SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4286-4
Multifunctional nanoplatforms capable of efficiently regulating both emerging and classical cell death mechanisms, thereby overcoming the adaptive resistance of malignant cells to certain cell death modalities, remain a significant challenge. Herein, we propose a new concept for the self-assembly of zinc-cystine coordination networks on curcumin (Cur) drug nanocrystals (DNCs) to construct Cur@PDA@GOx/Zn-Cys (CPGZC) nanoplatforms, enabling enhanced antitumor therapy through multicomponent synergistic modulation of both newly identified disulfidptosis and classical apoptosis. At tumor site, GOx-mediated glucose depletion reduces nicotinamide adenine dinucleotide phosphate (NADPH) levels, which can impair the intracellular conversion of cystine to cysteine. Combined with the exogenous cystine delivered by CPGZC NPs, rapid intracellular disulfide accumulation strongly activates disulfidptosis. Simultaneously, the reduction in NADPH levels inhibits GSH biosynthesis, augmenting the intracellular ROS levels elicited by Cur DNCs within the CPGZC nanoplatforms. Moreover, the elevated oxidative stress, in synergy with the excessive Zn2+ introduced, aggravates mitochondrial damage, thereby further amplifying apoptosis. Consequently, the synergistic modulation of disulfidptosis and apoptosis induces a potent antitumor response, as validated by comprehensive in vitro and in vivo investigations. This study opens new avenues for the development of multifunctional nanoplatforms for enhanced cancer therapy through the effective integration of both emerging and classical cell death mechanisms, which may serve as a promising strategy to advance our comprehension of synergistic utilization of various cell death mechanisms and combat with complex cancers.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4452-8
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.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4244-0
Near-infrared perovskite light-emitting diodes (NIR-PeLEDs) suffer from poor operational stability, largely due to interfacial reactions at the electron-transport layer (ETL)/perovskite interface. Here, we introduce a zinc ion (Zn2+)-chelated hybrid ETL derived from a Zn2+-chelated polyethylenimine ethoxylated (PEIE) complex, which partially retains the surface properties of ZnO but exhibits significantly reduced oxygen defects and surface-adsorbed hydroxyl groups. This well-modulated surface promotes perovskite crystallization and mitigates interface-induced deprotonation of organic cations during device operation. Consequently, NIR-PeLEDs employing this hybrid ETL achieve a peak external quantum efficiency (EQE) of 20.1%, a high radiance of 652 W sr-1 m-2, and an exceptional T50 lifetime of 270.7 hours at a high current density of 100 mA cm-2, which is over five times that of devices based on conventional ZnO nanocrystal (NC) ETLs. Our results present an effective ETL strategy for operationally stable NIR-PeLEDs and thoroughly reveal the critical role of regulating interfacial reactions in stabilizing buried interfacial contacts. These findings provide valuable insights for advancing perovskite optoelectronic devices that suffer from interface-induced performance degradation.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4385-1
Self-assembled monolayers (SAMs) are effective hole-selective contacts for inverted perovskite solar cells, but scalable deposition on rough substrates is hindered by molecular aggregation, disordered packing, and incomplete adsorption. We propose a hybrid strategy incorporating 4-(Piperidin-4-yl)butanoic acid hydrochloride (PBACl) into the 4PABCz solution during dip-coating. PBACl suppresses aggregation via hydrogen bonding and ionic interactions, yielding homogeneous coverage and improved wettability. The piperidine and carboxyl groups passivate buried interfacial defects through hydrogen bonding and coordination with perovskites. Small-area cells achieve a champion power conversion efficiency (PCE) of 26.09%, while a 5 cm × 5 cm mini-module (aperture area 14.4 cm²) delivers 23.29% PCE. Encapsulated devices retain 80% of initial PCE after 1350 h maximum power point tracking under continuous illumination. This ion modulation strategy bridges molecular-level interface control with scalable processing, offering a pathway to industrially relevant perovskite photovoltaics.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4192-y
Electrochemical water splitting is pivotal for scalable green hydrogen production, yet its practical deployment hinges on cost-effective electrocatalysts with high activity and durability. This study introduces a low-cost, three-dimensional (3D) nanoporous ZrVFeCoNi material fabricated via chemical dealloying, at merely 0.16% of the cost of Pt. The structure-activity relationship between its microstructure and hydrogen evolution reaction (HER) performance was systematically explored. Lattice defect effects from multiphase intermetallic compounds, combined with multi-metal synergy, optimize H+ adsorption energy and electron transfer kinetics. The 3D nanoporous architecture provides a high electrochemical surface area with abundant active sites, enhancing electrolyte penetration and reducing interfacial mass transfer resistance. Consequently, the ZrVFeCoNi electrode exhibits outstanding HER performance, requiring only a 38 mV overpotential to reach 10 mA cm−2 and maintaining stable operation for 1000 h at 500 mA cm−2. Integrated into a full water electrolyzer (ZrVFeCoNi || IrO2/Ni), the system achieves a cell voltage of 1.60 V at a current density of 400 mA cm−2. Advanced characterization and density functional theory (DFT) calculations reveal that interfacial interactions and charge transfer at heterointerfaces drive catalytic activity, showcasing the potential of 3D nano-structured multiphase intermetallic compounds as high-performance electrocatalysts for green hydrogen systems.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3865-1
Seawater electrolysis (SWE) is a reusable and convenient avenue for producing hydrogen, offering a promising solution to the energy crisis and global warming. However, poor electrolytic efficiency and irreversible corrosion caused by high concentrations of chlorine severely hinder the commercialization of SWE. To address these challenges, numerous strategies have been proposed in recent years, involving theoretical innovations, directional catalyst design, and electrolyser modification. This review provides a systematic summary of the chlorine-related challenges and solutions encountered in SWE. The chlorine-related theoretical knowledge and challenges in SWE systems are first emphasized. Subsequently, multiple anodic chloride suppression strategies are introduced from three aspects: directional regulation of oxygen evolution catalysts, optimization of electrolyte compositions, and ingenious upgrades of electrolytic cells. Finally, future challenges and development directions for large-scale application of SWE technology are explored. This review offers an in-depth analysis of the chlorine-related challenges encountered in the industrialization of SWE, aiming to accelerate the advancement of this technology toward practical applications.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3691-9
Near-infrared (NIR) spectroscopy has significantly advanced NIR light sources, yet creating NIR emitters with optimal luminescence properties, high thermal stability, and adjustable emission peaks remains a critical challenge for future smart NIR devices. Here, we introduce a chemical unit cosubstitution strategy by incorporating Ca2+ and Sn4+ ions into the garnet structure. Through this approach, Y3−yCayGa4.95−ySnyO12:0.05Cr3+ (y = 0–1) phosphors were developed by modulating the A&C ligands, resulting in emission centers ranging from 708 to 768 nm. The modified local environment of Cr3+ accounts for the increased light intensity (2.71 times) and broadening observed. Furthermore, this study investigated the impact of varying Cr3+ concentrations (Y2.6Ca0.4Ga4.6−xSn0.4O12:xCr3+) on the production of high-performance phosphors. Compared with Y3Ga4.93O12:0.07Cr3+, the optimized phosphor exhibited exceptional external quantum efficiency (EQE = 34.96%). The luminescence enhancement is attributed to an increase in radiative transitions caused by octahedral Jahn-Teller distortion, whereas the notable thermal stability (91.3% at 423 K) is attributed to the presence of weak electron-phonon coupling (EPC) and oxygen vacancy (OV) defects. Finally, by combining it with a 450 nm blue LED chip, we constructed a near-infrared phosphor-converted LED (NIR pc-LED) device with superior electroluminescence efficiency (18.8% @ 100 mA), increasing the ultralow quenching rate (< 5% intensity loss after 30 days of operation) and demonstrating remarkable performance in plant lighting applications.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3803-8
