance, durable alkaline water oxidation electrocatalysts.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-026-4249-2

Bioinspired Temperature-Responsive Anisotropic Cilia Surface for Flexible Manipulation of Underwater Bubbles

Underwater bubble manipulation is critical for water electrolysis, heat transfer, and mineral flotation, yet existing strategies relying on buoyancy or Laplace gradient forces from asymmetric surface geometries suffer from limited flexibility and narrow applicability. This work introduces a temperature-responsive anisotropic cilia surface (TRAS) that achieves bidirectional long-range bubble transport by modulating elastic modulus and stiffness. The TRAS enables precise control over the asymmetric three-phase contact line and viscous resistance, facilitating reversible bubble motion. Experimental validation using aqueous ethanol droplets with varying surface tensions (73.16 mN/m for 0 vol% to 22.27 mN/m for 100 vol%) on cilia with center-to-center spacings of 0.2–1.0 mm reveals that transport direction depends on both cilia spacing and liquid surface tension. Droplets of 0 vol% and 20 vol% ethanol exhibit sustained reverse transport on hard cilia, while 60 vol%, 80 vol%, and 100 vol% solutions show sustained forward transport. Notably, 40 vol% ethanol droplets display bidirectional transport at 0.6 mm spacing, reverse transport at 0.8 and 1.0 mm, and forward transport at 0.2 and 0.4 mm. These results demonstrate that tuning surface tension and cilia spacing provides a versatile platform for directional bubble manipulation, with promising applications in heat transfer, electrochemistry, and gas handling systems.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-026-4476-1

From Coil to Rotation: A Bat-Inspired Light-Driven Soft Robot with Self-Sustained Oscillation

Self-sustained oscillation in soft actuators enables autonomous, untethered robotic locomotion, yet existing light-driven systems suffer from low oscillation frequencies, rapid photothermal degradation, and reliance on external controllers. This work presents a bat-inspired soft robot that converts continuous near-infrared (NIR) irradiation into sustained rotational motion via a coiled MXene-based liquid crystal elastomer (LCE) actuator. The actuator integrates Ti3C2Tx MXene nanosheets as photothermal converters within an LCE matrix, achieving a photothermal conversion efficiency of 78.3% and a steady-state temperature of 142 °C under 1.5 W cm−2 NIR (808 nm). The coil geometry induces a self-shadowing effect that generates periodic light exposure, producing autonomous oscillation at 2.7 Hz with an amplitude of 45°. The robot demonstrates a rotational speed of 120 rpm and a specific power density of 3.2 W kg−1, outperforming previously reported light-driven oscillators by a factor of 2.5. Under continuous operation for 10,000 cycles, the actuator retains 92% of its initial oscillation amplitude, with a degradation rate of 0.008% per cycle. The bat-inspired wing morphology enables directional rotation and obstacle avoidance in confined spaces. This platform eliminates the need for external modulation, offering a scalable route to autonomous soft robotics for inspection, environmental monitoring, and micro-manipulation.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-026-4365-2

Gradient Conductivity Boosts Flexible Tactile Sensors to Record Sensitivity and Linear Range

The intrinsic trade-off between sensitivity and linear range in piezoresistive tactile sensors has constrained their adoption in high-fidelity flexible electronics. This study introduces a layer-by-layer gradient conductivity (LGC) architecture that decouples these competing metrics. Through sequential deposition of conductive layers with decreasing filler content, the LGC resistive layer establishes a monotonic resistance–pressure relationship. The optimized LGC0.4@3 sensor achieves a record sensitivity of 0.4 kPa⁻¹ and a linear range extending to 300 kPa, as evidenced by relative electrical response measurements (Figure 1d). Dynamic monitoring of ground slope changes and convexity/concavity features (Figure 1e,f) confirms real-time operational stability. The gradient design mitigates percolation saturation, enabling linear output across three orders of magnitude. This advance addresses a critical bottleneck in tactile sensing, offering a scalable pathway for robotic proprioception and wearable health monitors. The fabrication protocol is compatible with roll-to-roll processing, with potential for cost parity against commercial capacitive sensors. Industrial translation requires further validation under cyclic loading and environmental aging, but the demonstrated metrics position LGC sensors as a viable alternative for applications demanding both high sensitivity and broad dynamic range.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-026-4206-6

Dual-Function Ladder Polysilsesquioxanes for Precise Patterning and 3D Integration of High-Performance Flexible Organic Logic Circuits

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 Materials2026DOI: 10.1007/s40843-026-4180-9

Defect Engineering Activated Lattice Oxygen Mechanism in High-Entropy LDHs for Highly Active and Durable Oxygen Evolution

Developing highly active and stable electrocatalysts based on the lattice oxygen mechanism (LOM) for the oxygen evolution reaction (OER) represents a significant challenge in water splitting. Herein, we successfully introduce oxygen vacancies (Ov) into high-entropy MnFeCoNiCu layered double hydroxides (HE-LDHs) via a solution chemical reduction method utilizing a defect engineering strategy. By precisely tuning the concentration of oxygen vacancies, we effectively activate the lattice oxygen within the HE-LDHs. The optimized Ov-rich high-entropy LDHs (Ov-HE-LDHs) exhibit excellent OER catalytic performance, achieving a current density of 10 mA cm−2 with a remarkably low overpotential of only 210 mV in 1.0 M KOH electrolyte, which is substantially superior to pristine HE-LDHs (315 mV) and commercial IrO2 (330 mV). Furthermore, the catalyst demonstrates outstanding long-term stability, capable of stable operation for 500 h at a high current density of approximately 200 mA cm−2. Advanced X-ray absorption fine structure analysis elucidates the lower metal valence states, indicating the existence of oxygen vacancies, while isotope labeling experiments and in-situ electrochemical Raman spectroscopy strongly confirm the successful activation of the LOM pathway. Density functional theory calculations further validate that the shift in the OER mechanism towards LOM and the resulting reduction in the reaction energy barrier are the fundamental reasons for the catalyst’s enhanced intrinsic activity. This work proposes a novel strategy for activating lattice oxygen in high-entropy LDHs through defect engineering, offering new insights and experimental guidance for the design and development of highly efficient and stable high-entropy OER electrocatalysts.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-026-4112-6

Highly Efficient Removal of Sr2+ by a Layered Potassium Phosphatoantimonate under Neutral and Acidic Conditions

Radiostrontium remediation is crucial for ecological protection and sustainable development of nuclear energy. However, efficient removal of 90Sr from complex radioactive liquid waste, especially under acidic conditions, remains challenging due to material instability and intense proton competition. Herein, the rapid and highly selective capture of Sr2+ in neutral and even acidic solutions has been achieved by a layered potassium phosphatoantimonate KSbP2O8 with excellent radiation and thermal stability. Under neutral conditions, it possesses high maximum adsorption capacity (qmSr = 110.25 mg g−1), rapid adsorption kinetics (the removal rate (RSr) of 91.54% within 30 min), and excellent selectivity for Sr2+, and facile regeneration. Particularly, even under acidic conditions (pH 2.0), KSbP2O8 still maintains excellent Sr2+ removal capacity (qmSr = 79.38 mg g−1), fast kinetics, and high selectivity. A mechanism study by multiple characterizations reveals that the efficient Sr2+ removal of KSbP2O8 mainly stems from ion exchange between Sr2+ and interlayer K+ in KSbP2O8, which is attributed to the synergy between the Sb5+-induced Brønsted acidity and the high charge density of the anionic framework. This study demonstrates the exceptional capability of phosphatoantimonates to selectively capture Sr2+ under acidic conditions, highlighting the potential of phosphatoantimonates as effective scavengers for radiostrontium remediation.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-025-3596-2

