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🏛️ Key Research Academy29 Indexed Works

Tsinghua University

Verified scientific contributions, CAS laboratory outputs, clinical trial papers, and engineering breakthroughs produced by researchers and faculty affiliated with Tsinghua University.

SCIENCE CHINA Materials2026

Efficient Ultranarrow-Band Red Eu³⁺ OLEDs Enabled by Modulated Energy Transfer and Charge Transport

Authors: YE Mingyu, HE Wei, TONG Kaining, LI Zehao, QIU Luhao, WU Chengcheng, CHEN Zuochang, XU Han, KANG Feiyu, WEI Jun, LI Jun, WEI Guodan

Europium(III) complexes offer intrinsically narrow red emission (full-width at half-maximum < 5 nm) that is highly desirable for ultrahigh-definition displays, yet their electroluminescence performance is severely limited by unbalanced charge transport and inefficient energy transfer. This work reports a molecular design strategy that modulates both energy transfer and charge transport in Eu³⁺ OLEDs. The synthesized complex, Cz-Eu, incorporates a carbazole-functionalized ancillary ligand to facilitate host–guest energy transfer and hole transport. The single-crystal structure was deposited (CIF: Cz-Eu-cif.cif) and subjected to PLATON validation, which flagged 3 type-1 alerts (CIF construction/syntax errors), 8 type-2 alerts (possible structural model deficiencies), 12 type-3 alerts (low structure quality), and 4 type-4 alerts (improvement suggestions), with no duplication detected. These crystallographic alerts indicate that the reported structure requires further refinement before it can be considered reliable. Nevertheless, the device metrics demonstrate a promising route: the optimized OLED achieves efficient ultranarrow-band red emission, with the potential for high color purity and reduced power consumption. The findings underscore the critical role of ligand engineering in balancing charge fluxes and fostering efficient energy transfer, providing a viable pathway for next-generation red emitters. However, the structural ambiguities highlighted by the PLATON analysis warrant cautious interpretation of the structure–property relationships and suggest that additional crystallographic and device stability studies are necessary to substantiate the claimed performance.

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SCIENCE CHINA Materials2026

Lattice Distortion Effect in High Entropy Thermoelectric Materials: Mechanisms and Optimization Strategies

Authors: ZHANG Wenyu, LIU Chang, ZHOU Zhifang, LIN Yuan-Hua

The global energy crisis and environmental pollution necessitate efficient recovery and utilization of thermal energy resources such as industrial waste heat. Thermoelectric materials, enabling direct conversion between thermal and electrical energy, offer broad application prospects in waste heat power generation and chip cooling. The energy conversion efficiency is determined by the dimensionless figure of merit, ZT = (S^2σ/κ)T, where S is the Seebeck coefficient, σ is the electrical conductivity, κ is the thermal conductivity, and T is the absolute temperature. Ideal thermoelectric materials require both a high power factor (PF = S^2σ) and low thermal conductivity. However, the strong coupling between electrical and thermal transport parameters makes synergistic optimization challenging. Over the past two decades, strategies such as band engineering, nanostructuring, liquid-like ions, interstitial atoms, phonon softening, and defect engineering have been explored. Among these, entropy engineering has emerged as a novel strategy that achieves synergistic optimization by introducing multiple components to increase configurational entropy. High entropy materials, originating from alloys, are defined as multi-principal element systems with five or more elements in near-equiatomic ratios forming single-phase solid solutions. The molar configurational entropy ΔS_conf = R∑x_i ln x_i, with materials classified as high entropy (ΔS_conf > 1.5R), medium entropy (1R < ΔS_conf < 1.5R), or low entropy (ΔS_conf < 1R). Four core effects are summarized: high entropy effect, lattice distortion effect, sluggish diffusion effect, and cocktail effect. Research has expanded from alloys to oxides, chalcogenides, and half-Heusler compounds. This review systematically summarizes the mechanisms by which lattice distortion in high entropy materials affects electrical and thermal transport, and discusses optimization strategies for thermoelectric performance.

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SCIENCE CHINA Materials2026

Enhanced built-in electric field by asymmetric Mo-doped BiVO4 for photoelectrocatalytic detoxification of ofloxacin in hyposaline wastewater

Authors: Yuxin Liao, Yiming Tang, Mufeng Yu, Jing Wang, Meichi Chong, Yuan Teng, Shujie Zhou, Junshan Li, Yongfa Zhu

Photoelectrocatalytic (PEC) detoxification of ofloxacin in hyposaline wastewater is hindered by weak built-in electric fields (IEF) and rapid charge recombination. Here, we report a crystal dipole engineering strategy using high-valence Mo-doped BiVO4 to enhance IEF and PEC activity. Mo incorporation breaks lattice symmetry, increasing the crystal dipole moment and amplifying IEF to 2.05 times that of pristine BiVO4. This promotes directional carrier migration, improving electron-hole separation efficiency. The optimized 4% Mo-BiVO4 photoanode achieves 96.5% ofloxacin degradation within 60 minutes and maintains 91.9% degradation efficiency in natural lake water containing saline and organic interferents, demonstrating exceptional anti-interference capability. This work provides a strategy for boosting photocatalytic performance through unit-cell dipole engineering, aiming to enhance sustainability in wastewater treatment.

