SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4258-0
High-entropy noble-metal-based catalysts (HENCs) have emerged as a frontier in electrocatalysis, leveraging the synergistic effects of high-entropy alloys and noble metals to achieve exceptional atomic utilization, tunable electronic structures, and vast compositional space. Their anisotropic architectures confer superior dissolution resistance, rapid electron/mass transfer, and abundant active sites. This review systematically categorizes advanced structural regulations—grain boundary engineering, single-atom alloys, intermetallic compounds, amorphous structures, and core@shell configurations—and evaluates their impact on electrocatalytic performance. By modulating surface electronic states and lattice strain, these strategies optimize reaction kinetics and durability. Notable applications include oxygen reduction (ORR), oxygen evolution (OER), hydrogen evolution (HER), and CO2 reduction (CO2RR). Despite progress, challenges persist in scalable synthesis, mechanistic understanding, and long-term stability. This review underscores the potential of HENCs to bridge laboratory innovation and industrial deployment, providing a roadmap for future catalyst design.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4110-9
Flexible tactile sensors are pivotal for human-machine interaction, yet accurate decoupled sensing of three-dimensional (3D) forces and integration into functional systems remain challenging. Here, we present a piezoresistive 3D force sensor based on ionic hydrogels that detects and analyzes multi-directional forces. The sensor exhibits a linear response to normal forces from 1 to 25 N (R²=0.99) and maintains stable sensitivity for shear forces within 0–4 N. By incorporating both force magnitude and direction, the sensor enables multidimensional password input, expanding traditional one-dimensional passwords into numeric, alphabetic, and Morse code formats. Experimental results demonstrate significant potential for enhancing information security. The sensor's simple structure, mature fabrication, and ease of integration with flexible electronics underscore its practicality. This work addresses the bottleneck of unidirectional sensing in conventional flexible pressure sensors, offering a robust solution for multidimensional force acquisition in human-machine interfaces, soft robotics, and biomechanical monitoring.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3761-7
Ruthenium-based materials, including metallic Ru and RuO2, are promising electrocatalysts for electrochemical water splitting (EWS) due to their high activity for both hydrogen evolution reaction (HER) and oxygen evolution reaction (OER). However, their practical application is hindered by the relatively strong adsorption of reaction intermediates on Ru surfaces and the oxidative dissolution of RuO2 under operating conditions. This review provides a comprehensive overview of recent progress and challenges in Ru-based electrocatalysts for EWS. We first summarize the fundamentals of EWS, including reaction mechanisms and activity descriptors. Then, we detail typical synthesis methods such as hydrothermal/solvothermal syntheses, organic ligand-assisted syntheses, pyrolysis, acid etching, cation exchange, and molten salt-assisted syntheses. Subsequently, we focus on enhancement strategies, including alloying, doping, structure design, interface engineering, single-atom catalyst design, high-entropy alloy design, phase engineering, and defect engineering, with typical examples illustrating structure-property correlations. Finally, we address remaining challenges and future prospects for the development of efficient and durable Ru-based electrocatalysts for sustainable hydrogen production.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3708-y
Polar two-dimensional (2D) perovskites, with their excellent semiconductor properties, intrinsic anisotropy, and bulk photovoltaic effect, have emerged as promising candidates for self-driven polarization-sensitive photodetectors. However, these self-driven polarized detectors typically require fabrication along the spontaneous polarization direction to maintain device operation in the self-driven mode, which imposes additional limitations. Herein, we demonstrate multidirectional self-driven polarization-sensitive photodetection by constructing 2D perovskite-based asymmetric contact devices, Ag/2D perovskite/C. The built-in electric field, originating from the difference in work functions, acts as the driving force for the separation and transport of photogenerated carriers. Notably, this approach does not necessitate a specific direction, thereby enabling multidirectional self-driven photodetection. Under excitation by linearly polarized light, our devices exhibit impressive polarization-sensitive discrimination in multiple directions, achieving polarization ratios of 3.3 and 3.1 along the a and b-axes, respectively. Our work enriches the approaches enabling self-driven polarization-sensitive photodetection, free from the previous limitations.