The molecular copolymerization of donor-acceptor (D-A) interactions has been effectively utilized to modulate the charge transfer dynamics in polymeric carbon nitride (PCN) photocatalysts. Herein, a D-A configured photocatalyst (TPCN) was constructed by copolymerizing 4,4’,4’’-(1,3,5-triazine-2,4,6-triyl) trianiline (TAPT) as the electron donor with triazine units (electron acceptor). The unique propeller structure of TAPT, combined with the triazine framework, expanded the π-conjugated system and induced a strong built-in electric field (BIEF) across the D-A configuration. Theoretical calculations and transient absorption spectroscopy revealed that this synergistic effect facilitated intramolecular charge separation and widened the range of light absorption, indicating accelerated charge transfer and suppressed recombination in TPCN. The optimized TPCN3 sample exhibited dramatically enhanced photocatalytic H2O2 production (1.74 mmol g−1 h−1), representing a 13.4-fold increase over pristine PCN. Additionally, the TPCN3 sample also exhibited significantly faster degradation kinetics than PCN counterpart toward various emerging contaminants. This work demonstrates a promising strategy for designing efficient metal-free photocatalysts for sustainable H2O2 production and environmental remediation.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3588-2
The rapid evolution of aerospace technology necessitates the development of multi-functional composites that combine light weight, mechanical robustness, thermal protection/insulation, and electromagnetic interference (EMI) shielding. C/SiC porous ceramic composites are promising for thermal protection in hypersonic vehicles. Here, we report a facile strategy to fabricate Cf/SiC composite polymer-derived ceramics (PDCs) via re-pyrolysis of high-energy ball-milled polycarbosilane-vinyltriethoxysilane-graphene oxide (PVG) with Cf/SiC(rGO)p blend interleaves. In-situ generated honeycomb-like cellular structures and non-directional channels reduce density and increase porosity. High-quality SiO2 joints, formed from Si-dangling bonds, strengthen interfacial bonding via a brazing effect, while in-situ SiOC nanowires (SiOCnws) create a hierarchically enhanced network, improving fracture toughness and crack resistance. Multi-scale interfacial/dipole polarization enhances EMI shielding. The optimized Cf(0.2)/SiC(rGO) composite exhibits low density (1.49 g cm−3), high fracture toughness (6.32 MPa m1/2), hardness (7.18 GPa), compressive strength (72.67 MPa), and EMI shielding effectiveness of 58.31 dB. It maintains structural stability under butane blowtorch ablation at ~1300 °C for 3600 s. Porous variants show thermal conductivity of 0.211 W m−1 K−1 with 69.74% porosity. These multi-functional composites are promising for thermal protection systems in aerospace applications.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3615-1
Stretchable electronics are pivotal for bio-integrated devices, soft robotics, and wearables, yet their development is constrained by single-layer architectures that limit integration density and by mechanical mismatch between rigid components and soft substrates, which curtails service life. Here, we introduce a LEGO-like modular assembly strategy to construct multilayer three-dimensional (3D) stretchable electronics. Electronic components (ECs) and self-healing polyurethane (SPU) substrates patterned with liquid metal (LM) circuits serve as the modular blocks. This design simplifies fabrication and markedly enhances 3D integration density. The combination of LM circuits and self-healing elastic substrates enables devices to withstand diverse deformations and to autonomously heal after mechanical damage. Notably, the devices can undergo multiple recycling and reuse cycles without significant performance loss. This methodology offers a new paradigm for advanced flexible electronics, addressing critical bottlenecks in integration density, mechanical robustness, and sustainability.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3635-6
Oxygen anionic redox (OAR) is pivotal for achieving extra lithium storage in high-energy-density Li-ion batteries, yet its activation and stabilization remain challenging. Traditionally, OAR is studied in crystalline layered oxides with ordered frameworks and transition metal (TM)-centered octahedral coordination, where the Li-O-Li configuration is considered a prerequisite for creating unhybridized O 2p states. However, recent findings indicate that the presence of unhybridized O 2p states, rather than a specific configuration, is essential for oxygen activation. This study reports a novel OAR mechanism in an amorphous Li-V-O-F cathode, operating at a moderate voltage of 4.1 V, distinct from conventional Li-O-Li configurations. The cathode, initially crystalline LiVO2.98F0.02 (F2), undergoes amorphization after the first charge-discharge cycle, as evidenced by ex situ XRD, HRTEM, and EXAFS. Resonant inelastic X-ray scattering (RIXS) and X-ray absorption spectroscopy (XAS) reveal that the initial charge involves O-O formal redox without oxidized oxygen features, indicating electron holes are accommodated via O-O interactions. Reversible OAR activity emerges in the second cycle, confirming O-O dimerization in the amorphous phase. Ab initio molecular dynamics (AIMD) simulations further elucidate the mechanism. This work challenges the conventional Li-O-Li paradigm and opens new avenues for designing high-capacity cathode materials through amorphization and tetrahedral coordination.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3630-2
This study demonstrates a dual-interface engineering approach for performance enhancement in perovskite-silicon tandem solar cells. By applying ethylenediamine dihydroiodide (EDAI2) to simultaneously modify both top and bottom interfaces of wide-bandgap perovskite layers, we achieve synergistic defect suppression and charge transport optimization. Time-resolved photoluminescence characterization reveals extended carrier lifetimes and improved spatial homogeneity in dual-modified perovskite films. The optimized single-junction wide-bandgap (>1.66 eV) perovskite solar cells attain a champion efficiency of 22.75% with enhanced operational stability. Implemented in perovskite-silicon tandem configuration, the devices achieve over 31% power conversion efficiency, validating the effectiveness of organic ligand-mediated dual-interface engineering in regulating carrier dynamics and advancing perovskite-based tandem photovoltaics.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3744-9
The high-value utilization of industrial wastes is critically important for environmental protection and sustainable development. In this work, amorphous NaFeP2O7 (NFPO) and NaFeP2O7/rGO (NFPO/rGO) composite are synthesized via a selective chemical precipitation approach, utilizing industrial jarosite residue as the iron source. The sodium storage performance and mechanism of this amorphous NFPO/rGO composite as a novel cathode material for sodium-ion batteries (SIBs) are explored for the first time. The as-synthesized amorphous NFPO/rGO composite exhibits outstanding long-term cycling performance of 79.1 mAh g−1 after 1000 cycles at 0.1 A g−1, while the crystalline NFPO/rGO composite does not work. Galvanostatic intermittent titration technique and in-situ electrochemical impedance spectroscopy analysis demonstrate that the amorphous NFPO/rGO composite has high Na+ diffusivity and fast kinetics. In-situ X-ray diffraction analysis reveals the structure change from amorphous NaFeP2O7 to triclinic Na2FeP2O7 during the first discharge process and then evolves to a highly disordered structure in the subsequent charge/discharge cycles. The present work not only provides an avenue for the high-value utilization of jarosite residue but also offers theoretical guidance for the structural design and development of NaFeP2O7-based cathode materials for SIBs.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3616-8
Negative stiffness (NS) structures exploit multi-stable mechanisms to achieve energy absorption, yet their practical application is limited by material and manufacturing constraints that compromise load-bearing capacity, reusability, and energy absorption efficiency. This study addresses these limitations by employing continuous carbon fiber reinforced thermoplastic polymers (CCFRTP) and three-dimensional (3D) printing to fabricate NS structures with cosine beam cells. A wet twisting method for continuous carbon fiber (CCF) was developed to enhance mechanical properties and elucidate failure behaviors and interfacial adhesion mechanisms. The resulting CCF/PLA/PVDF composites exhibited significant improvements in mechanical properties compared to untreated counterparts, with failure analysis revealing characteristic fiber breakage due to enhanced interfacial adhesion, as opposed to fiber pull-out and irregular fracture in untreated samples. A one-stroke path planning model was used to investigate bistability principles and energy absorption mechanisms. Displacement-controlled loading/unloading experiments assessed energy absorption in both energy-locked and repetitive modes. A dual-unit assembly structure was fabricated to validate the feasibility of a negative stiffness honeycomb structure. Composite layup simulations via Abaqus confirmed the deformation process and energy absorption mechanisms. The findings demonstrate that CCFRTP-based NS structures offer considerable potential for large deformation energy absorption applications in aerospace and naval fields.