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SCIENCE CHINA Materials2026

Oxygen Vacancy Engineering in Lead-Free Piezoelectric Ceramics for Performance Optimization

Authors: Ze Xu, Till Frömling, Ming Li, Ke Wang

Lead-free piezoelectric ceramics, including potassium sodium niobate (KNN), bismuth sodium titanate (BNT), and barium titanate, are promising alternatives to lead-based counterparts due to environmental regulations. However, their functional properties—piezoelectric coefficient, mechanical quality factor, dielectric loss, Curie temperature, and thermal stability—remain inferior. Oxygen vacancy engineering has emerged as a key strategy to optimize these properties via defect modulation. Oxygen vacancies, prevalent point defects, arise from high-temperature processing, non-stoichiometry, volatile oxide evaporation, or reducing atmospheres. Acceptor doping and post-processing annealing further increase their concentration. These defects influence electrical conduction, piezoelectric/dielectric behavior, and catalytic activity. They exist as lattice vacancies, domain wall vacancies, grain boundary vacancies, and defect dipoles with cation vacancies. Their presence induces lattice distortion, hinders domain wall motion, increases coercive field, and enhances mechanical quality factor via hardening. Defect dipoles align with spontaneous polarization, creating internal bias fields that pin domains, reducing losses. Quantification of oxygen vacancies remains challenging; concentrations below 1 at% in NBT and KNN are difficult to detect. Techniques like XPS have reliability issues. A combination of impedance spectroscopy, XPS/STEM, EPR/PAS is recommended. Defect chemistry modeling, using acceptor doping to fill vacancies, allows inference of non-stoichiometry ranges. For NBT, Bi deficiency of 0.0017–0.0033 and O deficiency of 0.0025–0.0050 were calculated, corresponding to Na0.5Bi0.4967–0.4983TiO3.

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SCIENCE CHINA Materials2026

Blue-emitting ionic multi-resonance emitters for efficient narrowband light-emitting electrochemical cells

Authors: Xiaoyun Liu, Ke Zhang, Ronghao Yang, Nanke Gao, Taiyong Chen, Fangfang Huang, Lei He, Xin Ai, Zhihua Ma, Shiyang Shao

Light-emitting electrochemical cells (LECs) are promising for low-cost, solution-processed display and lighting applications, yet achieving high efficiency and color purity remains challenging. Here, we report two ionic multi-resonance (MR) emitters with narrowband blue emission for high-color-purity LECs. By covalently bonding an imidazolium functional group into a boron/nitrogen-doped polycyclic skeleton, the emitters retain the narrowband emission and high photoluminescence quantum yield (PLQY) of the MR core while gaining ionic character. The design exploits two types of nitrogen atoms in the imidazolium unit: the pyrrolic N at the 1-position forms a para-B-π-N linkage, elevating excited-state energy levels and blue-shifting emission; the pyridinic N at the 3-position provides a quaternization site, yielding intrinsically ionic emitters compatible with ionic hosts. The emitters exhibit blue emission with narrow full-width at half-maximum of 26–27 nm and high PLQYs of 95%–97% in solid-state films. LECs based on these emitters achieve narrowband blue electroluminescence with CIE coordinates of (0.12, 0.26) and a maximum external quantum efficiency (EQE) of 4.6%, representing the first narrowband blue LECs based on intrinsically ionic MR emitters. This work demonstrates a viable molecular design strategy for high-color-purity LECs, addressing the long-standing trade-off between efficiency and color purity in this technology.

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SCIENCE CHINA Materials2026

Protonation-Mediated Multifunctional Silk Fibroin Hydrogel Adhesives for Epidermal Interface Sensing

Authors: CAO Yucheng, LI Haopeng, LIU Changyi, LI Xiaohui, FU Fanfan, YU Jing

Silk fibroin (SF)-based hydrogels are promising for biological interfaces, yet achieving multifunctionality—mechanical robustness, adhesion, conductivity, and stability—often requires chemical modification that compromises biocompatibility. Here, we report a protonation-mediated SF/polyvinyl alcohol (PVA) hydrogel adhesive that retains natural silk properties while gaining tailored functionalities. The physically crosslinked network is formed solely via molecular interactions, with phosphoric acid (H3PO4) as a protonation agent to modulate hydrogen bonding, enabling precise control over adhesion, mechanical strength, and electronic conductivity. Glycerol (Gly) is incorporated as a moisturizing agent to enhance long-term stability for skin applications. The resulting hydrogel exhibits excellent performance in monitoring electrophysiological signals, including electrocardiogram (ECG), electromyogram (EMG), and electroencephalogram (EEG), demonstrating its potential as a platform for advanced biological interfaces. This work addresses the critical challenge of developing SF-based hydrogels that combine natural advantages with multifunctionality, offering a promising route for wearable health monitors and human-machine interfaces.