Journal of Environmental Engineering Technology•2026•DOI: 10.13205/j.hjgc.202604018
To address the issues of high air volume and unorganized emissions of waste gas in semi-steel vulcanization production lines, a combined approach of experimental testing and numerical simulation was employed to study the diffusion characteristics of VOCs-containing waste gas and the air volume of the collection system. The structure of the semi-enclosed hood was optimized, and pipe diameters were adjusted to achieve negative pressure balance, enabling efficient waste gas collection. Results showed that toluene concentration distributions from numerical simulation were largely consistent with experimental measurements, with a maximum average error of -3.9%. Existing hood inlet wind speeds ranged from 0.04 to 0.2 m/s, indicating uneven distribution. Under calm wind conditions, toluene diffusion in enclosed and semi-enclosed hoods was similar, with concentrations of 248 mg/m³ and 115 mg/m³, respectively, and deposition observed in trenches. For a single vulcanizer, at a design air volume of 2700 m³/h, the enclosed hood achieved a toluene concentration of 80 mg/m³ versus 63 mg/m³ for the semi-enclosed hood, demonstrating superior capture of hot fumes. Optimizing the semi-enclosed hood with soft curtains and a height of 1200 mm, at a total design air volume of 1.0×10⁵ m³/h, yielded an average hood inlet velocity of 0.35 m/s but still uneven distribution. Adding 900 mm gradual reducers and adjusting branch pipe diameters resulted in total air volume deviations of -0.44% and 0.38% for branches I and II, respectively, with individual hood deviations below 10%. This achieved negative pressure balance, effective collection, and improved workshop hygiene.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3745-1
Short-wavelength infrared (SWIR) organic photodetectors (OPDs) have attracted considerable attention due to their potential to overcome the limitations of inorganic counterparts. However, developing organic semiconductors with strong SWIR detection remains a significant challenge. Herein, we design and synthesize a new conjugated pyrrolic polysquaraine (PSQ-COT) by integrating a pyrrolic squaraine unit with a strong electron-donating moiety, achieving an absorption onset extending to 1.2 μm. To evaluate its detection performance, we fabricated two types of PSQ-COT-based SWIR OPDs with PC61BM and BTP-eC9 as the electron acceptors, respectively. The resulting PSQ-COT:PC61BM OPD exhibited superior detection performance compared with the BTP-eC9 counterpart, achieving an impressive specific detectivity of 1.08 × 10^12 Jones at 1030 nm under zero bias. This enhanced performance is due to the lower degree of energetic disorder and reduced trap density in the PSQ-COT:PC61BM device. Furthermore, we successfully integrated the PSQ-COT:PC61BM OPD into a high-pixel-density image array (640 × 512 pixels), enabling clear matter identification under SWIR light irradiation. This work provides valuable insights into designing high-performance organic semiconductors for SWIR light detection and imaging applications.
New Carbon Materials•2026•DOI: 10.1016/S1872-5805(26)61109-2
Silicon-carbon (Si/C) composites are promising high-capacity anode materials for next-generation lithium-ion batteries, but their commercialization is hindered by severe volume expansion during cycling. We report a chemical vapor deposition method using the pyrolysis of silane, in which ultrafine nano-Si enters a porous carbon framework to produce kilogram-scale Si/C composites. The carbon framework with abundant micropores (~1.9 nm) confines the amorphous silicon and accommodates the volume changes of nano-Si during both lithiation and de-lithiation. The resulting Si/C composites have a 56.76% Si content and have a specific capacity of 2179 mAh g–1, a high initial Coulombic efficiency (ICE) of 93.5%, and a low specific surface area (1.32 m2 g–1). In addition to the nanoconfinement effect, the median particle size (D50, 7.3-13.0 μm) of the carbon framework was shown to control the mechanical strength, coating uniformity and Li+ transport. A D50 of 8.2 μm endows the Si/C composites with outstanding comprehensive properties. They have an excellent rate performance with a 97.0% retention at 3 C relative to 0.1 C, show only minor variations in ICE difference at 60 ℃/-20 ℃ compared with room temperature, and have a low expansion of 35.8% from the delithiated to the lithiated state. The composite was then mixed with graphite to prepare the anode, which was then paired with an NCM523 cathode to assemble pouch cells. The pouch cell retained 87.46% of its initial capacity after 1000 cycles at 1 C. Because of the low expansion of the electrode, the material avoids structural degradation during cycling and thus has an excellent long-term stability.