Journal of Fuel Chemistry and Technology•2026•DOI: 10.1016/S1872-5813(25)60613-X
This study systematically optimized the preparation of Co-modified Ce/TiO2 catalysts and investigated the effects of preparation method and Co loading on their low-temperature denitrification activity. The sol-gel method with a Co/Ti mass ratio of 0.025 (Ce-Co0.025/TiO2-SG) yielded superior performance compared to impregnation and co-precipitation methods. The catalyst maintained NO conversion above 95% in the 225–350 °C range and exhibited high N2 selectivity. Characterization via BET, XRD, XPS, H2-TPR, and in situ DRIFTS revealed that the enhanced activity was attributed to abundant surface oxygen vacancies, a high proportion of Ce3+ species, and prominent acidic sites. The catalyst followed the Eley-Rideal mechanism, effectively inhibiting nitrate intermediate formation and promoting NO-to-NO2 oxidation. This work provides a reference for developing efficient low-temperature denitrification catalysts for industrial applications such as cement production, which emitted 722,000 tons of NOx in 2020, accounting for 17.3% of industrial emissions.
Environmental Chemistry•2026•DOI: 10.7524/j.issn.0254-6108.2025010402
Vegetable consumption is a well-established pathway for human exposure to per- and polyfluoroalkyl substances (PFAS). These contaminants are absorbed by vegetables through uptake from soil and irrigation water, leading to bioaccumulation within plant tissues and posing potential risks to human health. Therefore, monitoring PFAS concentrations in vegetables is critical for assessing dietary exposure and associated health risks. In this study, a solid-phase extraction (SPE) followed by ultra-high performance liquid chromatography-tandem mass spectrometry (UPLC-MS/MS) method was developed for the determination of 24 PFAS compounds in leafy vegetables, including Shanghai Bok Choy, Cabbage, and Water Spinach. The analytical method, incorporating organic solvent extraction followed by SPE cleanup, was optimized with respect to both extraction solvent and SPE sorbent. Alkaline methanol was used as the extraction solvent, and PFAS in vegetables were extracted via vortex-assisted extraction. Tandem mass spectrometry was used for detection in multiple reaction monitoring mode, and quantification was performed by internal standard method. Under optimized conditions, at a spiking level of 2 ng, recoveries ranged from 50.0% to 120.8% with relative standard deviations (RSD) between 1.0% and 26%. Calibration curves showed good linearity with correlation coefficients (r) greater than 0.99. Limits of detection (LOD, S/N=3) were between 0.002 and 0.103 ng·g−1, and limits of quantification (LOQ, S/N=10) were between 0.007 and 0.343 ng·g−1. The method was applied to real samples, detecting 20 PFAS, with 10 compounds showing 100% detection frequency. Total PFAS concentrations ranged from 2.92 to 6.83 ng·g−1 dry weight (dw). Perfluorobutanoic acid (PFBA) was the dominant contaminant, with concentrations from 1.18 to 3.74 ng·g−1 dw. The method demonstrates good sensitivity and accuracy, effectively identifying and quantifying multiple PFAS, thus providing reliable technical support for monitoring PFAS in vegetables.
Journal of Environmental Engineering Technology•2026•DOI: 10.13205/j.hjgc.202604026
Polycyclic aromatic hydrocarbons (PAHs) are persistent organic pollutants ubiquitously present in soils, posing severe risks to ecosystems and human health. This study synthesized MIL-88A(Fe) via a hydrothermal solvent method and applied it to the photocatalytic degradation of phenanthrene-pyrene (PHE-PYR) composite contaminants in soil, investigating the adsorption-photocatalytic synergy. Results demonstrated that adsorption of PHE-PYR onto MIL-88A(Fe) was dominated by physical and monolayer surface adsorption, with a maximum adsorption capacity of 97.25 mg/kg. This strong adsorption increased pollutant concentration near active sites, accelerating photocatalytic degradation. Under optimal conditions—3% catalyst dosage, 40% soil water content, 60 min visible light irradiation, initial pollutant concentration of 200 mg/kg, and acidic soil—the total degradation efficiency reached 79.20%. Photoelectrochemical characterization revealed significant visible-light response (200–600 nm), a narrow bandgap of 3.04 eV, and favorable band structure facilitating efficient electron-hole separation. Quenching experiments identified superoxide radicals (·O2−) and holes (h+) as primary reactive species. GC-MS analysis of intermediates indicated that PYR undergoes hydroxylation, oxidation, and ring-opening to form PHE, which is further hydroxylated and oxidized, ultimately mineralizing to CO2 and H2O. This work provides an efficient strategy for remediating PAH-contaminated soils.