Pt-optimized AuAgCuPdPt high-entropy alloys for selective CO2 reduction and high-performance Zn-CO2 battery

High-entropy alloys (HEAs) have shown great promise in the CO2 reduction reaction (CO2RR) due to their tunable composition and unique physical and chemical properties. However, the role of HEAs in CO2RR and the underlying reaction mechanism remain underexplored, particularly through in situ techniques. In this work, we investigate the mechanism of CO2 reduction on AuAgCuPdPt HEAs using in situ Raman spectroscopy and attenuated total reflectance Fourier-transform infrared (ATR-FTIR) spectroscopy to reveal key intermediates and reaction pathways. Our results demonstrate that within the potential window of −0.2 to −0.7 V vs. reversible hydrogen electrode (RHE), the AuAgCuPdPt HEAs efficiently reduce CO2 to CO, achieving a Faradaic efficiency (FE) for CO greater than 90%, with a peak FE of 96.5% at −0.3 V vs. RHE. The CO2− intermediate was observed at low potentials, revealing the reaction pathway in the CO2 reduction process. Additionally, in situ ATR-FTIR results suggest that the introduction of an appropriate amount of Pt metal not only promotes water dissociation to generate protonic hydrogen, but also facilitates the desorption of *CO intermediates. The kinetic isotope effect of hydrogen-deuterium (H-D) confirms that water dissociation acts as a key proton donor in CO2RR. Furthermore, the catalyst of AuAgCuPdPt HEAs was applied as cathodes in a Zn-CO2 battery, achieving 90.23% FE for CO and a power density of 3.474 mW cm−2. This study provides new insights into the mechanistic understanding of CO2 reduction and underscores the importance of in situ spectroscopic techniques for advancing the design of efficient electrocatalysts for CO2 conversion.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-025-3539-5

Centrifugal casting-enabled highly oriented MXene-based layered films with dual-shielding against electromagnetic wave and infrared radiation

MXene-based layered films are promising for electromagnetic interference (EMI) shielding, yet achieving highly ordered structures in scalable production remains challenging. Here, we report a facile centrifugal casting method for fabricating MXene/polyvinyl alcohol (MXene/PVA) films with highly oriented and compact layered structures. During centrifugal casting, the viscous fluid experiences strong shear and centrifugal forces along tangential and normal directions, respectively, inducing compact and oriented arrangement of MXene nanosheets. Consequently, the Herman's orientation factor increases from 0.681 to 0.794 as rotation rate rises from 0 to 4000 r/min. Accordingly, tensile strength and toughness improve from 55.2 to 191.1 MPa and from ~0.8 to 2.5 MJ/m³, respectively. The highly oriented and compact layered structure with ultrathin thickness (~8 μm) enables a high absolute electromagnetic shielding effectiveness (SSE/t) of 21029 dB cm²/g. Moreover, increased orientation reduces infrared emissivity to 0.248, endowing the film with excellent thermal camouflage capability. This work presents an effective strategy for constructing high-performance MXene-based layered films.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-025-3698-5

Identifying the Surface Dynamic Evolution of Electrocatalysts during Oxygen Evolution Reaction by In Situ Techniques

The oxygen evolution reaction (OER) is a critical bottleneck in next-generation sustainable energy systems due to its sluggish kinetics. Developing cost-effective, high-efficiency electrocatalysts requires understanding the dynamic structural evolution at electrode-electrolyte interfaces under operating conditions. In situ techniques are invaluable for identifying active centers and monitoring key intermediates. This review comprehensively summarizes recent advances in cutting-edge in situ methods for characterizing OER electrocatalyst structure evolution. It provides a brief overview of active motifs and robust structures using multiple in situ correlative techniques, establishing essential structure-performance relationships and updating mechanistic understanding at atomic scale under realistic conditions. Key challenges and perspectives are highlighted to promote rational design of promising electrocatalysts for efficient oxygen-associated electrocatalysis and electrosynthesis.

New Carbon Materials2026DOI: 10.1016/S1872-5805(26)61071-2

Boron and Nitrogen Co-Doped Coal-Based Activated Carbon as Cathode Material for High-Performance Aqueous Zinc-Ion Hybrid Capacitors

Aqueous zinc-ion capacitors (ZICs) are promising energy storage systems due to their high specific capacity and superior reliability. Heteroatom-doped carbon materials have been shown to substantially increase the capacitance of ZICs, yet the underlying mechanisms remain poorly understood. In this work, coal-based activated carbon was functionalized with both boron (B) and nitrogen (N) to serve as the cathode material in ZICs. The optimized material, designated CAC-120, exhibits a high specific capacity of 371.4 mAh g−1 at 1 A g−1 and retains 74% of its initial capacity after 10,000 cycles. Electrochemical analysis and density functional theory (DFT) calculations reveal that pyridinic N plays a crucial role in enhancing Zn2+ storage, demonstrating superior electrochemical reversibility. Furthermore, an assembled aqueous ZIC using the CAC-120 cathode achieves a high reversible capacity of 90.8 mAh g−1 at 0.2 A g−1 and exceptional long-term stability over 17,000 cycles. This work provides valuable insight into the design of high-capacity and ultrafast pseudocapacitive carbon cathodes for ZICs, highlighting the synergistic effects of pore structure engineering and heteroatom doping.

New Carbon Materials2026DOI: 10.1016/S1872-5805(26)61066-9

Fe3C-Coated Nitrogen-Doped Carbon Nanotube/Cattail-Derived Carbon Microtube Composites for Efficient Microwave Absorption

Carbon materials suffer from limited dielectric loss, resulting in poor impedance matching and inadequate microwave attenuation. To address this, hierarchical structures with synergistic loss mechanisms are sought. Here, biomass cattail serves as a sustainable precursor for nitrogen-doped carbon nanotube arrays decorated with Fe3C nanoparticles via chemical vapor deposition, yielding Fe3C@NCNTs/CMTs composites. The crystallinity, tuned by calcination temperature, critically influences microwave absorption. At 800 °C, the composite achieves a minimum reflection loss of –35.8 dB and an effective absorption bandwidth of 7.02 GHz at a thickness of only 1.7 mm, with an ultralow filler loading of 10 wt%, covering the entire Ku band and part of the X band. This performance stems from enhanced magnetic loss and multiple dielectric polarization mechanisms. The study demonstrates a promising strategy for designing biomass-derived carbon-based broadband microwave absorbers.

Chinese Journal of Environmental Engineering2026DOI: 10.12030/j.cjee.202512072

Intelligent Detection of Drainage Pipeline Defects Based on Cross-Frame Annotation and Recall Optimization

Drainage pipeline defect detection predominantly relies on closed-circuit television (CCTV) inspection, which is labor-intensive, inefficient, and prone to missed detections. Although deep learning-based object detection has been applied, it suffers from low precision, recall, and speed in practical scenarios. This study proposes an engineering-oriented detection scheme achieving high recall and low miss rates. The annotation phase employs a cross-frame strategy combining manual labeling of first and last frames with interpolation and tracking-based refinement. Data preprocessing introduces perceptual hashing to identify similar images, enhancing training efficiency. For detection, a Faster R-CNN model is enhanced with Focal Loss to focus on hard examples, defect classification and grading, and a dynamic threshold strategy to improve recall. Validated on 5,068.72 m of real pipeline data, the method achieves a recall rate exceeding 98% across 16 defect categories, a miss rate of only 2% for grade 4 defects, and a 425% improvement in per-segment detection efficiency compared to manual screening. These results demonstrate the method's effectiveness in balancing recall, miss rate, and speed for engineering deployment.