Chinese Journal of Environmental Engineering•2026•DOI: 10.12030/j.cjee.202508084
Granite mining areas generate large quantities of abandoned soil and rock powder, posing environmental challenges and resource waste. This study investigates the synergistic preparation of porous ceramsite from two typical granite solid wastes—weathered granite soil (high Al2O3) and granite waste rock powder (high SiO2)—with waste glass powder as a fluxing agent. Single-factor experiments and response surface methodology (Box-Behnken) were employed to optimize the process and elucidate the pore-forming mechanism. The optimal conditions were a mass ratio of weathered granite soil:granite waste rock powder:waste glass powder of 5.6:2.4:2, a preheating temperature of 480 °C, a sintering time of 32 min, and a sintering temperature of 1140 °C. Under these conditions, the resulting porous ceramsite achieved a compressive strength of 1.74 MPa. The ceramsite effectively immobilized heavy metals, ensuring environmental safety. This research demonstrates that multi-component complementarity and multi-factor coupling optimization can produce porous ceramsite with favorable mechanical properties and stable pore structure, providing a theoretical basis and technical support for high-value utilization of granite solid waste.
Journal of Environmental Engineering Technology•2026•DOI: 10.13205/j.hjgc.202605008
Vegetable production is a significant source of greenhouse gas emissions, yet national-scale assessments comparing cultivation modes remain scarce. Using life cycle assessment (LCA) and provincial statistical data from 2018–2022 across 27 provinces, we quantified the carbon footprint (CF) per unit yield for 10 typical vegetables under open-field and facility farming. Results show annual average CFs range from 65.5 to 293.8 g CO2-eq/kg, with open-field radish lowest and open-field green bean highest. Spatial heterogeneity is pronounced, especially for facility eggplant and open-field green bean. CF exhibits distinct clustering: fruit vegetables emit more in central-southern open-field and northern facility systems, while leafy vegetables follow a 'south-high, north-low' pattern. Fertilizer production and field N2O emissions dominate, contributing up to 80.4% of total CF. In facility systems, irrigation electricity and agricultural film inputs become significant, reaching 57.87% contribution. These findings support region- and crop-specific mitigation strategies for China's agricultural dual-carbon goals.