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New Carbon Materials2026

Progress in Iodine Host Materials for Aqueous Zinc-Iodine Batteries: From Physical Confinement, Chemical Adsorption to Electrocatalysis

Authors: DONG Tianyi, SHI Huifa, ZHANG Fan, DONG Chunwei, ZHU Xiaoyang, LAN Hongbo, HUANG Zhenghong

Aqueous zinc-iodine (Zn-I2) batteries are promising for large-scale energy storage due to their intrinsic safety, low cost, and high theoretical capacity (211 mAh g−1 for iodine). However, their practical application is hindered by the poor electronic conductivity of iodine, sluggish redox kinetics, and the shuttle effect of polyiodides. This review systematically analyzes the reaction mechanisms of iodine cathodes, including two-electron (I−/I2) and multi-electron (I−/I2/I+ and I−/I2/I+/IO3−) pathways, and identifies key bottlenecks. It then comprehensively summarizes recent advances in iodine host materials, categorized into three strategies: physical confinement, chemical adsorption, and electrocatalysis. Representative host materials such as porous carbons, covalent organic frameworks (COFs), porous aromatic frameworks (PAFs), polymers, MXenes, and Prussian blue analogs (PBAs) are discussed, with emphasis on the structure–performance relationships. The review highlights that heteroatom doping (e.g., nitrogen) enhances chemical adsorption of iodine species, while single-atom catalysts (e.g., Co, Zn) provide electrocatalytic sites that accelerate conversion kinetics. Finally, future research directions are proposed, including exploration of multi-electron systems, mechanistic elucidation of iodine conversion, development of advanced host materials, and optimization of zinc anodes, to accelerate the commercialization of Zn-I2 batteries.

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New Carbon Materials2026

Revealing Abnormal Micro- and Meso-Structure Evolution Mechanism of Porous Pyrolytic Carbon in TRISO Coated Fuel Particles under High-Temperature Treatment

Authors: Lei Jinhong, Yang Xu, Cheng Xing, Yang Hui, Zhang Kaihong, Yu Hao, Liu Xiaoxue, Zhao Hongsheng, Liu Bing

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.

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Environmental Chemistry2026

Optimizing the Efficiency of Water Pollution Tracing Based on Three-Dimensional Fluorescence Spectra Extracted from Characteristic Excitation Wavelengths

Authors: ZHAO Yuan, TANG Qi, KUANG Litao, JIN Meng, LAN Yaqiong, XU Cancan, LIU Rui

Traditional excitation-emission matrix (EEM) fluorescence spectroscopy suffers from prolonged scanning times, data redundancy, high instrument cost, and bulkiness, hindering rapid on-site water pollution source tracing. This study proposes a novel classification method combining fixed characteristic excitation wavelength scanning with support vector machine (SVM) to enhance efficiency. A total of 180 EEM samples were collected from six pollution source categories: chemical fiber dyeing and finishing, wool textile dyeing and finishing, leather processing, metal surface processing, papermaking, and domestic sewage. Parallel factor analysis (PARAFAC) identified characteristic fluorescent components and excitation wavelengths. Correlation analysis and feature importance analysis further reduced these to seven characteristic excitation wavelengths. SVM and random forest (RF) models were constructed using both the reduced and original EEM datasets. Results demonstrated that models based on the seven characteristic excitation wavelengths maintained high recognition accuracy while significantly improving efficiency. The SVM model achieved the best performance, with runtime reduced from 243.05 s to 34.56 s (an 86% decrease) and recognition accuracy reaching 94.4%. Precision, recall, and F1-score metrics confirmed the robust performance of SVM with characteristic wavelengths, particularly for metal surface processing wastewater. This study provides an efficient and reliable method for rapid water pollution tracing by simplifying EEM scanning and integrating SVM, offering high application value. Future work will optimize feature selection strategies and explore additional sample categories and model combinations to broaden applicability.

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Journal of Environmental Engineering Technology2026

Pilot-scale Study on Enhanced In-situ Anaerobic Bioremediation of Chlorinated Hydrocarbon-Contaminated Groundwater in a Low-Permeability Bedrock Fracture Zone

Authors: ZHUANG Jianhong, XING Yuquan, LIU Kun, CHEN Lüjun, CHEN Boyang

Chlorinated aliphatic hydrocarbons (CAHs) are prevalent groundwater contaminants at industrial sites in China. This pilot-scale study evaluated in-situ anaerobic bioremediation of CAHs-contaminated groundwater in a low-permeability bedrock fracture zone at depths up to 40 m. A self-developed anaerobic dechlorinating culture (BS-1), containing Dehalococcoides, Desulfitobacterium, and Dehalogenimonas, was injected alongside carbon sources (sodium citrate and emulsified vegetable oil) and nutrients. Pressurized nitrogen gas injection enhanced the distribution of amendments, achieving a radius of influence of 5.0 m. Over 399 days of monitoring, the combined use of slow-release and soluble carbon sources maintained anaerobic conditions (ORP < -100 mV) for over one year, providing sustained electron donors. The emulsified vegetable oil reduced injection frequency and operational costs. The BS-1 culture effectively dechlorinated vinyl chloride, cis-1,2-dichloroethylene, trichloroethylene, and chloroform, achieving removal efficiencies exceeding 95%. At times, groundwater quality met the Class IV standard of GB/T 14848-2017. This study demonstrates a green, economical, and effective solution for CAH-contaminated site remediation, with significant engineering application potential.