Environmental Chemistry2026DOI: 10.7524/j.issn.0254-6108.2024122101

Effect and simulation of CO3·− on the degradation kinetics of sulfamethazine in UV/TiO2 system

Bicarbonate and carbonate ions (HCO3−/CO3^2−) are ubiquitous in wastewater and readily scavenge strong oxidants, leading to the formation of carbonate radicals (CO3·−) in radical-based advanced oxidation processes. This study investigated the influence of HCO3−/CO3^2− on the degradation kinetics of sulfamethazine (SMR) in a UV/TiO2 system. The presence of HCO3−/CO3^2− enhanced the degradation rate of SMR by sixfold compared to UV/TiO2 alone. Radical quenching experiments identified CO3·− as the primary reactive species responsible for the enhanced degradation, with hydroxyl radicals (·OH) also contributing. To quantitatively delineate the roles of reactive species and account for water matrix effects, a kinetic model was constructed using Kintecus software. The model accurately predicted SMR degradation over time and the contributions of individual radicals, demonstrating good predictive capability. Application of the model to real wastewater predicted that CO3·− is the dominant radical responsible for SMR degradation. These findings highlight the critical role of carbonate radicals in UV/TiO2 processes and provide a robust modeling framework for predicting the fate of pharmaceuticals in carbonate-rich waters.

Environmental Chemistry2026DOI: 10.7524/j.issn.0254-6108.2024120701

Excitation of Triplet State Dissolved Organic Matter Sensitizes Formic Acid to Generate CO2•− and Its Reductive Degradation of Metronidazole

Surface waters contain numerous photoactive substances and low molecular weight carboxylic acids (LCAs). Hydroxyl radicals (HO•) can react with LCAs to generate the highly reducing carbon dioxide anion radical (CO2•−). Excited triplet state dissolved organic matter (3DOM*), a common oxidant in surface waters, may also oxidize LCAs to CO2•−, but this pathway remains unexplored. This study simulated sunlight-driven generation of CO2•− via 3DOM* using 4-benzoylbenzoic acid (CBBP) as a 3DOM* precursor and formate (HCOO−) as a model LCA. Metronidazole (MNZ) served as the target pollutant. Comparative degradation experiments in hν, hν/HCOO−, hν/CBBP, and hν/CBBP/HCOO− systems, combined with electron spin resonance spectroscopy and quenching tests, confirmed that CO2•− generated in the hν/CBBP/HCOO− system was the primary reactive species responsible for enhanced MNZ degradation, originating mainly from 3CBBP* oxidizing HCOO−. Under optimized conditions (8 mmol·L−1 HCOO−, 200 μmol·L−1 CBBP, 10 μmol·L−1 MNZ), 98.2% degradation was achieved within 30 min. Degradation efficiency increased with HCOO− concentration and was pH-independent. Cl−, NO3−, CO3^2−, and low concentrations of HCO3− inhibited degradation, while high HCO3− slightly promoted it. Humic acid (HA) inhibited degradation in a concentration-dependent manner. The system also performed well in real water matrices, suggesting potential for treating micropollutants via reductive pathways.

Chinese Journal of Environmental Engineering2026DOI: 10.12030/j.cjee.202506084

Multidimensional Groundwater Quality Assessment and Source Apportionment in the Guyuan Region, Ningxia

Groundwater is a vital drinking and irrigation source in the loess regions of northwestern China. In Guyuan, a densely populated area in southern Ningxia, systematic assessments of groundwater pollution risks are lacking. This study collected 60 groundwater samples and employed the Nemerow index, heavy metal pollution index (HPI), and health risk assessment models to evaluate pollution levels and health risks of eight elements including Cr, As, and Hg. Results show that the groundwater is generally Class IV quality, with a mean TDS of 1350.9 mg·L−1. Average concentrations of As, Cr, and Mn are 4.39, 29.87, and 45.77 μg·L−1, respectively. The Nemerow index indicates moderate pollution. The mean HPI is 10.56, but a local sample (PS1-51-下) reaches 36.15, indicating severe pollution. Health risk assessment reveals that carcinogenic risks from Cr and As for adults and children are 8.037×10−6 a−1 and 3.863×10−6 a−1, respectively, below US EPA limits but above recommended levels by Swedish and Dutch agencies, with children at higher risk. Hydrogen and oxygen isotopes and principal component analysis suggest that groundwater is primarily recharged by atmospheric precipitation. Cr, Zn, and Mn mainly originate from regional copper ore belts, coal mining, and agricultural activities. This study fills a gap in multidimensional groundwater assessment in populated loess areas, identifies pollution characteristics distinct from typical loess regions, and provides a scientific basis for regional water resource risk management and sustainable development.

Environmental Chemistry2026DOI: 10.7524/j.issn.0254-6108.2025012002

Comparative Study on Oxidative Removal of Acid Orange 7 from Water by Iron-Modified Corn Straw Biochar Activated Urea-Hydrogen Peroxide and Its Mechanisms

Acid orange 7 (AO7), a recalcitrant azo dye, poses significant threats to aquatic ecosystems and human health. This study investigates the activation of urea-hydrogen peroxide (UHP) by iron-modified corn straw biochars (Fe-CSBs) for AO7 degradation. Fe-CSBs were synthesized via impregnation-pyrolysis at 300, 500, and 700 °C using ferrous sulfate as modifier. The oxidative removal efficiencies of AO7 by Fe-CSB-activated UHP were compared, and the effects of Fe-CSB dosage, UHP dosage, initial AO7 concentration, initial pH, and coexisting anions (CO3^2−, HCO3^−, Cl^−) were systematically examined. Quenching experiments identified reactive oxygen species, and LC-MS analysis determined degradation intermediates. Results showed that all Fe-CSBs effectively activated UHP, achieving degradation rates of 98.54%, 97.38%, and 98.54% for Fe-CSB300, Fe-CSB500, and Fe-CSB700, respectively, under optimal conditions (0.2 g·L−1 UHP, 0.2 g·L−1 Fe-CSB, 20 mg·L−1 AO7, pH 3, 60 min). CO3^2− and HCO3^− inhibited degradation, while Cl^− had negligible effect. The primary reactive species were hydroxyl radicals (·OH) and singlet oxygen (^1O2). Degradation proceeded via cleavage of the azo bond, forming benzene-containing intermediates, which underwent deamination, desulfurization, and oxidation to smaller organics, ultimately mineralizing to CO2 and H2O. This work provides insights into UHP-based advanced oxidation processes for dye wastewater treatment.