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.202606002
Industrial volatile organic compounds (VOCs) emissions are a major contributor to regional air pollution, and the rubber paste preparation process is a significant source. This study developed an intelligent monitoring system for whole-process VOCs management in a rubber paste preparation workshop, integrating software engineering and Internet of Things (IoT) technologies. The system architecture combines a hybrid database (MySQL relational and InfluxDB time-series), MQTT-based low-power wide-area communication, role-based access control, and containerized microservices. Field deployment at a large rubber enterprise enabled real-time monitoring of adsorption/desorption centrifugal fans and data fusion analysis. Under typical operating conditions, the extraction and ventilation systems achieved volume flow rates of 40,000 m³/h and 30,000 m³/h, respectively, maintaining a continuous micro-negative pressure environment that effectively suppressed fugitive emissions. The purification process, comprising zeolite rotor adsorption and regenerative thermal catalytic oxidation, reduced non-methane hydrocarbon (NMHC) concentrations to below 10 mg/m³, meeting the GB 27632—2011 emission standard. The system's multi-level permission management module precisely allocated operational responsibilities across production, environmental, and management roles, reducing response time to abnormal conditions. An online evaluation model for purification efficiency was constructed based on the actual process. The system demonstrates potential for extension to other high-VOCs industries such as coatings and printing. This research provides theoretical and practical references for applying computer technology to VOCs reduction and whole-process management in typical industries.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4053-5
The rapid and efficient removal of radioactive iodine species from water is critical for nuclear waste treatment, particularly given the short half-life of 131I (8.02 days). Traditional porous inorganic materials exhibit low uptake capacities (<1 g g−1), while porous frameworks such as MOFs and COFs achieve high capacities (>5 g g−1) but suffer from slow removal kinetics, often requiring hours to capture 80% of iodine. This study introduces nonporous naphthobipyrrole-based organic cages (NBP-Cages) that demonstrate ultrafast iodine removal from water. Among the materials tested, type-II Me-NBP-Cage and Et-NBP-Cage, prepared via reprecipitation, exhibit amorphous morphology with small particle sizes (2–6 μm) and low BET surface areas (33.4 and 2.3 m2 g−1, respectively). Despite their nonporosity, these materials achieve >99% iodine removal within seconds, outperforming previously reported sorbents. The adsorption performance correlates with particle size and morphology: amorphous, small particles with effective surface gaps show superior kinetics. The materials are recyclable; for instance, Et-NBP-Cage can be regenerated by washing with acetonitrile, maintaining removal efficiency over five cycles. This work highlights the potential of nonporous organic cages as high-performance iodine sorbents, addressing the critical need for materials that combine high uptake capacity with rapid removal kinetics.
Journal of Environmental Engineering Technology•2026•DOI: 10.13205/j.hjgc.202607012
This study investigated the effects of lychee wood biochar and lignin-degrading bacteria on compost maturity, substance transformation, and bacterial communities during the coupled process of aerobic composting and vermicomposting of cow dung and rice husk. Four treatments were established: no addition (CK), 5% (w/w) lychee wood biochar addition (T1), 0.5% (w/w) lignin-degrading bacteria (Bacillus subtilis, Aspergillus niger) addition (T2), and combined addition of 5% biochar and 0.5% bacteria (T3). Results showed that biochar and/or bacteria addition accelerated temperature rise, extended high-temperature duration to 13 days, and increased maximum temperature. Compared to CK, T1–T3 increased organic matter degradation by 3.97%–9.56%, humic acid content by 12.30%–24.09%, available phosphorus and potassium by 14.48%–32.50% and 6.97%–18.85%, respectively. NH3 emissions were reduced by 25.86%–34.26%, while nitrate nitrogen and total nitrogen increased by 12.83%–43.34% and 5.73%–13.18%, respectively. Seed germination index improved by 11.62%–29.20%. T3 exhibited the best overall performance. During aerobic composting, biochar and/or bacteria significantly increased relative abundances of Bacteroidota, Planctomycetota, and Acidobacteriota, but effects were not significant during vermicomposting. Functional genera such as Bacillus, Pseudomonas, and Chryseolinea were enriched in both stages. The study concludes that adding 5% lychee wood biochar and/or 0.5% lignin-degrading bacteria to cow dung and rice husk in coupled composting-vermicomposting improves bacterial community structure, promotes organic matter degradation, enhances humification, reduces nitrogen loss, and accelerates compost maturity, with combined addition being most effective.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3921-2