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SCIENCE CHINA Materials2026

Heat-Shrinkable Thermoplastic Films Enable Universal Conformal Electronics via Semi-Liquid Metal Circuits

Authors: Kecai Shi, Yuzhe Gu, Yang Li

Conformal electronics that seamlessly adhere to three-dimensional (3D) surfaces are critical for wearable devices, bio-integrated sensing, and human-machine interfaces. However, existing methods—such as in-situ printing on curved surfaces or planar fabrication followed by lamination—struggle with high costs, complex motion control, or poor adhesion on irregular geometries. Here, we highlight a recent breakthrough by Jiang et al. (Nature Electronics, 2026) that employs heat-shrinkable thermoplastic films to achieve precise conformal mapping of electronic circuits onto arbitrary 3D surfaces. The method involves printing a semi-liquid-metal composite ink—comprising silver-coated copper particles dispersed in eutectic gallium-indium alloy (EGaIn)—onto pre-stretched polyvinyl chloride (PVC) films. Upon heating to approximately 70 °C, the film shrinks, generating compressive strain that drapes the circuit onto the target substrate. The composite ink maintains metal-level conductivity (9.5×10^6 S m^-1) and exhibits roughly doubled viscosity relative to neat EGaIn, preventing fracture and agglomeration during shrinkage. A poly(methyl methacrylate) (PMA) interfacial layer ensures stable adhesion. Finite element simulation enables pre-deformation pattern design, accurately predicting post-shrinkage layouts. The process is rapid (~5 s) and simple, successfully conforming to diverse surfaces including ceramics, metals, fruit peels, polytetrafluoroethylene (PTFE), and wet wood, with minimal resistance change. This strategy departs from reliance on intrinsic material stretchability, offering a cost-effective, universal route for conformal electronics with broad application potential in healthcare, environmental sensing, and intelligent interaction.

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Chinese Journal of Environmental Engineering2026

Multi-stage thermally assisted alkali activation for simultaneous self-solidification of multiple heavy metals in lithium slag

Authors: JI Zehua, ZHU Zheng, ZHAO Jian, WANG Dianchang, CHEN Yasong, ZHAO Yunpeng

The rapid expansion of lithium battery industries has elevated lithium resources to strategic importance, yet lithium extraction generates 8–10 tons of slag per ton of lithium salt, with complex heavy metal content and high leaching risks. This study improves conventional alkali activation by employing a composite activator and multi-stage thermal assistance to achieve self-solidification of lithium slag, simultaneously immobilizing multiple heavy metals while producing high-strength materials. Under full slag conditions, the mechanical strength of solidified materials ranged from 3.48 to 8.25 MPa; after optimization, strength increased by 137.07%. Average immobilization rates for various heavy metals rose from 97.26% to 99.77%. In simulated acidic, alkaline, neutral, high-salt, acid rain, and leachate environments, efficient immobilization was maintained, with leachate concentrations below regulatory limits. The improved activator and thermal process reduced structural defects, promoted formation of the key Si-O-Al framework, and ensured structural integrity, enhancing both mechanical strength and heavy metal immobilization. The cost of slag solidification was approximately 185–200 CNY per ton, significantly lower than conventional methods, with low energy consumption, no high-temperature calcination, and reduced equipment and reagent requirements, supporting scalability.

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Chinese Journal of Environmental Engineering2026

Assessment Methodology and Application for Stabilization Process of Aged Municipal Solid Waste Landfills

Authors: LIU Xin, LIANG Jianing, ZHANG Ya, LONG Tao, BAI Hao, YUE Dongbei

Scientific assessment and prediction of the stabilization process in aged municipal solid waste (MSW) landfills are critical for reliable risk evaluation and remediation decision-making. Existing methods often fail under data-scarce conditions and lack temporal predictive capability. This study establishes a 'spatial characterization–temporal prediction' framework to address these gaps. The methodology integrates grid-based sampling, laboratory analysis of biological stability indicators (AT4), and LandGEM model simulations to assess current stabilization states and predict completion timelines. Applied to a landfill in southwest China, results reveal significant spatial heterogeneity in waste stabilization, strongly correlated with waste age and influenced by leachate recirculation of membrane concentrate. None of the landfill zones had reached full stabilization; predicted times to completion were: Zone D (17 years), Zone C (13 years), Zone B (8 years), and Zone A (1 year). Based on these findings, a systematic management strategy is proposed, including zoned gradient management, targeted control of lag zones, and dynamic planning. This study provides a theoretical basis for site-specific management and serves as a reference for similar landfills.

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Chinese Journal of Environmental Engineering2026

Performance and Mechanism of MnO2/γ-Al2O3 for Gaseous Thallium Capture from Cement Kiln Flue Gas

Authors: XING Jiaying, WANG Jiawang, WANG Chunbo, CHEN Jianjun, LI Junhua

Thallium (Tl) is a highly toxic trace heavy metal, posing severe risks to human health and the environment. Cement kilns are significant sources of gaseous Tl emissions, with concentrations up to 25 μg·m−3, which can poison SCR catalysts and cause environmental contamination. This study developed MnO2/γ-Al2O3 adsorbents via wet impregnation with varying Mn loadings (0–15 wt%) to capture gaseous TlCl. Fixed-bed adsorption experiments at 300 °C with 20% O2 revealed that capture capacity initially increased with Mn loading, peaking at 10 wt% MnO2 (10MnO2/γ-Al2O3), then declined at 15 wt%. Characterization (XRD, O2-TPD, H2-TPR) indicated that Mn species enhanced redox properties, oxidizing Tl+ to Tl3+ and immobilizing it on the surface. DFT calculations showed that TlCl forms stronger Al–Cl and Mn–Cl bonds on MnO2/γ-Al2O3 than on γ-Al2O3, with higher adsorption energy and greater charge transfer, corroborating experimental results. The optimal adsorbent, 10MnO2/γ-Al2O3, demonstrates superior Tl capture performance, offering a promising upstream solution for protecting SCR catalysts and reducing atmospheric Tl emissions from cement kilns.

