SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4420-7
Cu2-xSe is a leading p-type thermoelectric material owing to its phonon-liquid electron-crystal (PLEC) behavior, yet the atomic-scale mechanisms governing Cu+ migration remain unresolved. This study employs in situ high-resolution neutron diffraction coupled with maximum entropy method (MEM) analysis to map the temperature-dependent evolution of Cu+ nuclear density in β-Cu2Se and β-Cu1.95Se. At 398–423 K, intra-tetrahedral Cu 8c ↔ 32f <111> hopping emerges, with isosurface values of 0.505 fm Å-3 for β-Cu2Se and 0.484 fm Å-3 for β-Cu1.95Se. Above 448 K, inter-tetrahedral pathways form via Cu 32f ↔ 32f <100> or 32f ↔ 4b ↔ 32f <111> migration, as revealed by line scans along [1̅11̅] up to 723 K. The presence of Cu vacancies (x = 0.05) alters the onset and connectivity of these pathways, directly impacting phonon scattering and electron transport. These findings establish a structural basis for controlling Cu+ mobility, offering a rational route to mitigate Cu precipitation and enhance zT stability beyond 1.5 at 900 K. The work bridges microstructural dynamics and thermoelectric performance, providing critical guidance for defect engineering in superionic thermoelectrics.
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.
Chinese Journal of Environmental Engineering•2026•DOI: 10.12030/j.cjee.202507038
To enhance the engineering practicality of pollutant pre-assessment, this study conducted environmental chamber tests for formaldehyde and TVOC emissions from 34 common decoration materials (25 solid and 9 liquid categories). Using the IndoorPACT software, variations in indoor pollutant concentrations under different material area loading rates and air change rates were simulated. Taking Harbin as a case study, concentration response ranges for various single materials under different area loading and ventilation conditions were simulated, leading to the construction of a simplified concentration prediction reference table. Results indicate that indoor pollutant concentrations from both solid and liquid materials peak on the second day after decoration, but decay rates differ significantly: liquid materials decrease by 70%–90% within about one week, and given their typically higher area loading rates in real projects, they exert a more significant impact on indoor air quality in the early post-decoration period. In contrast, solid materials decay more slowly and become the dominant long-term pollution source. The simplified estimation method based on these emission characteristics demonstrates good engineering applicability, providing effective reference for material selection, scheme comparison, and preliminary indoor air quality prediction and control in actual decoration projects.
Journal of Fuel Chemistry and Technology•2026•DOI: 10.1016/S1872-5813(25)60625-6
The electrocatalytic reduction of nitric oxide to ammonia (NORR) is a key green energy conversion technology. Its efficiency relies on high-performance electrocatalysts to enhance both ammonia yield (YNH3) and Faradaic efficiency (FNH3). Conventional experimental screening methods are resource- and time-intensive. Here, machine learning combined with SHAP feature analysis was employed to establish a stacked ensemble model integrating multiple algorithms, enabling systematic investigation of key descriptors governing NORR performance based on an experimental dataset. Evaluation of eight model algorithms revealed that the Stacked-SVR model achieved an R² of 0.9223 and RMSE of 0.0608 for predicting YNH3 on the test set, while the Stacked-RF model achieved an R² of 0.9042 and RMSE of 0.0900 for predicting FNH3. The stacked ensemble model integrates strengths of individual algorithms, demonstrating strong prediction performance while avoiding overfitting. SHAP analysis revealed that Cu content in catalyst composition has the most significant impact on catalytic performance. Moreover, the combination of wet chemical reduction synthesis, carbon fiber (CF) conductive substrate, and HCl electrolyte is more favorable for enhancing catalytic activity. Additionally, moderately lowering working potential, controlling electrolyte volume at low-to-medium levels, reducing catalyst loading, and increasing electrolyte concentration synergistically enhance both YNH3 and FNH3.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3717-6
Poly(ethylene oxide) (PEO)-based all-solid-state polymer electrolytes (SPEs) hold significant promise for high-specific-energy and high-safety Li batteries, yet suffer from poor mechanical robustness and low Li+-conducting efficiency. Aramid nanofibers (ANFs), with exceptional mechanical strength and abundant intramolecular/intermolecular interactions, are effective additives, but their strictly symmetric interchain interactions generate a highly ordered hydrogen-bond network, producing inert aggregates that compromise electrolyte stability. Here, we construct a poly(ethylene glycol) (PEG)-mediated asymmetric interaction between ANF chains. PEG chains introduce weaker H-bonding acceptor sites, higher steric hindrance, and abundant lithiophilic groups, simultaneously disrupting strong symmetric ANF-ANF interactions and creating rapid Li-ion channels. The resulting electrolyte maintains excellent mechanical properties (yield stress of 3.25 MPa) and enables stable cycling of Li||Li symmetric cells for over 1600 h with low polarization voltage. In LCO||Li cells, the electrolyte achieves a capacity retention of 82.7% after 300 cycles at 1 C, markedly higher than the unmodified counterpart (35.5%). This synergistic optimization of interfacial compatibility and mechanical performance demonstrates a practical route toward safe, high-energy-density all-solid-state polymer batteries.