Moisture-enabled energy harvesting technologies offer a promising route for self-powered strain sensing, yet conventional generators suffer from slow response, poor recovery, and limited multidirectional resolution. Here, we report a stretchable thermoplastic polyurethane (TPU) nanofiber moisture-enabled electric generator (MEG) with highly aligned ion channels. A carbon black/sodium dodecylbenzene sulfonate (CB/SDBS) layer is coated on the TPU membrane, while carboxymethyl cellulose (CMC) and acidified poly(sodium 4-styrenesulfonate) (HPSS) are applied on opposite sides, establishing lateral hydrophilicity and ion gradients to drive directional ion migration. The planar MEG is lightweight, flexible, and requires no fully covered electrodes, enabling conformity to complex deformations. The aligned channels reduce ion migration tortuosity, enhancing ion transport efficiency and flux. As a result, the aligned MEG (ATMEG) delivers 0.2 V and 0.51 μA cm−2 at ~90% relative humidity, corresponding to 400% and 287% enhancements compared with the unaligned MEG (UATMEG). The ATMEG also exhibits ultrafast response (0.16 s) and recovery (0.08 s). Utilizing its anisotropic characteristics, a multidirectional self-powered strain sensor is developed, capable of distinguishing both the amplitude and direction of human motion, demonstrating strong potential for adaptive wearable electronics and intelligent motion monitoring.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3960-0
Dry electrode processing offers a solvent-free and scalable pathway toward high-energy lithium metal batteries (LMBs), yet its practical implementation is constrained by tortuous ion/electron transport and weak mechanical cohesion in ultra-thick electrodes. Here, we construct a carbon-coated NASICON-type Li1.3Al0.3Ti1.7(PO4)3 nanofiber network (LATP@C) that serves as an integrated ionic-electronic scaffold within dry-processed Ni-rich cathodes. The one-dimensional LATP@C fibers form a continuous 3D percolation architecture that couples fast Li+ conduction from the NASICON core with efficient electron transport through the conformal carbon shell. Their rough, oxygen-functionalized surfaces further enhance electrolyte affinity, while the mechanically robust fibrous network bridges NCM811 secondary particles, suppressing crack initiation and preserving structural integrity during cycling. Benefiting from these collective effects, the LATP@C cathode with 100 mg cm−2 loading delivers 203 mA h g−1 at 0.1 C and maintains 96.7% capacity over 35 cycles at 0.2 C. Pouch cells incorporating 60 mg cm−2 LATP@C cathodes retain 80.5% capacity after 50 cycles, highlighting the practical viability of this design.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-4003-7
The escalating electromagnetic (EM) pollution necessitates the development of high-performance microwave absorbers (MAs) with integrated functionalities. However, it is still a difficult problem to integrate more related high performances into the designed MAs. Herein, a sustainable strategy was reported for fabricating three-dimensional (3D) porous magnetic Ni@C-anchored carbon foams (Ni@C/CFs) with abundant heterointerfaces and magnetic Ni@C nanoparticles using 3D porous chitosan foams and Ni-nitrilotriacetic acid chelate (Ni-NAC) as precursors. The modulation of carbonization temperature and concentration of Ni-NAC solution contributed to the tunable carbon graphitization, Ni crystallinity and magnetic Ni@C nanoparticles loading, which effectively improved their EM properties and EM wave absorption performances (EMWAPs). The optimized 3D porous magnetic Ni@C/CFs not only exhibited exceptional EMWAPs with a minimum reflection loss (RL min) of −27.58 dB and an ultra-wide effective absorption bandwidth (EAB) of 7.20 GHz, but also presented efficient thermal insulation and strong antibacterial activity (>95% inhibition against E. coli), which mainly originated from their excellent magnetic-dielectric synergies and unique 3D hierarchical porous structures. Consequently, this work delivers a coherent design strategy for next-generation multifunctional absorbers with potential applications in EM protection, thermal management, and adaptive stealth technologies.