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SCIENCE CHINA Materials2026

Synergistic Top-Down Etching Coupled with In Situ Phase Transition: A Strategy for High-Precision Photolithographic Patterning of Perovskite Single Crystals

Authors: YANG Lan, ZHANG Ning, LI Siqi, LIU Hao, ZHANG Xilin, YU Yang-Yang

Perovskite photolithography, an emerging research frontier, combines the unique properties of perovskite materials with lithographic processes for advanced optoelectronic applications. Currently, bottom-up photolithography is preferred due to perovskites’ intrinsic characteristics, while top-down photolithography offers better compatibility with mature semiconductor manufacturing workflows. In this study, we innovatively propose an integrated technology that merges top-down photolithography with in situ phase-transition strategy. Utilizing non-emissive Cs4PbBr6 perovskite single crystals (SCs) as both structural templates and reaction sources, we achieve spatially selective patterning by precise wet and dry etching, followed by inductively coupled plasma (ICP)-induced Cs4PbBr6 to CsPbBr3 phase transition. This process facilitates the direct fabrication of highly emissive CsPbBr3/Cs4PbBr6 microstructure patterns inside Cs4PbBr6 SCs. Such a synergistic approach simplifies perovskite photolithography procedures and enables rapid, large-scale manufacturability. Furthermore, its integration with machine learning optimization algorithms showcases promising application potential in intelligent anti-counterfeiting. This novel approach, integrating perovskite SCs homologous substrate with customized photolithography, provides a new strategy for fabricating high-performance perovskite optoelectronic devices and is expected to promote technological advancement.

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Chinese Journal of Environmental Engineering2026

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

Authors: HUANG Yangrui, CHEN Yasong, ZHAO Yunpeng, ZHAO Jian, JI Zehua, LIU Huijuan

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.

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Journal of Environmental Engineering Technology2026

Global Warming Potential Analysis of Air Pollution Control Processes in Municipal Solid Waste Incineration under Ultra-Low Emission Standards

Authors: WEI Junxiao, WEI Zeng, ZHANG Jiangwei, ZHANG Lei, LIU Jianguo, LI Huan

This study evaluates the global warming potential (GWP) of three typical air pollution control device (APCD) configurations in municipal solid waste (MSW) incineration under ultra-low emission standards. The configurations are APCD1 (SNCR+SDS+DS+ACI+FF), APCD2 (SNCR+SDS+DS+ACI+FF+SCR+WS), and APCD3 (SNCR+SDS+DS+ACI+FF+WS+SCR). Life cycle assessment (LCA) was applied to quantify GWP. Results indicate that APCD3 exhibits the highest GWP due to increased electricity consumption, yet it achieves the lowest pollutant emissions among the three. APCD1 shows the highest NOx emissions, contributing significantly to GWP, and requires technological upgrades. APCD2 consumes more resources but does not proportionally reduce emissions, suggesting inefficiencies. Electricity consumption is the dominant factor influencing GWP across all processes; reducing electricity use and improving energy efficiency are critical for mitigating environmental impact. The study recommends further research on CO2 reduction strategies and adoption of more efficient DeNOx technologies to align MSW incineration with ultra-low emission and low-carbon goals.

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SCIENCE CHINA Materials2026

On-demand formation of ordered silver nanowire micromesh electrodes via rubber surface pressure modulation

Authors: Li Zhan, Jikai Yao, Ziyi Dai, Zhiqiang Liu, Zimiao Chen, Yu Wang, Weidong Qin, Kai Qian

Flexible transparent electrodes are vital for next-generation electronics, but conventional silver nanowire (AgNW) networks suffer from non-uniform current and “hot spots” due to their random arrangement. To address this, we present a facile rubber pressure treatment that enables the controlled self-assembly of ordered AgNW micromesh (Ag NMs) on hydrophilic surfaces. This simple physical treatment simultaneously modifies surface energy and topography through molecular chain transfer from the rubber, creating optimal wetting conditions for coffee-ring assembly. This dual modification transforms droplet evaporation from constant contact angle to constant contact radius mode, enabling the universal fabrication of well-defined Ag NMs on diverse substrates like glass, polymers, and even curved surfaces. The resulting Ag NMs/colorless polyimide (CPI) electrodes (2 cm × 2 cm, ~30 Ω/sq), fabricated via single-step transfer and embedding, demonstrate desirable uniform sheet resistance distribution (<5% variation), outstanding mechanical durability, and environmental stability. These electrodes exhibit superior performance in practical applications, including stable electrical heating (159 ± 3°C at 8 V) with uniform temperature distribution and excellent electromagnetic interference (EMI) shielding (26.4 dB), while maintaining high optical transparency (~78%). This scalable approach offers a promising platform for advanced flexible electronics.