The Chinese Journal of Process Engineering•2026•DOI: 10.12034/j.issn.1009-606X.225246
The development of efficient catalyst classification technologies is crucial for optimizing fluid catalytic cracking (FCC) and catalytic pyrolysis coupling processes, where distinct particle size distributions are required for different reaction pathways. In this study, a large-scale cold-model experimental platform of a multi-arm vortex separator is established to explore the influence of operating conditions on classification behavior. Systematic experiments are conducted by changing ejection gas velocity (8~20 m/s), inlet particle concentration (30~70 g/m3), and bed linear velocity (0.15~0.25 m/s). The results demonstrate that ejection gas velocity governs classification sharpness by controlling the entrainment of fines within the coarse fraction. The increase in ejection gas velocity enlarges the upward axial gas velocity inside the device, thereby enhancing the entrainment effect on particles near the vortex arm outlets. Increasing the ejection gas velocity from 12 to 16 m/s reduces proportion of fine particles in coarse components from 14% to 12%. The inlet particle concentration imposes competing effects on classification performance: while higher concentrations promote agglomeration and modify turbulence distribution, excessive loading intensifies fine-particle entrainment, thereby diminishing classification selectivity. The system maintains stable pressure drop characteristics under different bed linear velocities, with the pressure drop increasing by maximum of about 15% when the bed linear velocity is raised from 0.15 m/s to 0.25 m/s. Analysis of grade efficiency curves reveals classical S-shaped profiles with cut sizes (dc50) shifting under different operating regimes. Higher particle concentrations reduces dc50, favoring fine-particle removal, while higher ejection gas velocities enlarge dc50, moving the classification boundary toward larger sizes. These findings confirm the synergistic effect of ejection gas velocity and inlet concentration, highlighting that rational parameter matching can simultaneously improve efficiency and selectivity. Beyond the experimental findings, this work emphasizes the broader applicability of multi-arm vortex separators in refining and petrochemical processes. By enabling precise adjustment of particle size distribution, the system offers a promising pathway for enhancing catalyst utilization, extending catalyst lifetime, and facilitating process intensification in coupled FCC-pyrolysis units.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3881-y
One-dimensional (1D) and quasi-1D platinum diselenide (PtSe2) exhibit enhanced quantum confinement and surface effects, leading to distinctive electronic and optical properties. However, efficient synthesis of high-quality quasi-1D PtSe2 with controlled dimensionality and orientation remains challenging. Here, we report the first successful synthesis of quasi-1D PtSe2 via a carrier-gas-assisted chemical vapor deposition (CVD) approach. By optimizing hydrogen concentration, we achieved highly oriented and crystalline quasi-1D PtSe2, which exhibits exceptional thermodynamic stability along the (110) crystal plane. Electrical characterization reveals that 2D few-layer PtSe2 exhibits p-type semiconductor properties, while quasi-1D multilayer PtSe2 displays semimetallic behavior. Due to quantum confinement effects, both materials exhibit similar carrier mobilities. In photodetection at 1550 nm, 2D PtSe2 exhibits conventional positive photoresponse with a maximum responsivity of 97.0 A/W. In contrast, quasi-1D PtSe2 demonstrates unique negative photoresponse, achieving a maximum responsivity of 194.2 A/W, attributed to its semimetallic nature and significant surface traps. Temperature-dependent photoresponse measurements at various power levels further confirm that the negative response originates from a defect-assisted photogating effect, the strength of which exhibits significant temperature dependence under high-power illumination. This work not only fills a gap in the synthesis of 1D PtSe2 but also provides a novel material platform for developing advanced infrared optoelectronic devices.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3470-6
Inkjet printing of two-dimensional transition metal chalcogenides (TMDs) is promising for low-cost, large-scale flexible electronics, yet challenges persist due to poor crystallinity and toxic solvents. Here, we report a green ink formulation using zwitterionic cocamidopropyl betaine (CAB) as a dispersant and surfactant for liquid-phase exfoliation of single-crystalline TMDs in water and isopropanol (IPA). The dispersions contain no additives or binders, enabling direct production of stable (over one month) and concentrated (2 mg/mL) inks for MoS2, MoTe2, WS2, WSe2, and WTe2. Fully-printed MoSe2/CAB humidity sensors exhibit superior sensitivity (ΔI/I0 = 468.1) and rapid response/recovery times (27 s/0.42 s) under bending. Inkjet-printed WTe2/CAB pads on 6-μm-thick substrates demonstrate exceptional mechanical stability, with resistance variations of 1.4% under single bending and 2% after 1,000 cycles, and acquire high-quality electrocardiogram (ECG) and electromyography (EMG) signals. This strategy enables scalable fabrication of TMD-based flexible electronics, advancing industrial integration.
Journal of Fuel Chemistry and Technology•2026•DOI: 10.3724/2097-213X.2025.JFCT.0032
This study elucidates the nonlinear relationship between the softening point of coating asphalt and its oxidative cross-linking behavior, as well as the sodium storage performance of the derived hard carbon. Comparative analysis of asphalts with low (80 °C), medium (160 °C), and high (260 °C) softening points revealed that both the 80 and 260 °C asphalts incorporated a higher oxygen content (20%–25%) during oxidation, leading to the formation of a deeply cross-linked structure dominated by anhydride and ester groups. This effectively suppressed graphitization during carbonization, yielding hard carbon with large interlayer spacing, high disorder, and abundant closed pores. The derived hard carbon exhibited superior sodium storage performance: the initial charge capacities of EPOC-80 and EPOC-260 reached 314.7 and 306.6 mA·h/g, with first-cycle coulombic efficiencies of 81.3% and 79.3%, respectively, along with excellent cycling stability and rate capability. In contrast, the medium softening point asphalt (160 °C) showed limited oxygen incorporation (~5%) and insufficient cross-linking after oxidation, resulting in a densely packed hard carbon with smaller interlayer spacing (3.46 Å) and restricted sodium storage sites, which led to a significantly reduced capacity of 173.2 mA·h/g. This work provides new design principles and theoretical support for optimizing hard carbon anode structures through precise control of the precursor softening point.
Journal of Fuel Chemistry and Technology•2026•DOI: 10.1016/S1872-5813(25)60622-0
Photocatalytic production of hydrogen peroxide (H2O2) from sustainable biomass-derived carbon catalysts offers a renewable route to valuable chemicals, yet the regulatory role of surface functional groups on reaction kinetics remains underexplored. Here, hydrothermal carbon spheres (CS) rich in oxygen-containing functional groups demonstrated a remarkably high H2O2 production rate of 653 μmol/(g·h) in both pure water and actual seawater, without any sacrificial agent. The catalyst also exhibited outstanding activity in visible-light-driven photocatalytic oxidation of benzylamine to imines, achieving 92% conversion and >99% selectivity. Comprehensive analysis revealed that CS was rich in surface oxygen-containing functional groups, a feature strongly associated with its high photocatalytic efficiency. The observed positive Zeta potential of CS in seawater likely diminished electrostatic repulsion against positively charged intermediates, facilitating their accumulation at the liquid-solid interface. This work proposes a strategic framework for developing metal-free photocatalysts from biomass, offering a sustainable pathway for photocatalytic applications.
Journal of Environmental Engineering Technology•2026•DOI: 10.13205/j.hjgc.202605015
The national greenhouse gas voluntary emission reduction trading market was relaunched in 2023, with China Certified Emission Reduction (CCER) as the trading unit, serving as a crucial supplement to the national carbon market. The initial phase includes the offshore wind power sector. This study evaluates the CO2 and air pollutant emission reduction effectiveness and economic feasibility of China's offshore wind power industry under the CCER mechanism. Using CCER methodology, baseline scenario analysis, and empirical data from 2020 and projections for 2025, we quantify reductions in CO2 and principal air pollutants (particulate matter, sulfur dioxide, nitrogen oxides) across coastal provinces. Emission inventories are constructed using authoritative grid emission factors. Economic viability is assessed by integrating levelized cost of electricity (LCOE), additional revenues from CCER transactions, and external environmental benefits. Results provide four policy insights: (1) The sector shows a positive trend in emission reduction and economic-environmental contribution, but faces financial deficit risk by 2025 without CCER subsidies; (2) Economically developed coastal provinces exhibit greater development potential; (3) Profitability analysis for 2020 and 2025 indicates sustainable economic returns with appropriate policy support; (4) Among air pollutants, nitrogen oxides reduction is largest, while sulfur dioxide reduction yields the most significant co-benefits. This study offers evidence-based recommendations for strategic planning and policy formulation in China's offshore wind industry.