Journal of Fuel Chemistry and Technology•2026•DOI: 10.1016/S1872-5813(26)60664-0
The selective hydrogenation of biomass-derived furfural (FAL) to high-value chemicals such as furfuryl alcohol (FOL) or tetrahydrofurfuryl alcohol (HFOL) is pivotal yet challenging due to the need for precise control over reaction pathways. In this study, a Ni2Al-LDO (layered double oxide) catalyst with highly dispersed surface NiO was synthesized via structural topological transformation of layered double hydroxides. The catalyst exhibited excellent performance in furfural hydrogenation, achieving a 91.42% yield of FOL at 160 °C and 1.4 MPa H2. Gradual reduction of Ni2Al-LDO produced Ni/NiO mixtures, enabling a tunable shift from FOL to HFOL as NiO content decreased and metallic Ni content increased. After reduction at 700 °C for 2 hours, the HFOL yield reached 93.95% under identical conditions. CO2-TPD, NH3-TPD, and FT-IR analyses revealed that variations in reduction degree influenced furfural adsorption behavior. NiO species selectively adsorb the C=O group of furfural, with isopropanol serving as the hydrogen source via the Meerwein-Ponndorf-Verley (MPV) pathway, yielding FOL. In contrast, metallic Ni0 surfaces facilitate flat adsorption, enabling simultaneous activation of both the furan ring and carbonyl group, and can activate both H2 and isopropanol, with H2 as the primary hydrogen source, leading to complete hydrogenation to HFOL. This work elucidates a clear structure-activity relationship centered on the metal oxidation state and provides a practical reduction-engineering approach for designing adaptable catalysts in biomass upgrading.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4149-1
Large optical anisotropy is paramount for efficient light manipulation in optoelectronic devices. Van der Waals layered materials, exhibiting large structural contrast between in-plane and out-of-plane directions, are inherently anisotropic in 3D space. However, measurements of their optical constants have been limited to 2D planes. Here, we directly measure reflectance spectra from the edge and basal surfaces of layered MoS2, NbOCl2, and WTe2 crystals to compare out-of-plane and in-plane optical constants in the 500–1000 nm range. Results show that out-of-plane refractive indices are smaller than in-plane values. Out-of-plane extinction coefficients are zero for MoS2 and NbOCl2 but nonzero for WTe2, confirmed by transient reflection spectroscopy. The nonzero extinction in WTe2 arises from symmetry of transition dipole moments and density of states dictated by crystal structure. Out-of-plane optical constants of MoS2 and NbOCl2 exhibit less dispersion than in-plane, whereas WTe2 shows enhanced out-of-plane dispersion around 2.14 eV, attributed to increased optical transition probability from larger density of states. These parameters indicate giant birefringence (>1.8 for MoS2, >0.6 for NbOCl2, >0.5 for WTe2) and linear dichroism (up to 100% for MoS2 and NbOCl2, 40.7% for WTe2) on edge surfaces. Results enable prediction of optical response at arbitrary incidence angles, aiding polarization-related optoelectronic devices.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4188-x
Sodium metal anodes, with high theoretical capacity (1166 mAh g−1) and low redox potential (−2.71 V vs. H+/H2), are promising for low-cost, high-energy sodium metal batteries (SMBs). However, uncontrolled dendrite growth and drastic volume changes cause short circuits and safety hazards. This work presents a dual-gradient engineering strategy to address these issues. A 3D self-supporting current collector (SSM-ZnS@Zn) was fabricated by laminating a stainless steel mesh (SSM) with a Zn foil decorated with pre-grown ZnS nanoparticles via a one-step rolling process. The substantial electrical conductivity difference between the bottom zinc foil (~16.6×10^6 S m−1) and the top SSM (~1.3×10^6 S m−1) establishes an electric field gradient. Simultaneously, a sodiophilicity gradient is created by electrochemically in-situ generated sodiophilic NaZn13 and Na2S on the bottom zinc foil, combined with the sodiophobic upper SSM layer. This dual-gradient synergy guides bottom-up sodium deposition, homogenizes current density and electric potential, and reinforces mechanical robustness. The framework exhibits outstanding electrochemical performance in both symmetric and full cells, outperforming most reported 3D structures. A pouch cell assembled with SSM-ZnS@Zn successfully lit an LED lamp, demonstrating practical application potential. This strategy surpasses single-gradient limitations and offers a new approach for high-performance sodium metal anode design.