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Chinese Journal of Environmental Engineering2026

Empowering a Chinese-Characteristic Waste Classification Model with Mid-End Intelligent Sorting

Authors: JIANG Zixuan, WEN Zongguo, HU Yupeng, WU Jianyang, WU Jiancheng, ZHANG Liping

Given China's escalating municipal solid waste (MSW) generation and the limitations of current classification schemes, this study proposes a novel waste classification model centered on mid-end intelligent sorting technology. The approach integrates targeted pretreatment with multimodal visual recognition and robotic grasping to efficiently sort complex household waste, while compact equipment innovations adapt to the low-value characteristics of recyclables. An engineering demonstration case shows that the technology can effectively recover low-value recyclables comprising 15%–30% of mixed MSW. If applied at 5% of a case city's waste transfer stations, approximately 5×10^4 t of recyclables could be sorted annually. Preliminary estimates indicate a 20% return on investment for operators at an 80 t·d−1 scale. The study demonstrates that mid-end intelligent sorting offers a technically feasible and economically sustainable solution to reduce fiscal expenditure on waste classification while improving efficiency.

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Chinese Journal of Environmental Engineering2026

Electrocatalytic Degradation of Phenol by Sn-Sb Co-doped Ti/SnO2 Electrode: Performance and Mechanism

Authors: XIE Haoyu, WANG Tianyu, LI Yanhong, LIU Ruiping

To optimize the anode structure of Ti/SnO2-based electrodes in electrochemical advanced oxidation processes (EAOPs) and enhance their electrocatalytic activity and stability, Sn-Sb co-doped Ti/SnO2 electrodes were fabricated via a sol-gel method. The degradation performance and mechanism were evaluated using phenol as a model pollutant. Three electrodes were prepared with different Sn/Sb molar ratios: Ti/SnO2 (10:0), Ti/Sb (0:10), and Ti/SnO2-Sb (9:1). Characterization by XRD, SEM, and electrochemical tests revealed that the Sn-Sb co-doped electrode exhibited a dense surface, higher oxygen evolution potential (OEP), larger electrochemically active surface area, and lower charge transfer resistance compared to single-doped counterparts. In constant-current electrolysis experiments (20 mA·cm−2, pH=5, 0.1 mol·L−1 Na2SO4), the co-doped electrode achieved superior phenol and TOC removal efficiencies and higher apparent rate constants, with the lowest specific energy consumption per unit TOC removal. Radical quenching and intermediate analysis indicated that hydroxyl radicals (·OH) were the dominant reactive species. The degradation pathway involved aromatic ring hydroxylation, ring opening, and further mineralization of short-chain carboxylic acids. Sn-Sb co-doping enhanced the generation of ·OH by increasing surface adsorbed oxygen and defect site density. This synergistic doping strategy significantly improved the electrocatalytic activity and service life of Ti/SnO2-based anodes, providing a basis for the rational design of anode materials for EAOPs in treating refractory organic wastewater.

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Chinese Journal of Environmental Engineering2026

Continuous Manufacturing Process Design of Solid-Waste-Based Ozone Catalysts and Their Long-Term Performance Study

Authors: HUANG Yanli, LI Yanhong, JI Zehua, et al.

The high cost of catalysts is a critical barrier to the upgrading and cost reduction of catalytic ozonation technology. This study developed a low-cost, long-life Fe–Mn-based ozone catalyst (FMG) derived from solid wastes (red mud and blast-furnace slag), leveraging iron and manganese components to construct dual active centers. A continuous manufacturing process was achieved by integrating alkali-activated cementitious reactions with disc pelletization via a cascade spray-coating and multi-stage curing technique. Under optimal conditions (ozone dosage 3.5 mg·L−1), the catalyst achieved 81.81% total organic carbon (TOC) removal of phenol solution within 60 min, retaining 87.27% of its initial activity after 15 reuse cycles. Long-term continuous-flow tests over 60 days demonstrated stable TOC removal between 69.44% and 75.46%. The production cost of FMG was 1,351.44 CNY·t−1, and the unit TOC removal cost was only 0.06 CNY·(g TOC)−1, representing a 78.69%–86.85% reduction compared to commercial catalysts (0.30–0.48 CNY·(g TOC)−1). This work provides a theoretical and technical foundation for cost-effective catalytic ozonation and high-value conversion of bulk solid wastes.

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Journal of Environmental Engineering Technology2026

Design and Implementation of an Energy-Saving Onsite Thermal Treatment System for Hazardous Medical Organic Waste Liquid

Authors: XU Kepei, ZHUO Yuqun

This paper presents the design and implementation of an energy-saving onsite thermal treatment system for hazardous medical organic waste liquid. The system integrates automatic control with energy-efficient and eco-friendly operation, enabling immediate treatment at the source and reducing storage and transportation volumes by over 95%. It comprises four modules: waste liquid identification, graded thermal treatment, heat recovery, and tail gas purification. The graded thermal treatment technology effectively processes waste liquids with varying compositions and calorific values. On-site experiments were conducted on four typical medical organic waste liquids over one year. Results demonstrated effective treatment meeting safety and environmental requirements, with dioxin concentrations below 0.1 ng-TEQ/m³ and CO, NOx, and SOx emissions within permissible limits. The system offers economic benefits by eliminating long-distance transport and centralized treatment costs. This approach addresses the limitations of traditional long-chain, manual-intensive disposal methods, which pose significant safety and environmental risks.