Journal of Environmental Engineering Technology2026DOI: 10.13205/j.hjgc.202605003

Fe2O3-Based Microbial Hybrids for Enhancing Dark Fermentation Hydrogen Production: Performance and Mechanistic Insights

Dark fermentation offers a sustainable route for hydrogen production, yet its yield is often limited by inefficient electron transfer and low microbial metabolic activity. This study engineered a mixed microbial biohybrid system incorporating Fe2O3 nanoparticles to overcome these bottlenecks. At an optimal Fe2O3 concentration of 300 mg/L (S300), the hydrogen yield reached 2.94 mol H2 per mol glucose, equivalent to 73.5% of the theoretical maximum and 1.59 times higher than the control (S0). Mechanistic analyses revealed that Fe2O3 nanoparticles stimulated microbial metabolism, as evidenced by a 4.09-fold increase in ATP content and a 1.30-fold rise in total protein concentration. Hydrogenase and dehydrogenase activities were enhanced by 24.62% and 63.11%, respectively, while electron transfer system activity increased by 3.44-fold, accompanied by a significant reduction in charge transfer resistance. Notably, the gradual release of Fe2+ ions from Fe2O3 reduction by dissimilatory iron-reducing bacteria (DIRB) was identified as a key factor in stimulating enzyme activity and electron transfer. Microbial community analysis showed that the relative abundance of Clostridium, a key hydrogen-producing genus, increased by 9.75 percentage points to 42.60% in S300. This study demonstrates that Fe2O3-based biohybrids offer a promising strategy to enhance dark fermentation hydrogen production, providing both performance improvements and mechanistic insights into nanomaterial-microbe synergies.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-025-3830-6

Helical wrapping and charge-transfer driven multi-stranded crystalline helices from a twisted figure-of-eight macrocycle

Controlled fabrication of artificial multiple-stranded helices is central to deciphering chirality complexity and hierarchical self-assembly processes. Inspired by biological helical nanostructures, we designed a twisted figure-of-eight chiral macrocycle (M1) from pyrene and benzene diimide subcomponents to direct hierarchical assembly of double- and quadruple-stranded superhelices. Single-crystal X-ray diffraction reveals that M1 undergoes charge-transfer and CH···π interactions-driven helical wrapping, forming right-handed (P) single strands that intertwine into quadruple π-helical superstructures. Crucially, the macrocycle's adaptive cavity and interstitial voids could bind electron-deficient naphthalene diimide (NDI) guests through charge transfer interactions, triggering transformation to left-handed (M) double helices. This structural shift induces helicity inversion and optical anisotropy changes, demonstrating a rare case of crystalline-state multiple-helix conversion with supramolecular chirality inversion. This work establishes a template-free methodology for synthesizing multiple-stranded π-helices and controlling their transformations through supramolecular engineering.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-025-3786-8

Dual-mode electrotunable near-infrared chiral organic synaptic photodiodes for intelligent cancer detection

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 Materials2026DOI: 10.1007/s40843-025-3814-2

Directional Micro-Grooved Fibers with Theoretical Infinite-Length Toward Liquid Self-Transport

Micro-structured surfaces have attracted increasing attention due to their great potential applications. However, it is still a challenge to continuously fabricate micro-structured surfaces based on thermoplastics by a facile, low-cost, and environmentally-friendly method. Herein, with the help of the extrusion molding method and an elaborately designed mold, micro-grooved fiber (MGF) based on high-density polyethylene (HDPE) is continuously prepared. Theoretically, infinitely long MGFs with feature sizes down to a few microns can be efficiently fabricated because of the continuous fabrication characteristic of the melt extrusion method. Interestingly, left- and right-handed micro-grooves with different helix angles can be produced by applying twisting at the die exit, and the macroscopically MGF springs can be further fabricated via a self-designed three-dimensional helical enwind device. By regulating wettability, MGF can achieve liquid self-transport on predefined paths. In addition, MGF fabric exhibits rapid evaporation behavior, whose evaporation rate is about 4 times higher than that of the Smooth fiber (SMF) fabric and 2 times higher than that of the most popular commercial quick-drying fabric (i.e., Cool-max fabric). This work proposes a facile and environmentally-friendly method for continuously preparing low-cost and flexible MGF, opening a new pathway to develop fiber-based microfluidic systems following the concept of "functionalized processing for thermoplastics".

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-025-3720-2

Three-dimensional microchannel design redefines strain-insensitive multifunctional liquid metal yarns

The emergence of smart textiles and wearable electronics demands conductive fibers that maintain stable electrical performance under dynamic mechanical deformation. Conventional conductive yarns, based on carbon nanomaterials, metallic coatings, or hybrids, suffer from a trade-off between conductivity and stretchability, often exhibiting resistance fluctuations or failure under strain. Liquid metals (LM) offer high conductivity and intrinsic deformability but suffer from interfacial instability, such as dewetting and leakage, without structural guidance. This work presents a hierarchical design strategy integrating capillary-guided infiltration and interfacial anchoring of LM within yarn microstructures. Electrospun poly(styrene-block-butadiene-block-styrene) (SBS) microfibers onto commercial spandex (PU) yarns create a porous base with three-dimensional microchannels. These channels are functionalized with silver nanoparticles (AgNPs) to enhance wettability and provide reactive sites for alloying with LM. Upon immersion, LM is drawn into the porous network via capillary action, forming stable intermetallic bonds (Ag9In4 and AgIn2) with the AgNP-modified fibers. Encapsulation with a second SBS layer yields the final SBS-LM/Ag-SBS (SLMAS) yarn. The resulting yarns exhibit exceptional electrical conductivity, with resistance as low as 0.082 Ω/cm at an LM loading of 6.88 mg/cm. They demonstrate strain-invariant performance, long-term durability, and functional convergence, supporting Joule heating and electrochromic display within a single fiber. Joule heating tests show a temperature rise from 86.4 to 122.7°C, following Ohm's and Joule's law. Integration of thermochromic microcapsules enables voltage-triggered color change, laying groundwork for electrothermally responsive textiles. Challenges remain in material costs, multi-step fabrication, and durability under environmental stressors. This work establishes a new paradigm for stretchable fiber electronics, reconciling conductivity with extreme mechanical compliance.

Journal of Environmental Engineering Technology2026DOI: 10.13205/j.hjgc.202606006

Recent Progress in Chitosan-Based Microsphere Composites for Phosphorus Removal from Aqueous Environments

Chitosan-based microsphere composites have attracted considerable attention for phosphorus adsorption due to their facile preparation, low cost, environmental friendliness, and high uptake capacity. This review summarizes the physicochemical properties and preparation methods of chitosan microspheres for phosphate removal, outlines common modification strategies to enhance adsorption capacity, and discusses their applications in aqueous environments. Adsorption mechanisms, regeneration, and resource recovery of spent microspheres are analyzed. Challenges and recommendations are proposed, including streamlined preparation, enhanced phosphorus recovery, removal of multiple phosphorus forms, and practical implementation. The review aims to guide the development of high-performance chitosan-based microspheres for phosphorus removal.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-025-3840-3

Distributed and stretchable tactile sensing for dexterous robotic hands based on a crosslinked interpenetrating network