Chinese Journal of Environmental Engineering•2026•DOI: 10.12030/j.cjee.202511051
Photosynthetic bacteria (PSB) wastewater treatment technology is promising for simultaneous pollutant removal and resource recovery (e.g., single-cell protein, hydrogen). However, poor cell hydrophobicity and aggregation lead to low biomass retention and short sludge retention time, hindering engineering application. This study investigated the driving role and mechanism of upflow velocity as a key hydraulic selection pressure on PSB granulation under stepwise increasing organic loading rate (OLR). In laboratory up-flow photobioreactors (UPBR), comparative experiments were conducted with macro-index monitoring and micro-mechanism analysis. Results showed that under high upflow velocities of 3.00–6.30 m·h−1, PSB granular sludge with an average diameter of 285.58 μm and excellent settleability (sludge volume index, SVI = 22.73 mL·g−1) was successfully formed within approximately 60 days. Compared to the control, the granules in the experimental group were larger, with clear boundaries and compact structure, and significant enrichment of filamentous bacteria was observed. Mechanism analysis indicated that OLR provided nutritional driving force for microbial growth, while upflow velocity supplied high hydraulic shear force, physically screening and enriching settleable aggregates, and specifically inducing secretion of hydrophobic tryptophan-like proteins and humic acids (key extracellular polymeric substances, EPS). Additionally, core genera such as Xanthobacteraceae, possessing stress tolerance and EPS secretion functions, were enriched. This study reveals a chain mechanism of 'physical selection–biological response' centered on hydraulic selection, demonstrating that upflow velocity is a key controllable factor for PSB granulation, providing theoretical basis and technical pathway for solving PSB biomass washout and promoting resource-oriented treatment of high-strength organic wastewater.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3886-1
Organic-inorganic hybrid Mn(II) halides have attracted considerable attention for optoelectronic applications due to their environmental friendliness and high photoluminescence quantum yield (PLQY) originating from the d-d transition (4T1(G) → 6A1) of Mn2+. However, complex synthesis processes restrict their potential for low-cost, large-scale production. In this study, the Mn(II) halide (C22H22O2P)2MnBr4 was synthesized via a simple and efficient mechanochemical ball-milling approach, achieving high photoluminescence efficiency and production yield. The halide exhibits intense green emission centered at 520 nm with a PLQY of up to 96.1%. Combined experimental and theoretical characterizations confirm that the strong light emission originates from the synergistic interaction between organic cations and inorganic framework components. A white light-emitting diode (WLED) device based on (C22H22O2P)2MnBr4 was fabricated, exhibiting bright white light emission and a wide color gamut of 113% NTSC. Furthermore, a scintillation screen based on (C22H22O2P)2MnBr4 was fabricated and utilized to investigate internal structures of various objects. The screen demonstrates a high relative light yield of 70546 photons MeV−1, a low detection limit of 33.8 nGy air s−1, and a spatial resolution of up to 12.36 lp mm−1. Finally, by integrating the scintillation screen with a thin-film transistor (TFT) backplane, the resulting X-ray detector successfully enables simulated medical imaging of dental caries. This work establishes a robust foundation for large-scale synthesis of highly efficient luminescent Mn(II) halides and highlights their potential in multifunctional light-emitting applications.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3918-x
Electrochemical seawater electrolysis powered by renewable energy is a highly promising route toward sustainable hydrogen production, mitigating both energy shortages and carbon emissions. However, chloride-induced corrosion and competitive chlorine evolution reactions lead to metal site dissolution, severely impairing durability, especially at industrial-level current densities. Here, we report a nitrite-incorporated cobalt-iron layered double hydroxide (CoFe-NO2−-LDH) electrocatalyst that exhibits exceptional activity and stability for seawater splitting. The nitrite anion acts as an electronic pump: it accepts electrons to facilitate the formation of high-valence Fe species essential for initial OER activation, and donates electrons under high potential to suppress oxidative dissolution. Moreover, the negatively charged nitrite generates an electrostatic repulsion field that effectively repels chloride ions, protecting metal active sites from corrosion and segregation. The in situ characterization confirms that nitrite doping weakens the Fe–O covalency, which suppresses lattice oxygen participation and promotes a stable adsorbate-evolving mechanism, consequently leading to significantly enhanced operational stability. When used as an anode, the CoFe-NO2−-LDH catalyst achieves over 1000 h of stable operation at 1000 mA cm−2 in seawater electrolysis, demonstrating great potential for practical applications.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3978-0