Journal of Environmental Engineering Technology•2026•DOI: 10.13205/j.hjgc.202605018
To address the inadequacy of existing temporal emission allocation coefficients for oil storage, transportation, and sales sources in regions with distinct seasonal temperature variations, this study focused on a large oil depot in Northwest China. A method for establishing temperature-dependent hourly allocation coefficients for VOCs emissions was proposed, revealing a positive correlation between ambient temperature and emission coefficients. The coefficient peaked at 0.068 when temperatures exceeded 14 °C and dropped to a minimum of 0.007 below 8.5 °C. Annual VOCs emissions totaled 256.13 t, with summer contributing 108.89 t (42.51% of annual total) and winter only 12.54 t (4.90%), making summer emissions approximately 8.68 times higher than winter. Using CALPUFF dispersion modeling, dynamic source strength scenarios produced a maximum hourly concentration of 2242.7 μg/m³, a 55.12% increase over the constant source strength scenario (1445.8 μg/m³). The area of exceedance increased by 0.03 km², and the atmospheric environmental protection distance extended by 450 m, from 0 m to 450 m. These results demonstrate that conventional constant emission assumptions underestimate peak concentrations and protection distances, posing health risks to nearby residents. The study provides a scientific basis for localized emission regulation and improved environmental protection distance calculations.
Journal of Environmental Engineering Technology•2026•DOI: 10.13205/j.hjgc.202605021
The digestate from anaerobic digestion of food waste is separated into solid residue and liquid filtrate. The filtrate retains high nutrient and carbon content, making it a viable resource for recovery. This study prepared biochar from food waste digestate residue and employed it as an electrode active material in a flow-electrode capacitive deionization (FCDI) system, with activated carbon as a control, to assess nitrogen and phosphorus removal from kitchen waste biogas slurry. ZnCl₂ modification significantly enhanced the biochar's specific surface area, adsorption capacity, capacitance, and conductivity. The optimal mass fraction of modified biochar in the electrode liquid was 7.5%. In simulated digestate, the FCDI system achieved removal efficiencies of 47.7% for NH₄⁺-N and 55.2% for reactive phosphorus (RP) over 12 hours. Performance ranking of electrode materials was activated carbon > ZnCl₂-modified biochar > unmodified biochar. In continuous operation with actual anaerobic digestion filtrate, maximum removal efficiencies were 32.2% for NH₄⁺-N and 26.2% for RP. The reduced performance in real digestate is attributed to organic foulants such as peptides and amino acids, which block ion-exchange membrane channels, increase membrane resistance, and impede ion transfer and charge transport, thereby diminishing deionization efficiency.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3899-9
Metal halide hybrids have emerged as a highly promising class of optoelectronic materials owing to their rich chemical and electronic diversity, high luminescence efficiency, and tunable photophysical properties. Incorporating chirality into these systems imparts pronounced circularly polarized luminescence (CPL) activity, creating new opportunities for advanced smart optoelectronic and spintronic applications. Although numerous reviews have been dedicated to CPL-active perovskites, their non-perovskite ionic counterparts have yet to be systematically and comprehensively reviewed. Given the rapid advancements in this burgeoning field, such a work is both timely and crucial to chart its future course. This review summarizes recent progress in non-perovskite ionic metal halide hybrids exhibiting CPL emission, highlighting four aspects: (1) the intrinsic correlations among different characterization techniques; (2) the strategic advantages of these materials for CPL applications; (3) methodologies for enhancing their CPL performance; (4) the prerequisites and mechanisms underlying CPL generation in achiral metal halide hybrids. Finally, we discuss their emerging applications in light-emitting devices, information encryption, anti-counterfeiting technologies, and scintillators, and provide perspectives on the remaining challenges and future directions in this rapidly evolving field.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3814-2
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".
Environmental Chemistry•2026•DOI: 10.7524/j.issn.0254-6108.2025112603
The cycloaddition of carbon dioxide (CO2) to epoxides (CCE) is a 100% atom-economical transformation yielding cyclic carbonates, which are valuable chemical products. This reaction valorizes CO2 as a carbon feedstock, mitigating the greenhouse effect and aligning with carbon neutrality goals. Conventional covalent organic framework (COF) catalysts often require co-catalysts to achieve high efficiency. To address this, we designed and prepared a series of ionic COFs, denoted EB-BT(nOH), that simultaneously incorporate acid (hydroxyl), base (nitrogen), and nucleophilic bromide (Br−) functionalities. These materials efficiently catalyze the CCE reaction without any co-catalyst. Among them, EB-BT(OH) exhibited the highest catalytic activity, achieving a 99% yield of the target product at 120 °C and 2.0 MPa CO2 pressure. By systematically varying the hydroxyl content in the COF backbone, we investigated the critical role of hydrogen bond donors (HBDs) in the CCE reaction. This work provides new design principles for COF-based catalysts for CCE, eliminating the need for co-catalysts and enhancing process sustainability.