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Journal of Environmental Engineering Technology2026

Research Progress on Side-Stream Enhanced Biological Phosphorus Removal Process for Achieving Efficient Phosphorus Removal

Authors: LI Yan, PI Yongrui, ZHANG Congcong

The challenge of limited phosphorus removal efficiency in low-carbon municipal wastewater is addressed by the innovative side-stream enhanced biological phosphorus removal (S2EBPR) process, which has garnered significant attention. Recent research highlights the core mechanism rooted in the metabolic traits of phosphorus accumulating organisms (PAOs), pivotal for effective phosphorus removal. However, conventional enhanced biological phosphorus removal (EBPR) processes face constraints under low C/P conditions, where the scarcity of carbon source weakens PAOs’ competitive edge, directly impeding phosphorus removal efficiency. Consequently, S2EBPR establishes a side-stream sludge fermentation unit, through which anaerobic fermentation conditions are precisely regulated and PAOs’ dominant position in carbon source competition is strengthened, thereby enhancing the enrichment of PAOs and the optimization of their metabolism. This breakthrough not only overcomes the low C/P limitation but also underscores the fundamental advantage of S2EBPR. Furthermore, the discussion delves into the critical operational and environmental parameters influencing its efficacy, offering a foundation for precise process management. Looking ahead, the synergistic development of S2EBPR alongside emerging water treatment technologies holds promise for simultaneously efficient nitrogen and phosphorus removal in wastewater treatment, thereby furnishing technical insights for fostering sustainable resource recycling practices.

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Journal of Environmental Engineering Technology2026

Selection of Water Supply Schemes for Groundwater Defluorination by Electroflocculation in Dispersed Residential Areas

Authors: FENG Jianheng, CHEN Mingru, GUO Xu, YU Zhancheng, ZHOU Binlong, ZHOU Lü

Fluoride pollution poses a serious threat to public health worldwide, particularly in dispersed residential areas where high-fluoride groundwater is the primary drinking water source. Electroflocculation-based defluorination is a preferable treatment option, but its environmental and economic impacts vary with the water supply scheme. This study established three schemes: centralized undifferentiated (S1), centralized differentiated (S2), and distributed differentiated (S3). Life cycle environmental impact and life cycle cost assessments were conducted. Results show that S1 has the largest negative environmental impact, with indicators ranging from 1.4 to 6.7 times those of S2 or S3, primarily due to electrode consumption and electricity usage. S3 exhibits the lowest water supply cost, achieving a 62% cost reduction compared to S1. The distributed differentiated scheme (S3) offers both lower life cycle environmental impact and the lowest life cycle cost, making it the most advantageous option for dispersed residential areas. This study provides a systematic basis for selecting optimal water supply schemes, promoting the practical application of electroflocculation defluorination in such regions.

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SCIENCE CHINA Materials2026

Pressure-Driven Laser-Induced Graphene: Transient Pressure-Enhanced Structural Ordering via Femtosecond Laser Irradiation

Authors: JIN Weiye, SUN Huijie, ITO Yusuke, PEI Jiayun, AL-AHMARI Abdulrahman, ALKAHTANI Mohammed, ZHAO Haiyan

Laser-induced graphene (LIG) methods, including photothermal and photochemical approaches, are promising for flexible electronics yet face distinct limitations. Photothermal methods often produce graphene with uncontrolled structural and functional properties, while photochemical methods are restricted to a narrow range of precursors. To address these limitations, we propose a pressure-driven LIG (P-LIG) method that uses transient laser-generated pressure fields as an additional control parameter to improve graphene quality. An integrated framework combining ultrafast pump–probe interferometric imaging, large-scale molecular dynamics (MD) simulations, and explainable artificial intelligence (XAI) was developed to investigate this approach. Time-resolved measurements reveal the generation of transient pressure fields during femtosecond laser irradiation of polyimide films, confirming pressure as an intrinsic feature of the process. MD simulations under controlled pressure conditions demonstrate that pressure promotes the nucleation and stacking of graphene layers, resulting in more continuous and planar graphitic networks. XAI analysis quantitatively identifies the important contributions of pressure. These results confirm that the transient pressure introduced by the P-LIG method plays a key role in promoting more ordered, continuous, and planar graphene networks, and enhancing structural integrity and material quality beyond traditional methods. This provides a practical pathway for improving the performance and reliability of LIG-based flexible electronic devices.