Tactile sensing for dexterous robotic hands is essential for achieving human-like precision in manipulation. However, current tactile sensors face challenges such as insufficient durability, limited coverage, and poor conformability to curved, jointed surfaces. This study presents a stretchable distributed tactile sensor array designed for dexterous robotic hands. The array comprises 18 sensing units distributed across the hand, incorporating quasi-homogeneous functional layers interconnected by crosslinked interpenetrating networks, and composite electrodes combining high conductivity with stretchability. This design yields a thin, soft, transparent, and stretchable sensor array that integrates seamlessly with a commercial dexterous hand. The sensor array exhibits high interlayer tensile strength, high sensitivity, low hysteresis, and excellent long-term reliability over 10,000 loading cycles. Experimental results demonstrate accurate detection of tactile force across the entire robotic hand during object grasping. Using convolutional neural network algorithms, the sensor array identifies different object types with 90.1% accuracy, with results displayed in real time on a digital twin interface. The proposed sensor array holds significant potential for embodied intelligence and robotics in adaptive grasping, safe manipulation, and remote teleoperation.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-025-3847-5

In-sensor computing breakthrough enables efficient tactile information acquisition

The convergence of artificial intelligence, Internet of Things, and soft electronics has advanced tactile perception in flexible electronic skins, enabling applications in robotics, healthcare, and human-machine interfaces. However, conventional tactile sensing architectures separate sensing and processing, requiring analog-to-digital converters and data transfer to microcontrollers, which is energy-intensive and introduces latency. In-sensor computing integrates sensing and processing, reducing power consumption and enabling in-situ analog operations such as multiplication-accumulation (MAC) for artificial neural networks. Wang et al. developed a capacitive in-sensor tactile computing system combining a flexible pressure sensor array with electrical switching networks and a fixed capacitor to perform MAC operations in the charge domain. The sensor unit uses an ionic dielectric layer of PVA/H3PO4 prepared via sandpaper-templated molding, sandwiched between Au electrodes on waterborne polyurethane substrates, achieving high sensitivity of 0.36 nF/kPa and excellent stability. A 3×3 kernel of sensors with programmable bias voltages implements averaging and Laplacian filters for noise reduction and edge detection, validated experimentally. The system processes binary and analog tactile stimuli, with output voltage scaling proportionally with pressure. This in-sensor computing approach addresses energy and latency bottlenecks, offering a pathway for real-time, power-constrained e-skin applications in autonomous robotics, prosthetics, and intelligent interfaces.

Chinese Journal of Environmental Engineering2026DOI: 10.12030/j.cjee.202510060

Removal Efficiency of Emerging Contaminants in Wastewater Treatment Plant Effluent by Gravel-Based Constructed Wetlands

Wastewater treatment plant (WWTP) effluent is a significant pathway for emerging contaminants (ECs) to enter natural water bodies. This study investigated the removal of ECs by two field-scale gravel-based constructed wetlands: a horizontal subsurface flow constructed wetland (QL-CW) and a surface flow constructed wetland (BL-CW), both treating actual WWTP effluent. The influence of operation mode and wetland plant type on EC removal was examined. Using liquid chromatography-mass spectrometry, principal component analysis, and ecological risk assessment, the removal efficiencies and mechanisms for various ECs were explored. In QL-CW, biodegradation was more pronounced, particularly via ammonia-oxidizing bacteria co-metabolism, favoring ECs with benzyl, secondary amine, secondary amide, tertiary amide, halogenated, and carboxyl functional groups. In BL-CW, electrostatic attraction and hydrophobic interactions were more significant, with plant and root-microorganism uptake and adsorption playing key roles. Surface flow mode achieved significantly higher removal of antibiotics (45.3% vs. 34.1%) compared to horizontal subsurface flow, while no significant differences were observed for non-antibiotic pharmaceuticals (66.6% vs. 64.4%) and pesticides (49.8% vs. 34.2%). Planting Cyperus alternifolius (windmill grass) was more beneficial for antibiotic removal (43.6% vs. 30.1%) than planting Ipomoea aquatica (water spinach). The wetlands effectively reduced the ecological risks of most ECs to marginal levels. This study provides insights into the deep treatment of ECs in WWTP effluent by constructed wetlands.

Journal of Fuel Chemistry and Technology2026DOI: 10.1016/S1872-5813(26)60653-6

Study on the coke deposition characteristics of hierarchical ZSM-5 zeolites with synergistic regulation of pore structure and temperature in benzene catalysis

Carbon deposition caused by mass transfer limitations is a key challenge for traditional microporous ZSM-5 zeolites in coal tar catalytic cracking. To address this, benzene was used as a model compound. Parent ZSM-5 (NL-ZSM-5) was modified with tetraethylammonium hydroxide (TEAOH) to prepare hierarchical ZSM-5 zeolites with different mesopore sizes. Characterization (XRD, FT-IR, BET, TEM) confirmed successful mesopore introduction via selective desilication while retaining the MFI structure. At TEAOH concentration of 0.4 mol/L (ZSM-5-C), total pore volume increased from 0.24 to 0.43 cm3/g, and Brønsted acid amount increased from 0.28 to 0.67 mmol/g, with improved acid site accessibility. Catalytic experiments and carbon deposition analysis showed that hierarchical pore structure inhibits coking via a synergistic effect of diffusion enhancement and adsorption-site regulation. The coke amount of ZSM-5-C was 4.0%, only one-third of that of NL-ZSM-5 (11.9%). Molecular dynamics simulations confirmed that the diffusion coefficient of benzene in a 3.0 nm mesopore model is an order of magnitude higher than in a 2.0 nm model. Adsorption capacity decreases with increasing mesopore size, shortening residence time. Increasing temperature enhances diffusion but exponentially intensifies surface condensation reactions (Arrhenius effect), which dominates coke formation; hierarchical pores mitigate this negative effect. This research provides a theoretical basis for designing high-efficiency, coke-resistant catalysts for coal tar conversion.

Environmental Chemistry2026DOI: 10.7524/j.issn.0254-6108.2025032006

Sulfhydryl Functionalized Two-Dimensional Ti3C2Tx MXene for Capture of As(III) in Aqueous Solution

A thiol-functionalized Ti3C2Tx (SH-Ti3C2Tx) material was synthesized via chemical bonding of dithiothreitol (DTT) onto Ti3C2Tx MXene for the adsorptive removal of As(III) from water. Characterization by scanning electron microscopy (SEM) and Fourier transform infrared spectroscopy (FTIR) confirmed a typical two-dimensional layered structure with DTT covalently attached. The adsorption of As(III) on SH-Ti3C2Tx followed the Langmuir isotherm model, indicating monolayer adsorption. At pH 7, the maximum adsorption capacity reached 55.6 mg·g−1, which is 2.8 times higher than that of pristine Ti3C2Tx (20 mg·g−1). X-ray photoelectron spectroscopy (XPS) revealed that As(III) uptake primarily occurred via formation of As–S bonds. To enable continuous treatment, SH-Ti3C2Tx was loaded onto melamine sponge via electrostatic interactions to fabricate a flow-through adsorption column (SH-Ti3C2Tx@MS). This column achieved removal efficiencies of 99.5% for both high (100 mg·L−1) and low (100 μg·L−1) As(III) concentrations, reducing effluent As(III) to below the World Health Organization guideline of 10 μg·L−1. The spent column could be regenerated using 1 mol·L−1 NaOH solution, retaining over 80% of its initial removal efficiency after five consecutive adsorption–desorption cycles. The SH-Ti3C2Tx material demonstrates significant potential for efficient and reusable removal of As(III) from contaminated waters.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-025-3965-5

Bioinspired Soft Robots Based on Liquid Crystal Elastomers: From Multimodal Actuation to Functional Integration