Journal of Environmental Engineering Technology•2026•DOI: 10.13205/j.hjgc.202606003
Membrane separation technology, offering high separation efficiency, low energy consumption, and operational flexibility, is promising for lithium recovery. However, selective lithium extraction from complex matrices such as salt lake brines and battery leachates remains challenging. Traditional membrane development relies on empirical trial-and-error, suffering from low efficiency and the permeability-selectivity trade-off. This review systematically delineates machine learning (ML)-based frameworks for membrane material development, including high-throughput rational screening, inverse design of synthesis protocols, and high-fidelity performance prediction. We elucidate how advanced ML algorithms decipher structure-activity relationships at the molecular level, enabling breakthroughs in performance ceilings and guiding bottom-up fabrication of next-generation membranes. Critical challenges are assessed: scarcity of high-quality standardized datasets, limited model interpretability, and poor generalizability to industrial scales. Future directions emphasize physics-informed hybrid models, open-source global databases, and full-process system optimization to bridge laboratory innovation and industrial deployment.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3880-8
Formaldehyde oxidation reaction (FOR) demonstrates significant potential in energy conversion and chemical synthesis, yet developing catalysts for efficient operation at high current densities remains a challenge. Herein, we fabricated a Cu/Cu2O heterostructure nanowire catalyst on copper foam (Cu/Cu2O@CF) via interface engineering and investigated its FOR performance. Electrochemical tests show that Cu/Cu2O@CF exhibits excellent activity: it achieves 100 mA cm−2 at an ultra-low potential of −0.05 V (vs. RHE), outperforming most reported catalysts. Notably, this catalyst overcomes the deactivation limitation of conventional Cu-based catalysts above 0.5 V, maintaining a current density of 735 mA cm−2 at 0.6 V with excellent stability during long-term electrolysis. SCN−-induced Cu0 poisoning experiments confirm that Cu/Cu2O@CF retains a Cu/Cu2O mixed structure at 0.6 V, where Cu0-Cu+ synergy dominates its high activity. Density functional theory (DFT) calculations reveal two key advantages of this structure: it weakens OH− adsorption to avoid active site occupation, and reduces C–H bond cleavage barriers while promoting H* combination into H2. Product analysis shows Faradaic efficiencies for formate and H2 production are both ~100%. When coupled with the hydrogen evolution reaction (HER), the system's hydrogen production energy consumption is as low as 0.57 kWh m−3 H2, much lower than traditional water electrolysis. This work elucidates the regulatory mechanism of interface engineering on the FOR performance of Cu-based catalysts, expands the application of Cu-based heterostructures in high-current FOR, and guides the development of industrial-grade electrocatalysts.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3823-4
The global demand for chlorine gas continues to rise, driven by its indispensable role in chemical synthesis, disinfection, and wastewater treatment. Electrocatalytic chlorine evolution from seawater presents a promising alternative to the energy-intensive chlor-alkali process, yet it is hampered by the competing oxygen evolution reaction and the sluggish kinetics of chlorine evolution on conventional catalysts. Here, we report a novel hollow porous CoNiSe2/NiSe2 heterostructure nanosheet array synthesized via ion exchange and calcination, which exhibits exceptional catalytic activity and selectivity for the chlorine evolution reaction in acidic seawater-like electrolytes. The unique hollow porous morphology provides a high specific surface area, facilitating mass transport and exposing abundant active sites. Crucially, the heterointerface between CoNiSe2 and NiSe2 promotes d-p orbital hybridization between Co/Ni 3d and Se 4p states, which lowers the reaction energy barrier for chlorine evolution. The catalyst achieves a low overpotential of 108 mV to reach a current density of 100 mA cm−2 in 4.0 M NaCl acidic medium, with excellent stability and Cl2 selectivity. This work demonstrates the potential of non-noble metal selenides as efficient and durable catalysts for chlorine production, offering a pathway toward more sustainable chlor-alkali technology.
Chinese Journal of Environmental Engineering•2026•DOI: 10.12030/j.cjee.202505108
Open-pit mining in high-cold regions causes severe ecological degradation, including vegetation loss, soil structure destruction, and frequent freeze-thaw disturbances, complicating ecosystem recovery. This review systematically synthesizes the current status, theories, and key restoration technologies for degraded ecosystems in high-cold mining areas. Comparative analysis with typical high-cold degraded ecosystems worldwide reveals that high-cold mining areas face challenges such as frequent freeze-thaw cycles, hydrological disruption, wind erosion, and difficult vegetation establishment. We propose strengthening aboveground-belowground synergistic restoration: (1) aboveground restoration should focus on screening cold-resistant native plants and optimizing mixed community configurations, combined with plant growth-promoting multi-microbial consortia to facilitate vegetation recovery; (2) belowground restoration should be based on engineering soil profile reconstruction, integrating physical-chemical-biological multi-dimensional remediation techniques to achieve aboveground and belowground community reconstruction and functional recovery; (3) a progressive restoration framework is established, with short-term goals targeting soil stabilization and structure improvement, medium-term goals focusing on constructing multifunctional plant-soil communities, and long-term goals achieving self-sustaining, maintenance-free restored ecosystems. Finally, addressing the unclear mechanisms of aboveground-belowground synergistic interactions and insufficient environmental adaptability of restoration technologies, two prospects are proposed: (1) deepening research on aboveground-belowground synergistic mechanisms to reveal interactions between cold-tolerant microorganisms and plants; (2) advancing the development of characteristic restoration technologies adapted to high-cold environments.
Journal of Fuel Chemistry and Technology•2026•DOI: 10.1016/S1872-5813(26)60653-6
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.
Journal of Fuel Chemistry and Technology•2026•DOI: 10.1016/S1872-5813(26)60659-7
Coal gasification fine slag (CGFS), a solid waste from entrained-flow coal gasification, is characterized by fine particles and high silicon and aluminum content. This study proposes a simple and economical hydrothermal synthesis of ZSM-5 molecular sieve using CGFS as raw material. Impurities were removed by acid washing, followed by alkaline extraction of silicon and aluminum species. The extracted Si-Al precursors were crystallized hydrothermally at 170 °C for 48 h, yielding ZSM-5 with a high specific surface area of 358 m2/g. Adsorption experiments showed that the synthesized ZSM-5 exhibited excellent Pb2+ removal performance: at 25 °C, the removal efficiency for a 50 mg/L Pb2+ solution reached 83.7%, with an adsorption capacity of 104.625 mg/g under optimized conditions. The adsorption process is mainly governed by chemisorption mechanisms, including surface complexation, precipitation, and ion exchange. Thermodynamic analyses indicated that Pb2+ adsorption is spontaneous and endothermic, consistent with multilayer chemisorption. The synthesized ZSM-5 shows promising potential for application in the treatment of lead-containing wastewater, offering a high-value utilization route for coal-based solid waste.
Environmental Chemistry•2026•DOI: 10.7524/j.issn.0254-6108.2025032004
This study proposes an integrated source apportionment framework that synergistically integrates pollution source classification, atmospheric dispersion modeling, backward trajectory analysis, weighted trajectory clustering, and forward contribution estimation to accurately target peak reduction at localized air pollution hotspots. Applied at the County-Town Scale in Beijing, this method was employed to investigate pollution episodes at the Tongzhou Dongguan monitoring site. Source classification relied on a pollution fingerprint database and temporal concentration profiles, while local contributions were quantified through combined air quality modeling and monitoring data. Forward and backward trajectory analyses enabled the identification of potential source regions and key contributors. Results indicate that construction dust, road dust, and emissions from the catering industry were the dominant local sources, with construction and road dust contributing most prominently to PM2.5 concentrations. Furthermore, abnormal PM2.5 increases were closely linked to low boundary layer height, weak winds, and high humidity, emphasizing the role of meteorological conditions in pollution accumulation. The proposed framework proves effective in pinpointing local pollution sources and offers a scientific basis for targeted air quality management at finer spatial scales.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3916-3
Circularly polarized light (CPL) detection is critical to emerging technologies in optical communication, chiral sensing, and bio-inspired imaging. However, current devices rely on intrinsically chiral semiconductors that are synthetically complex and costly to scale. Here, we demonstrate robust CPL detection in achiral organic semiconductors by exploiting chiral plasmonic resonance (CPR). A self-assembled monolayer of L-phenylalanine–modified gold nanoparticles imparts optical chirality to adjacent semiconductors while enhancing photocurrent through plasmon-induced hot-carrier processes. The resulting hybrid devices exhibit nearly tenfold responsivity enhancement and a high dissymmetry factor of 0.35 at 515 nm. Mechanistic analysis reveals a field-driven, hot-carrier-assisted route to helicity sensitivity. This solution-processable approach merges plasmonic chirality with organic semiconductor versatility, providing a scalable platform for next-generation on-chip chiroptoelectronic and polarization-imaging technologies.