All-polymer solar cells (all-PSCs) are promising for flexible and wearable electronics due to their excellent stability and mechanical stretchability. However, achieving high performance remains challenging due to difficulties in controlling the morphology of polymer blend films. In this study, a novel polymer donor, PBDTF-DTP, incorporating a weak electron-withdrawing yet large-dipole-moment dithienylphthalimide (DTP-2T) unit, was rationally designed and synthesized for ternary all-PSCs. Introducing PBDTF-DTP as a guest donor enables complementary light absorption and deepens the highest occupied molecular orbital level, simultaneously improving short-circuit current density (J_SC) and open-circuit voltage (V_OC). The large dipole moment of DTP-2T increases the dielectric constant, suppressing non-radiative energy loss and further boosting V_OC. Notably, PBDTF-DTP exhibits a relatively higher molecular electrostatic potential than the host donor, effectively tuning compatibility with both polymer donor and acceptor, regulating blend morphology, and promoting formation of a nanoscale fibrillar network. This optimized morphology facilitates efficient charge generation and transport while suppressing charge recombination. Consequently, ternary all-PSCs based on PM6:PBDTF-DTP:PYIT achieve a synergistic enhancement in J_SC, V_OC, and fill factor, yielding a remarkable power conversion efficiency of 18.01%, significantly higher than that of binary PM6:PYIT devices (15.51%). This study demonstrates that combining electrostatic potential optimization with a ternary strategy provides an effective approach to regulate morphology and achieve high-efficiency all-PSCs.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-4038-8
Fluorescent fibers and textiles that integrate outstanding optical performance with excellent flexibility hold significant promise for wearable applications and the Internet of Things (IoT). However, the poor stability of post-organized phosphor-based fibers and the high-cost, high-precision technology of electroluminescent fibers hinder their widespread adoption. Perovskite materials and organic semiconductors, owing to their high-efficiency, tunable luminescent properties and solution processability, are deliberately employed to fabricate desired fluorescent fibers and textiles via a spinning chemistry strategy. Recent advances have successfully applied these fibers to sensors, information displays, optical communications, and health monitoring. This review provides a comprehensive overview of recent progress in fluorescent fibers and textiles, covering spinning techniques, emitter design, and wearable applications. We highlight key challenges and future research directions in the fine design and synthesis of fluorescent fibers and textiles, as well as their system integration for practical wearable applications. The review emphasizes the potential of spinning chemistry to enable scalable production of robust, high-performance luminescent fibers, addressing stability and cost barriers. We discuss the use of metal halide perovskite quantum dots (PQDs) with high photoluminescence quantum yields (PLQY) and tunable emission, and organic semiconductor emitters with tailored molecular structures, as promising building blocks. The integration of these materials into fibers via spinning chemistry offers a facile, efficient, and controlled strategy, leading to ultra-stable CsPbX3 (X = Cl, Br, I) perovskite filaments with a PLQY of 24.5% and stretchability up to 2400%. The review concludes by outlining future research directions, including the development of lead-free perovskites and self-healing materials, to enhance stability and safety for commercial wearable technologies.
SCIENCE CHINA Materials•2025•DOI: 10.1007/s40843-025-3301-6
Aqueous zinc-ion batteries (AZIBs) are promising for grid-scale energy storage, but the H2V3O8 cathode suffers from poor electrical conductivity, vanadium dissolution, and structural instability, limiting rate performance and cycling stability. A polypyrrole-coated H2V3O8 composite (H2V3O8@Ppy) was developed. Density functional theory calculations reveal that Ppy interacts with HVO3 species with a binding energy of −1.97 eV, significantly stronger than with hydrated Zn2+ ions (−0.205 eV). This selective interaction enables the Ppy coating to capture dissolved HVO3 while permitting efficient transport of solvated Zn2+ ion clusters, thereby preventing structural degradation. The optimized H2V3O8@Ppy cathode delivers an initial capacity of 405 mA h g−1 at 100 mA g−1 and maintains nearly 100% capacity retention after 800 cycles at 2 A g−1. A quasi-solid-state AZIB incorporating this cathode exhibits excellent mechanical flexibility and superior long-term cycling performance. In situ XRD analysis reveals a two-step phase transformation mechanism of H2V3O8 during discharge/charge processes. This study presents an effective strategy for enhancing the structural stability of H2V3O8 cathodes in aqueous zinc-ion batteries.