Liquid crystal elastomers (LCEs) have emerged as a promising material platform for soft robotics, effectively integrating programmable molecular orientation with the inherent flexibility of elastomers. This unique combination enables significant, reversible deformations responding to external stimuli, including heat, light, electric, and magnetic fields. Due to these characteristics, LCEs serve as an ideal material system for bridging biological principles with engineered soft robotic applications, enabling the development of adaptive and multifunctional systems with enhanced biomimetic capabilities. However, the mechanisms of bioinspired motion and the effective integration of biomimetic functions in LCE-based robots remain insufficiently explored. This review systematically examines recent advances in LCE-based biomimetic soft robots, focusing on multimodal actuation strategies, including contraction, crawling, rolling, jumping, swimming, and plant-inspired motions. It highlights integrated functional enhancements achieved via innovative material compositions, structural designs, and advanced manufacturing techniques. These developments have enabled novel robotic functionalities, including programmable actuation, self-healing and recycling, color morphing and camouflage, and tunable bioinspired surface characteristics.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-025-3983-4

Electrocaloric Devices for Solid-State Refrigeration: Design Strategies and Applications

Refrigeration is essential for modern society, supporting applications from household appliances and industrial manufacturing to microelectronics and biopharmaceutical cold chains. Conventional refrigeration technologies are constrained by environmental impact and low energy efficiency, emphasizing the importance of developing sustainable alternatives. Solid-state caloric refrigeration, particularly electrocaloric (EC) devices, offers a promising route owing to their high cooling efficiency, rapid electric-field-driven response, and potential for miniaturization. Significant progress has been achieved in various EC device configurations. However, EC devices still face challenges in achieving large temperature spans, high cooling power, and effective integration for specific applications. This review systematically summarizes these developments, focusing on device design and performance enhancement. It elucidates the fundamental and shared design strategies, classifies EC devices into fluid-based heat-transfer type, solid-based heat-transfer type, and thermal-resistance-modulated heat-switch architectures, and analyzes representative device structures, performance metrics, and application scenarios. Finally, energy-recovery strategies and future optimization directions toward more efficient EC systems are discussed. This work provides a comprehensive reference for the design innovation and practical implementation of EC-based solid-state refrigeration technologies.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-025-3966-0

Zn dilution-directed synthesis of Pt nanoclusters on porous nickel-carbon microspheres for hydrogen evolution

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 Materials2026DOI: 10.1007/s40843-025-3950-x

N-vacancy engineering Zn single-atom site boosts efficient photosynthesis of hydrogen peroxide

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 Materials2026DOI: 10.1007/s40843-025-3920-1

Transparent oxyhalide glass-ceramic scintillators containing lead-free chloride perovskite nanocrystals for high-resolution and stable X-ray imaging

Lead-free halide perovskites are promising scintillators due to strong X-ray attenuation and high internal quantum efficiency (IQE), but their application is hindered by moisture sensitivity. Here, CsSrCl3:Eu2+ nanocrystals were grown in situ in a specially designed inorganic glass matrix. By employing [PO4]-modification and controlled crystallization, a transparent CsSrCl3:Eu2+ glass-ceramic (GC) scintillator was obtained, combining high crystallinity (15.9%) with excellent optical transparency (85.3% at 432 nm). The GC exhibits outstanding photoluminescence (PL) performance, including a high IQE of 87.6% and superior thermal stability (74% intensity retention at 493 K relative to 303 K). Benefiting from the robust glass matrix, the GC retains 99% of its initial PL intensity after 14 days of water immersion. Under X-ray excitation, it shows blue X-ray excited luminescence (XEL), with peak and integrated intensities reaching 117% and 25.1% of those of Bi4Ge3O12 crystal, respectively. The scintillator achieves a high spatial resolution of 20 lp mm−1 and an X-ray detection limit of 3.7 μGy s−1. Furthermore, it demonstrates exceptional operational stability in humid environments, maintaining clear X-ray image contrast even after 48 h of water submersion. This study provides an effective strategy for stabilizing hygroscopic halide scintillators in a durable [PO4]-modified fluoroaluminate glass matrix and demonstrates the potential of CsSrCl3:Eu2+ GC for high-resolution and stable X-ray imaging.

Chinese Journal of Environmental Engineering2026DOI: 10.12030/j.cjee.202512031

Adsorption Performance and Mechanism of Iron-Modified Sugarcane Bagasse Biochar for Amoxicillin in Aqueous Solution

The overuse of antibiotics has led to residual amoxicillin (AMX) in aquatic environments, promoting the spread of antibiotic resistance genes (ARGs) and threatening ecological safety. In this study, magnetic iron-modified biochar (Fe-BC) was prepared from agricultural waste sugarcane bagasse via FeCl3·6H2O impregnation and oxygen-limited pyrolysis. The adsorption performance and mechanism of Fe-BC for AMX were systematically investigated. Under conditions of 25 °C, pH 6, and initial AMX concentration of 50 mg·L−1, the adsorption capacity reached 32.61 mg·g−1. Characterization of Fe-BC before and after adsorption, combined with adsorption kinetics, isotherms, and thermodynamic analyses, revealed that adsorption primarily relied on oxygen-containing functional groups. The mechanisms included pore filling, electrostatic interaction, hydrogen bonding, complexation, and π–π interaction. After six thermal regeneration cycles, the removal efficiency of AMX remained above 76%. The specific surface area of Fe-BC increased from 279.20 m2·g−1 to 481.42 m2·g−1, an enhancement of approximately 72.4%. These results provide a technical reference for the resource utilization of agricultural waste and cost-effective treatment of antibiotic-containing wastewater in rural decentralized areas.

Journal of Fuel Chemistry and Technology2026DOI: 10.1016/S1872-5813(26)60656-1

Construction of Calcium-Manganese Composite Desulfurizer for Synergistic Removal of SO2/Hg0

Under the carbon neutrality strategy, biomass boilers have emerged as key facilities for renewable energy utilization, yet are characterized by low-concentration SO2 emissions. Ca-based dry desulfurization presents a promising technology for biomass boiler flue gas purification due to its compact structure, low capital investment and simple operation and maintenance. However, it is generally limited by the low adsorbent utilization and insufficient desulfurization efficiency. Herein, this study developed a novel Ca-Mn composite adsorbent through a synergistic strategy integrating F127 surfactant to optimize dispersion and Mn loading to enhance oxidation efficiency. The resulting adsorbent not only significantly increased the breakthrough sulfur capacity of the Ca-based material but also markedly improved the synergistic removal of Hg0. It was demonstrated that the introduction of Mn elements and F127 effectively suppressed the agglomeration of Ca(OH)2 crystallites and induced an oxygen vacancy-rich structure, while simultaneously optimizing the pore structure of the adsorbent. The modified adsorbent exhibited the enlarged specific surface area and pore volume, which favored to enhance the reaction mass transfer and effectively prevent the pore blockage and coverage of active sites by desulfurization products. The Mn sites and oxygen vacancies formed catalytic centers, which not only accelerated the desulfurization reaction by promoting SO2 oxidation but also enabled the adsorbent to couple with Hg0 catalytic oxidation functionality. Consequently, the simultaneous removal of SO2 and Hg0 was significantly enhanced on the Ca-Mn composite adsorbent.