Journal of Fuel Chemistry and Technology•2026•DOI: 10.1016/S1872-5813(26)60670-6
Direct conversion of syngas to higher alcohols (C2+ alcohols) is critical for coal-based resource utilization and energy security. Here, a series of Na-modified CoFe/Al2O3 catalysts were synthesized via incipient wetness impregnation and evaluated for syngas-to-alcohol reactions. Multiple characterizations (XRD, N2 adsorption-desorption, H2-TPR, XPS, DRIFTS, in situ Raman, Mössbauer spectroscopy) elucidated synergistic effects of Na and Fe promoters. Na facilitated formation of Co-Fe alloy sites during reaction, while Fe modified electronic state of Co and promoted transformation of lattice oxygen to adsorbed oxygen, increasing surface oxygen vacancies. Synergistic interaction between alloy and carbide sites enhanced CO insertion into olefin intermediates, improving C2+ alcohol selectivity. Under 260 °C and 2 MPa, Co1Fe1Na1 catalyst (n(Co):n(Fe):n(Na)=1:1:1) achieved total alcohol selectivity of 45%, with C2+ alcohols comprising 94.1% of total alcohols. This study provides insights into rational design of Co-based catalysts for efficient syngas conversion to C2+ alcohols.
Environmental Chemistry•2026•DOI: 10.7524/j.issn.0254-6108.2026031103
Sintering ash washing wastewater from steel plants is characterized by high salinity, high chloride content, high thallium load, and coexistence of multiple metals, posing significant treatment challenges. This study employed thermodynamic simulation to elucidate the speciation and transformation of thallium in such wastewater, and systematically investigated a combined process of sulfide precipitation coupled with coagulation-flocculation. The results showed that at pH 9–10, thallium predominantly existed as Tl+. Under oxidizing conditions, the stable complex anion [TlCl4]− dominated at pH < 8.1, while at pH > 8.1, a mixed system of solid Tl2O3 and dissolved TlClO3 coexisted. Under optimized conditions (pH 12, 2.0% thallium removal agent, 1.0% multi-effect auxiliary agent), the thallium concentration in the wastewater decreased from an initial 9.58 mg·L−1 to 4.31 μg·L−1, meeting the stringent discharge limit of ≤5 μg·L−1. Concurrent removal of Cu, Zn, and Cd was achieved. The primary removal mechanism was sulfide precipitation, with lattice substitution between Tl+ and K+ serving as an auxiliary pathway. This study provides a practicable technical route for advanced treatment of high-chloride, high-thallium industrial wastewater.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-4007-x
Hydrogels, with their hydrophilicity, flexibility, and environmental friendliness, are highly desirable for moisture-electric generators (MEGs) that harness ubiquitous moisture to generate electrical energy. As the active material layer in MEGs, hydrogels play a crucial role in absorbing atmospheric moisture and converting chemical potential energy into electricity. However, the relatively low output current of the device and the instability of hydrogels pose challenges to the development of high-performance hydrogel-based MEGs. Herein, we introduce a straightforward, feasible, cost-effective, and versatile two-step solvent displacement strategy to overcome the barrier associated with the development of MEGs. Through tunable solvent interactions of glycerol and water, the moisture absorption capability and stability of the hydrogel can be improved, while promoting favorable ion migration. Such an effective processing route not only significantly boosts the output performances but also greatly improves the long-term durability of hydrogel-based MEGs. Notably, the current output and power density of the treated MEGs can increase by up to two orders of magnitude. The mechanisms behind the intriguing observation are investigated by various characterizations and theoretical calculations. This universal strategy holds promise to be extended to various hydrogel-based MEGs. Moreover, the MEGs can be used for energy harvesting, self-powered respiratory monitoring, and non-contact humidity detection. This work offers new opportunities for advancing green energy and self-powered technologies.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-4100-9
Shape memory droplet manipulation platforms have attracted significant attention due to their programmable droplet control capabilities. Current research primarily focuses on superhydrophobic surfaces and slippery lubricant-infused porous surfaces (SLIPS); however, these approaches suffer from vulnerable surface micro/nanostructures and loss of lubricant oils. Here, we report a shape memory quasi-liquid polydimethylsiloxane (PDMS) brush surface that overcomes these limitations. The surface is fabricated by introducing a SiO2 layer as a 'bridge' on a shape memory epoxy substrate, providing abundant functional groups for grafting PDMS brushes. By precisely controlling the SiO2 layer thickness and grafting conditions, the surface exhibits good shape memory properties and low adhesion to diverse liquids with varying surface tensions. Reversible anisotropic/isotropic droplet sliding control for both water and organic droplets is demonstrated through dynamic introduction/removal of groove structures, proving excellent droplet manipulation based on the combination of shape memory and low adhesion of PDMS brushes. Furthermore, the material can be applied as a functional coating on diverse substrates to impart anti-fouling and self-cleaning properties. This work introduces a nanoscale SiO2 layer as a 'bridge', offering a strategy to graft PDMS brushes onto polymer surfaces. Given the advantages of quasi-liquid PDMS brushes and programmable controllability of shape memory polymers, this work provides fresh ideas for developing droplet manipulation platforms.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-4144-y
Developing efficient strategies for electrically manipulating two-dimensional magnetism at room temperature is a key challenge in contemporary spintronics. In this study, we demonstrate giant electromechanical control over the magnetism of the room-temperature van der Waals ferromagnet Fe3GaTe2 by integrating it with the ferroelectric α-In2Se3. Modest gate voltages lead to an almost complete suppression of the coercive field by 96.5%, corresponding to a remarkable peak modulation sensitivity of ~8.1 mT V−1, which stands out among existing van der Waals magnetoelectric systems. Importantly, this substantial magnetoelectric response is predominantly unaffected by voltage polarity, as both positive and negative gate voltages induce similar magnetic modulation effects. To elucidate the underlying mechanism, we tracked the voltage-induced Raman spectral changes, revealing a peak shift of 1.7 cm−1 that accurately represents an effective in-plane tensile strain of ~1.42% under an equivalent bias, demonstrating polarity independence as well. The synchronized magnetic response and strain variation unequivocally indicate that the induced tensile strain serves as the fundamental physical driver behind the magnetic modulation. Additionally, density functional theory calculations corroborate that the reduction in magnetic anisotropy induced by tensile strain results in a decrease in the coercive field. Our work establishes a novel and efficient approach for achieving voltage control of magnetism at room temperature in van der Waals multiferroic heterostructures, highlighting their significant potential for applications in ultra-low-power magnetic logic and sensing technologies.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-4033-1
Photodetectors are critical components in modern optoelectronic systems, underpinning applications in optical communication, low-altitude economy, environmental monitoring, and national defense. Layered two-dimensional (2D) materials such as MoS2, WS2, black phosphorus (BP), and ReS2 have attracted extensive attention due to their remarkable electronic and optical properties, including facile mechanical exfoliation and tunable characteristics via thickness engineering. The absence of dangling bonds enables the construction of van der Waals (vdW) heterostructures free from lattice-matching constraints, promoting efficient charge transport, enhanced light absorption, and suppressed dark current. Among layered materials, semimetals such as graphene, PdTe2, MoTe2, and TaIrTe4 exhibit narrow or zero bandgaps, enabling ultrabroadband spectral responses from ultraviolet (UV) to terahertz (THz). ZrTe3, a layered gapless semimetal, demonstrates pronounced carrier transport features, including robust excitons and ultrafast carrier relaxation times, making it an ideal candidate for photodetection. However, pure ZrTe3-based photodetectors suffer from substantial dark current due to the absence of an energy bandgap, degrading signal-to-noise ratio and specific detectivity (D*). This work reports a high-performance broadband photodetector based on a ZrTe3/CuInP2Se6 heterostructure. By exploiting an asymmetric contact configuration that introduces a Schottky barrier, the device effectively suppresses dark current while enhancing photoresponse. The photodetector exhibits broad spectral sensitivity from UV to near-infrared (355–1177 nm), microsecond-level response speed, and high responsivity and specific detectivity. Beyond conventional photodetection, an optoelectronic information encryption-decryption application is demonstrated, where modulated light and bias voltage serve as dual input channels to encode and decode ASCII signals. This study resolves the challenge of high dark current in semimetal-based photodetectors and introduces a multifunctional platform for secure optoelectronic communication, highlighting the potential of ZrTe3 for next-generation photonic and quantum information technologies.