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SCIENCE CHINA Materials2026

Developing flexible BaTiO3-based ceramic memristors through entropy engineering

Authors: Qing Wang, Chi Zhang, Chang Liu, Rongzhen Gao, Lvye Dou, Yuan-Hua Lin

Flexible memristors are pivotal for advancing neuromorphic computing in wearable electronics, yet the intrinsic brittleness of inorganic oxides poses a critical challenge. Here, we employ an entropy-engineering strategy to control the amorphization of oxide compositions, yielding a precisely controlled crystalline/amorphous microstructure in a BaTi0.25Sn0.25Hf0.25Zr0.25O3 thin film. This film withstands bending angles up to 180°, enabling an Au/BaTi0.25Sn0.25Hf0.25Zr0.25O3/ITO/Mica device that functions as a memristor. Entropy engineering increases oxygen vacancy concentration, imparting stable resistive switching behavior under both flat and bent conditions. The device exhibits exceptional endurance and reproducibility over multiple bending cycles, demonstrating a significant strategy for advancing flexible memristor technologies and holding promise for next-generation high-performance flexible electronics.

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SCIENCE CHINA Materials2026

A Hetero-Cross-Linking Strategy for Versatile Artificial Muscles with Superior Electromechanical Sensitivity

Authors: Hao Xu, Zhekai Jin, Chao Wang

Dielectric elastomer actuators (DEAs) are promising artificial muscle technologies due to their large actuation strains, high energy density, and fast response. However, their practical application is hindered by a trade-off between increasing the relative dielectric constant (εr) and decreasing the Young's modulus (Y), which limits electromechanical sensitivity (εr/Y) to below 110 MPa⁻¹. Here, we report a hetero-cross-linking strategy to fabricate a semiseparated biphasic bicontinuous dielectric elastomer (SBE) using two commercial silicone elastomers: Elastosil P7676 (mechanical phase, M-phase) and Sylgard 170 (dielectric phase, D-phase). The M-phase provides an ultralow Young's modulus (~10 kPa), while the D-phase offers a high dielectric constant (3.6). With only 10% D-phase content (SBE-1), the material achieves a record-high electromechanical sensitivity of 360 MPa⁻¹. Under an electric field of 35 V μm⁻¹ without prestretching, SBE-1 exhibits a 90% area strain, significantly outperforming pure phases and previously reported DEAs. The interpenetrating phase structure also enhances breakdown strength. SBE-based artificial muscles demonstrate large displacement at high frequencies, achieving a power density of 2250 W kg⁻¹ at resonance (>200 Hz), surpassing natural muscle and prior DEA artificial muscles. A human-like robotic arm with one rotational joint and four pure-shear SBE-based artificial muscles was developed, capable of extending and bending actions. This work provides a versatile strategy for high-performance DEAs, advancing soft robotics applications.

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SCIENCE CHINA Materials2026

AI for Electrocatalytic Energy Conversion: From Atoms to Industry

Authors: Xuan Yang, Nan Wang, Zhaoxin Guo, Chenfei Xu, Xiaoyang Wang, Jinfeng Zhang, Pengfei Huang, Yanan Chen

Achieving carbon neutralization relies heavily on green hydrogen and electrochemical carbon-nitrogen cycles. However, the complexity of these systems and the cost of traditional Edisonian trial-and-error methods hinder rapid progress. Artificial intelligence (AI) has emerged as a transformative tool, enabling high-throughput data processing and dynamic adaptation. This review surveys the landscape of AI-driven electrochemistry, bridging the gap from atomic-scale design to industrial-scale implementation. Specifically, we focus on three areas: atomic structure-function decoding, fully automated “self-driving” laboratories, and macro-scale simulations for device durability. Furthermore, we elucidate the critical challenges in integrating AI with materials science. By mapping current trends and future directions, this work aims to unlock the full transformative potential of AI in next-generation energy storage and conversion.

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SCIENCE CHINA Materials2026

Hydrogen-bond engineered supramolecular bismuth halides for flexible X-ray imaging without geometric distortion

Authors: ZHANG Shiwei, WANG Xu, SUN Jiayi, WANG Lixia, CHANG Yamin, WANG Junfang, PAN Yongle, WANG Hao, YUAN Ziquan, MENG Xiangyue

Flexible X-ray detectors are constrained by the difficulty of producing semiconductor films that simultaneously exhibit uniform morphology, high crystallinity, and mechanical robustness. Here, we introduce a hydrogen-bond engineered supramolecular (HBES) strategy to overcome these limitations in supramolecular bismuth halide clusters (PDBiI5). By incorporating polyacrylic acid (PAA), a dynamic supramolecular network is formed that suppresses the coffee-ring effect during ultrasonic spray-coating via increased solution viscosity and controlled kinetic balance between solvent evaporation and solute diffusion. The HBES approach also modulates crystallization kinetics, extending crystal growth time from 23 to 41 s, yielding densely packed films with enhanced crystallinity and reduced defect states. These improvements lead to superior charge transport: a hole mobility of 2.16 cm2 V−1 s−1 and a mobility-lifetime product of 9.1 × 10−4 cm2 V−1. The resulting X-ray detectors achieve a record sensitivity of 19,009 μC Gyair−1 cm−2 and an ultralow detection limit of 3.35 nGyair s−1, with excellent operational and environmental stability. Leveraging the mechanical robustness from the supramolecular network, we demonstrate the first direct-type flexible X-ray imager, retaining 85% performance after 1000 bending cycles. This imager overcomes geometric distortion and vignetting, maintaining 85% edge photocurrent versus 58% for rigid detectors, enabling clear imaging of curved objects. This work establishes a versatile supramolecular engineering paradigm for high-performance flexible X-ray detection and imaging.

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