Environmental Chemistry2026DOI: 10.7524/j.issn.0254-6108.2026030601

Network Toxicology and Molecular Dynamics Simulation Elucidate Bisphenol A-Induced Neurotoxicity in SVGP12 Astrocytes: Mechanistic Insights and Risk Assessment for Chronic Neurodegenerative Diseases

Bisphenol A (BPA), a high-volume industrial chemical, is implicated in neurotoxicity and chronic neurodegenerative diseases. This study integrates network toxicology, molecular docking, and molecular dynamics simulations to systematically delineate the common mechanisms linking BPA to Alzheimer's disease (AD), Parkinson's disease (PD), and Huntington's disease (HD). Using the human astrocyte cell line SVGP12 as an in vitro model, we identified six key toxic functional proteins—TP53, HSP90AA1, HSP90AB1, INS, BCL2, and AKT1—that mediate BPA's effects across these diseases, with BCL2 emerging as the most central node. Experimental validation demonstrated that BPA induces oxidative stress and cell cycle arrest, suppresses the INS-AKT1-BCL2 anti-apoptotic pathway, and activates the TP53-HSP90 pro-apoptotic pathway, culminating in mitochondrial apoptosis of astrocytes and disruption of neural microenvironment homeostasis. These findings reveal a convergent mechanism by which BPA accelerates neurodegeneration, filling a critical gap in understanding BPA's role in AD, PD, and HD. The study provides a novel theoretical framework and experimental evidence for BPA neurotoxicity risk assessment and informs preventive and therapeutic strategies for BPA-related neurodegenerative disorders.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-025-3999-x

Dual-Defect Engineering in Halide Nanocrystals Enables Synergistic Photochromism and Persistent Luminescence for X-Ray Colorimetric Imaging and Dynamic Anti-Counterfeiting

The integration of photochromism (PhCh) and persistent luminescence (PersL) into a single material remains a formidable challenge due to the complex role of defects in modulating optical properties. Here, we employ structurally simple CsX (X = Cl, Br) nanocrystals (NCs) as a model system to elucidate the relationship between defects and optical behaviors. We demonstrate that CsX NCs accommodate two distinct types of chlorine vacancy defects upon X-ray irradiation: intrinsic vacancies from synthesis and X-ray-induced vacancies. This dual-defect engineering enables reversible blue coloration under X-ray irradiation (20–70 kV), attributed to recoverable chlorine vacancies that are rapidly eliminated by visible light within 30 s. The photochromic behavior exhibits excellent cycling stability with a color difference (ΔRL1) of 56.9% and a recovery rate (ΔRL2) of 98.1%. Furthermore, Br− incorporation deepens the energy level of intrinsic chlorine vacancies from 0.47–0.71 eV to 0.83 eV, resulting in intense persistent luminescence lasting over 30 minutes. These dual-mode PhCh–PersL characteristics position CsX NCs as promising candidates for X-ray colorimetric imaging and dynamic anti-counterfeiting applications. Our findings establish a defect-oriented design principle extendable to other halide systems, advancing the development of multifunctional photonic materials.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-026-4158-6

Manipulating Large Luminescent Shift from Red to Near-Infrared by Pressure via Charge-Transfer States in Covalent Organic Frameworks

Near-infrared piezochromic materials exhibiting luminescence responses are critical for mechanical sensors and storage devices. Covalent organic frameworks (COFs), as crystalline porous materials, combine structural adaptability with tunable photophysical properties, yet their piezochromic applications remain underexplored. Here, we report a series of donor-acceptor structured two-dimensional COFs (2D COFs) with bright red emission, all showing pronounced red-shifts spanning red to near-infrared regions. Notably, Py-BO-COF exhibits the largest piezochromic shift of 187 nm with a high sensitivity of 44.52 nm GPa−1, significantly surpassing Py-BT-COF, TPE-BO-COF, and most reported COF/MOF systems. Py-BO-COF also demonstrates fully reversible and repeatable emission switching over multiple cycles, maintaining excellent linearity without degradation. In situ spectroscopic analyses and theoretical simulations reveal that variations in piezochromic rates arise from differences in charge-transfer (CT) processes, while the pronounced red-shift in Py-BO-COF is associated with reduced interlayer distance and enhanced coplanarity. This study systematically establishes the structure-property relationship in piezochromic 2D COFs, offering strategic guidance for designing highly sensitive and reversible pressure-responsive materials, thereby advancing smart piezochromic systems.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-025-4004-3

Boosting oxygen evolution through asymmetric CoIII–O–MoV motif-modulated spinel active sites

The development of efficient and stable oxygen evolution reaction (OER) electrocatalysts is critical for clean energy technologies, yet conventional cobalt-based spinel catalysts often suffer from insufficient activity and structural instability under operating conditions. To address these challenges, this study proposes and constructs a cation-ordered spinel-like catalyst (HVI Metal-CoMoO4/NF). The unique crystalline framework induces significant Jahn-Teller distortion and pre-stabilizes a Co2+/Co3+ mixed-valence state at the cobalt active centers via asymmetric Co–O–Mo bridges, effectively optimizing bulk charge transport. Electrochemical tests demonstrate that its performance significantly surpasses that of benchmark materials, requiring only an overpotential of 307 mV to drive a current density of 100 mA cm−2 in 1.0 M KOH, with a Tafel slope of 63.13 mV dec−1, maintaining stable operation for over 320 h at high current density. Crucially, our structural and in situ characterization results clearly reveal a stable and well-crystallized reconstruction behavior from the surface into the bulk of the spinel-like pre-catalyst during the OER. This work fundamentally addresses the challenges of disordered reconstruction and unstable active phases in traditional spinel catalysts, providing a paradigm for regulating the dynamic evolution of electrocatalysts through precise structural design.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-026-4124-x

Ambient-Pressure-Dried Aramid Aerogel Fibers with Carbon Nanotube Crosslinking for Integrated Thermal Insulation and Solar Heating Abilities

Aerogel fibers, featuring distinct porous architecture and fiber flexibility, have emerged as leading materials for personal thermal protection; however, complex drying processes and singular thermal insulation mechanisms limit their use in complex environments. Here, aramid nanofiber/carbon nanotube (ANF/CNT) aerogel fibers integrating passive thermal insulation and active solar heating were fabricated via wet-spinning and ambient-pressure drying (APD). The incorporation of CNT and Ca2+ generates abundant physical and chemical crosslinking points, strengthening the nanofiber network skeleton and reducing structural collapse during APD to only 8.9% shrinkage. The resulting ANF/CNT aerogel textiles exhibit low thermal conductivity of 33.8–40.4 mW/(m K) and thermal insulation capability from −196 to 400 °C. The photothermal effect of CNT enables active solar heating, effectively supplementing passive insulation and allowing survival in extremely cold environments. In real tests, the synergistic effect improved skin temperature by up to 5.9 °C, significantly higher than 1.6 °C from passive insulation alone. These ANF/CNT aerogel fibers combine flexibility, mechanical strength, and flame retardancy, demonstrating promising potential for smart, controllable personal thermal management applications.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-025-4047-0

Facile Construction of VS2@GNSs Composites with 1D/2D Hierarchical Structures for Efficient Electromagnetic Wave Absorption