Journal of Fuel Chemistry and Technology•2026•DOI: 10.1016/S1872-5813(26)60662-7
Perovskite-type catalysts show promise for CO2 methanation, yet their low-temperature performance and mechanisms remain unclear. Here, a LaNiO3/CeO2 catalyst was synthesized via sol-gel and impregnation. In situ reduction decomposed the perovskite into highly dispersed Ni0 particles (average 12.6 nm) on CeO2, which provided abundant oxygen vacancies (Ce3+/(Ce3++Ce4+) = 9.2%) and weak/moderate basic sites. This synergy enhanced CO2 adsorption and activation. At 200–300 °C, the catalyst achieved ~100% CH4 selectivity and CO2 conversion up to 23.6% at 300 °C. Comparative studies with LaNiO3, LaCeNiO4, Ni/CeO2, and La-Ni/CeO2 revealed that the perovskite pre-structuration and in situ reduction optimize Ni dispersion and metal-support interactions, stabilizing Ni0 and tuning surface basicity and oxygen vacancies. This work provides a design strategy for efficient low-temperature CO2 methanation catalysts.
Journal of Fuel Chemistry and Technology•2026•DOI: 10.1016/S1872-5813(26)60663-9
The catalytic hydrogenation of biomass-derived dimethyl succinate (DMS) to 1,4-butanediol (BDO) is a pivotal route for producing high-value C4 chemicals in green chemistry. Cu/SiO2 catalysts are known for high selectivity in hydrogenating ester groups, with performance correlated to copper species microstructure. Although calcination critically defines this active structure, systematic influence of calcination atmosphere remains underexplored. Here, Cu/SiO2 catalysts were prepared via urea-assisted hydrothermal method and calcined under different atmospheres to elucidate effects on physicochemical properties and hydrogenation performance. Comprehensive characterization (N2 physisorption, FT-IR, H2-TPR, XRD, TEM, N2O pulse chemisorption, XPS, NH3-TPD) revealed that calcination atmosphere profoundly alters metal-support interaction, regulating dispersion and chemical state of copper species. Specifically, air calcination promoted stronger metal-support interaction, enhancing copper dispersion and increasing proportion of key active Cu+ species. Consequently, air-calcined catalyst achieved 92.37% DMS conversion and 64.15% BDO yield under optimized conditions (210 °C, 5.0 MPa, WHSV 0.6 h−1, H2/DMS molar ratio 100). This work underscores calcination atmosphere engineering as potent strategy for optimizing metal-support interactions in heterogeneous catalysts for efficient hydrogenation.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-4129-y
Therapeutic biosynthesis is a promising strategy for precision cancer therapy, yet achieving controlled synthesis of abiotic materials within tumors remains challenging. Here, we report a “dual lock-and-key” system for tumor-specific intracellular synthesis. The precursor, termed “dual-lock,” is activated by two endogenously overexpressed enzymes—azoreductase (AzoR) and nitroreductase (NTR)—acting as “dual keys” in target cancer cells. This activation triggers a condensation reaction that produces fibrous mesh covalent organic polymers (Fm-COPs) in situ. Synthesized Fm-COPs effectively disrupt the cytoskeleton, inhibiting cell migration and invasion while inducing apoptosis. In vivo studies demonstrate that this strategy achieves specific tumor enrichment and deep penetration, leading to significant tumor growth inhibition (tumor inhibition rate >70%) without systemic toxicity, as evidenced by stable body weights and normal histopathology. The dual enzyme-responsive mechanism ensures high selectivity, and the small-molecule precursors facilitate efficient tumor penetration. This work presents a next-generation approach for high-precision cancer therapy, offering a biocompatible and autonomous strategy for intracellular synthesis.
SCIENCE CHINA Materials•2025•DOI: 10.1007/s40843-025-3631-1
Anion exchange membrane water electrolysis (AEMWE) offers cost and dynamic-response advantages over proton exchange membrane systems, yet commercial deployment is constrained by the alkaline stability of anion exchange membranes (AEMs) and the sluggish kinetics of non-precious metal catalysts. This work reports a series of poly(terphenyl-diphenylmethane piperidinium) (QPDPMTP) membranes synthesized with varied diphenylmethane (DPM) content. The alkyl chain of DPM induces pronounced microphase separation and elevates free volume fraction, yielding an OH− conductivity of 152 mS cm−1 at 80 °C for QPDPMTP-10. After 1032 h immersion in 6 M NaOH at 80 °C, the membrane retains 90.7% of its initial conductivity. An AEMWE cell integrating QPDPMTP-10 with a non-precious NiFeCo LDH/NiS/NF anode achieves 3.11 A cm−2 at 2 V in 1 M KOH at 80 °C and sustains 1 A cm−2 for 1800 h under gradient KOH concentration. These results establish a viable pathway for durable, low-cost AEMWE systems.
SCIENCE CHINA Materials•2025•DOI: 10.1007/s40843-025-3551-5
Flexible photonic crystal (PC) materials exhibit exceptional optical properties but suffer structural degradation under repeated mechanical stress, leading to photonic band gap impairment and limited sustainability. This study introduces a self-healing thermoplastic polyurethane (STPU) with an inverse-opal PC structure, inspired by natural structural coloration and self-healing mechanisms. Synergistic dynamic covalent disulfide bonds and hydrogen bonds enable reversible mechanical adjustment, yielding a tensile strength of 26.76 MPa and elongation at break of 2000%. The inverse opal structure facilitates reversible color transitions in response to solvents (water, ethanol) and mechanical strain (0–70%) via lattice spacing modulation. Incorporating an interpenetrating network of polyacrylamide hydrogel and carbon nanotubes enhances strain sensitivity and structural color stability. The material demonstrates broad potential in flexible sensors, adaptive optical devices, bioinspired robotic skins, and dynamic anti-counterfeiting encryption, overcoming traditional PC limitations such as high fragility and single functionality. This strategy advances durable intelligent sensing materials with enhanced environmental adaptability and multifunctional integration.