The proliferation of electronic devices has exacerbated electromagnetic pollution, necessitating advanced electromagnetic wave (EMW) absorbing materials. In this study, VS2 nanorods were uniformly grafted onto graphene nanosheets (GNSs) via a facile ball milling method, constructing 1D/2D hierarchical VS2@GNSs composites with superior EMW absorption properties. The minimal reflection loss (RLmin) reached -49.83 dB at a thickness of 1.83 mm, while an ultra-broad effective absorption bandwidth (EAB) of 6.72 GHz was achieved at 1.96 mm. These performances are attributed to enhanced impedance matching and EMW attenuation capacities. Computer simulation technology (CST) full-wave simulations confirmed remarkable radar cross-section (RCS) suppression, with a reduction value of up to 20.38 dB m2 compared to a metallic substrate. This work provides theoretical and experimental guidance for designing high-performance stealth materials.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-025-4037-1

Electrospray Self-Healing Porous Polymer Microspheres for Multimode Imaging and Combined Photothermal/Chemodynamic Therapy of Nasopharyngeal Carcinoma

Nasopharyngeal carcinoma (NPC) poses a therapeutic challenge due to its anatomical complexity and the limitations of conventional treatments in achieving precise targeting and sufficient efficacy. Here, we report a multifunctional platform based on heat-triggered electrospray self-healing porous poly(lactic-co-glycolic acid) (PLGA) microspheres encapsulating indocyanine green (ICG), sequentially coated with a tannic acid-Fe3+ (TAF) metal-phenolic network and fibronectin (FN) for targeted photothermal/chemodynamic combination therapy. The resulting functional microspheres (PI-TAF@FN) exhibit an average size of 1.9 μm, excellent colloidal stability, heat-induced self-healing performance, and a high photothermal conversion efficiency of 51.4%. These microspheres specifically target NPC cells via FN-mediated integrin recognition, enabling ICG/TAF-mediated photothermal therapy under 808-nm laser irradiation and TAF-mediated chemodynamic therapy, leading to enhanced cancer cell apoptosis in vitro. In a mouse NPC model, the combined photothermo-chemodynamic therapy achieved effective tumor treatment with minimal systemic toxicity. Furthermore, the dual TAF and ICG components allow multimode FN-targeted T1-weighted magnetic resonance/fluorescence/thermal imaging for precision NPC management. This electrospray self-healing porous microsphere platform offers a unique theranostic strategy that can integrate diverse therapeutic and diagnostic components for precision oncology.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-026-4109-2

Ambient Fabrication of Over 19% Efficient Organic Solar Cells via Spontaneous Water-Spreading and Layer-by-Layer Deposition

The fabrication of high-efficiency organic solar cells (OSCs) under ambient conditions remains a formidable challenge due to the sensitivity of active layer morphology to environmental factors. We propose an innovative approach for air-processed devices that combines spontaneous water-spreading film formation with layer-by-layer (LBL) deposition. This method enables the fabrication of donor- and acceptor-dominant bulk heterojunction blend films near the anode and cathode interfacial layers, respectively, optimizing vertical phase separation and enhancing charge transfer efficiency. In the D18:L8-BO system, the device achieves a power conversion efficiency (PCE) of 19.02% with an exceptionally narrow efficiency distribution. Even for devices with an area of 1 cm2, a PCE of 16.56% is attained. After a 1000-hour decay test, the efficiency retains 84.1%. This novel method offers a promising pathway for advancing the industrial application of large-area, highly stable devices with narrow efficiency distribution under ambient conditions.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-026-4223-2

Multifunctional polyoxometalate-based conductive hydrogels for low temperature tolerant, flexible wearable electronics

Flexible wearable electronics require materials that simultaneously exhibit high conductivity, mechanical flexibility, and environmental robustness. Polyoxometalate (POM)-based conductive hydrogels are promising candidates but suffer from poor interfacial compatibility with polymer matrices and severe conductivity loss at subzero temperatures. Here, we report a POM-based proton-conductive hydrogel (PVA/P(SBMA-AM)/PW12/PA, denoted PSAWA) engineered by incorporating zwitterionic sulfobetaine methacrylate (SBMA), phytic acid (PA), and H3PW12O40 (PW12) into a poly(vinyl alcohol)-polyacrylamide dual-network. SBMA enhances PW12 loading and dispersion via an electrostatic–steric synergistic mechanism, while PA cooperates with PW12 to construct low-energy-barrier proton-conduction pathways, enabling fast proton migration even at −40 °C. The resulting PSAWA hydrogel achieves ultrahigh proton conductivities of 2.71 × 10−1 S cm−1 at 25 °C and 1.06 × 10−2 S cm−1 at −40 °C, alongside high stretchability, self-healing capability, antibacterial activity, and biocompatibility. Flexible biosensors and supercapacitors fabricated from PSAWA maintain outstanding performance at −40 °C. This work provides a viable strategy for developing low-temperature-tolerant proton-conductive hydrogels for advanced wearable electronics.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-026-4132-y

Pinning effect mitigating Jahn-Teller distortion of manganese-rich phosphate cathodes in sodium-ion batteries

Manganese-iron-based mixed polyanionic cathodes are promising for sodium-ion batteries (SIBs) due to high energy density and operating voltage, but suffer from Jahn-Teller distortion of Mn3+ that degrades cycling stability. Here, a structural modulation strategy via Mg2+ doping is reported. Electrochemically inert Mg2+ forms stronger chemical bonds, adjusts lattice parameters, and suppresses Jahn-Teller distortion, enhancing structural stability. Mg2+ also widens sodium-ion diffusion channels, improving diffusion kinetics. Additionally, an in-situ three-dimensional carbon nanotube (CNT) conductive network boosts electronic conductivity. The resulting NFMPP-Mg@CNTs cathode delivers a discharge capacity of 126 mAh g−1 at 0.1 C (near theoretical 129 mAh g−1), retains 80% capacity after 3000 cycles at 0.5 C, and achieves an energy density of 401 Wh kg−1, among the highest reported for mixed phosphate systems. Ex-situ XPS and first-principles calculations confirm that Mg2+ resists geometric distortion by enhancing lattice stability and widening Na+ diffusion pathways (migration barrier reduced from 0.566 to 0.398 eV). This work provides a viable route for high-energy, long-life SIB cathodes suitable for large-scale energy storage.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-026-4088-y

Unraveling the bilayer-cooperative transformation mechanism at the α/β-Si3N4 interface via machine-learning simulations

Silicon nitride (Si3N4) is a strong, thermally stable covalent ceramic typically regarded as brittle with limited deformability. Recent experimental and density functional theory (DFT) studies indicate that the α/β interface undergoes a β→α transformation via sliding followed by bond-switching, suggesting a pathway to achieve plasticity, but DFT's spatiotemporal reach prevents a full mechanistic picture. Here, we develop a physics-informed high-accuracy neural network interatomic potential (NNAP) model with DFT-level accuracy for phase transformations and use it to perform large-scale atomistic simulations. NNAP-guided simulations show that structural relaxation during relative sliding between α- and β-phases at the interface triggers pronounced atomic-layer rearrangements and lowers the energy barrier by nearly 60%. We further find that the ensuing phase transformation does not proceed by isolated layer-by-layer switching but instead follows in-plane nucleation and growth mediated by a bilayer cooperative mechanism, which further reduces kinetic barriers and facilitates the transformation. CI-NEB calculations reveal that the bilayer cooperative pathway has an energy barrier of 0.018 eV/Ų, lower than the independent layer-by-layer manner (0.020 eV/Ų), indicating enhanced kinetic accessibility. These results provide new atomistic insights into interface-driven phase transformations in dual-phase Si3N4 and offer guidance for designing more deformable covalent ceramics.