SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4321-x
Poly(ethylene oxide) (PEO)-based solid polymer electrolytes are leading candidates for solid-state lithium metal batteries due to their flexibility, processability, and interfacial compliance. However, the strong crystallization tendency of PEO and limited lithium salt dissociation result in low ionic conductivity and low Li+ transference number, exacerbating concentration polarization and interfacial instability. Introducing metal-organic framework (MOF) fillers into PEO matrices has emerged as an effective route to regulate polymer-chain packing and promote salt dissociation via Lewis acid-base interactions. Yet, most studies focus on cubic ZIF-8, whose saturated Zn coordination environment limits intrinsic Lewis acidity and restricts its ability to immobilize TFSI- anions. Simultaneously, simple physical blending often leaves discontinuous interfacial transport regions in composite electrolytes, so improved salt dissociation does not automatically translate into fast Li+ transport. Here we report a PEO-based composite polymer electrolyte, denoted as PZS, that couples monoclinic ZIF-8 (M-ZIF-8) nanosheets with a thin SiO2 layer. The design combines two complementary functions: the under-coordinated Zn sites in M-ZIF-8 provide strong Lewis acid centers to adsorb TFSI- and promote LiTFSI dissociation, while the hydroxyl-rich SiO2 shell improves compatibility with the PEO matrix and helps construct continuous interfacial Li+ transport pathways. Benefiting from this synergy, the optimized PZS electrolyte delivers an ionic conductivity of 8.3 × 10-4 S cm-1 and a Li+ transference number of 0.57 at 60 ℃, together with an electrochemical stability window of 5.2 V. Li||Li symmetric cells remain stable for over 1200 h at 0.1 mA cm-2, and LFP||Li full cells retain 80% of their capacity after 400 cycles at 0.5 C.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4310-4
Electrically actuated microrobots, typically defined as devices under 5 cm in length and 5 g in mass, offer distinct operational advantages over thermally, magnetically, or optically driven counterparts, particularly at the centimeter scale where external field-generation hardware imposes prohibitive cost and redundancy. This review systematically examines the intrinsic coupling mechanisms between the electromechanical performance parameters of functional materials and the resulting locomotion modes of microrobots. The central premise is that material-level electromechanical properties—actuation strain, blocking force, energy density, and drive voltage—directly govern critical system-level capabilities including obstacle-crossing ability and energy efficiency. The authors analyze how distinct material classes, such as dielectric elastomers, piezoelectric ceramics, and shape-memory alloys, map to specific locomotion modalities, thereby delineating the current performance boundaries of the field. The review identifies that power supply and control strategy remain the two dominant bottlenecks limiting autonomous operation and long-duration mission execution. By establishing a direct correlation between material selection and locomotion performance, this work provides a structured framework for researchers to set research directions and performance targets. The analysis concludes with a summary of challenges and future trends, emphasizing the need for materials that simultaneously satisfy low drive voltage, high strain, and high power density requirements for real-world deployment in unstructured environments.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4263-3
Monolayer black phosphorus (phosphorene) exhibits a direct bandgap and strong in-plane anisotropy, making it a promising candidate for near-infrared (NIR) optoelectronic devices. However, the precise modulation of its excitonic emission via anisotropic strain remains insufficiently understood, particularly regarding the contrasting strain responses of phosphorene versus transition metal dichalcogenides (TMDs). Here, we combine experimental characterization with tight-binding (TB) modeling to elucidate the strain-dependent bandgap evolution in phosphorene. Using a four-band TB model, we derive the bandgap at the Γ point as E_g^BP = 4t1 + 2t2 + 4t3 + 2t5, with hopping parameters t1 = -1.220 eV, t2 = 3.665 eV, t3 = -0.205 eV, t4 = -0.105 eV, and t5 = -0.055 eV. Under tensile strain along the zigzag (ZZ) direction, the interatomic distance associated with t1 increases, reducing the magnitude of |t1|. Since t1 is negative, the bandgap increases, contrary to the behavior of monolayer MoS2, where tensile strain decreases the bandgap due to positive hopping parameters t11, t22, and t12. This anisotropic strain response enables selective tuning of NIR exciton emission. Our findings provide a quantitative framework for strain engineering in phosphorene-based NIR devices, highlighting the critical role of hopping parameter signs in determining bandgap modulation.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4176-y
Three-photon microscopy (3PM) in the near-infrared-III (NIR-III) window (1600–1840 nm) enables high-resolution visualization of cerebral vasculature in vivo, but its imaging depth and quality are limited by the performance of fluorescent probes. Here, we report a probe optimization strategy transitioning from mirror symmetry to centrosymmetry, yielding a highly symmetric aggregation-induced emission (AIE) molecule, T4PQ. The centrosymmetric structure aligns donor-acceptor units, promoting uniform electron cloud delocalization and directional charge transfer, which enhances exciton formation and suppresses non-radiative decay, thereby increasing fluorescence quantum yield. This symmetry also boosts the three-photon absorption cross-section by enhancing electron delocalization and transition dipole moment, enabling stronger nonlinear optical responses under long-wavelength excitation. T4PQ nanoparticles (T4PQ NPs) exhibit an enhanced three-photon absorption cross-section, high fluorescence quantum yield, and excellent photostability. In murine models, T4PQ NPs achieved three-dimensional cerebrovascular imaging at a depth of 1785 μm and real-time hemodynamic observation in microvessels at 1006 μm depth, with good biocompatibility. These results validate the advantage of centrosymmetric molecular design for deep-brain imaging probes, offering a high-performance tool for neurovascular research.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3685-7
NiMo-based catalysts are promising for the hydrogen evolution reaction (HER), yet optimizing their electronic structure and enhancing mass transfer remain challenging. Here, we report a route to synthesize two-dimensional (2D) porous Mo2N-Ni heterojunction nanosheets with tuned Ni/Mo ratio for enhanced alkaline HER. The precursor is assembled from polyoxometalate clusters (PMo12) and layered Ni(OH)2. The interaction between PMo12 and Ni(OH)2 suppresses particle agglomeration during pyrolysis, yielding 2D porous sheets composed of small Mo2N-Ni units. Electron transfer from Ni to Mo2N redistributes electrons at the heterojunction, optimizing intermediate adsorption/desorption. The porous structure enhances mass transfer, reducing catalyst impedance. The optimized catalyst exhibits an overpotential of 19 mV at 10 mA cm−2, comparable to commercial Pt/C. An anion exchange membrane (AEM) electrolyzer pairing this catalyst with NiFe-LDH achieves 500 mA cm−2 at 1.80 V and operates stably for 300 h. This assembly method offers a scalable strategy for efficient catalyst production.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3485-0
Aqueous Zn-ion batteries (AZIBs) are promising for next-generation energy storage due to high safety and low cost, but their practical use is limited by Zn dendrite growth and side reactions. An ideal anode/electrolyte interphase should block water contact while enabling fast Zn2+ transport, yet conventional thick interphases increase ionic resistance and polarization. Here, we report a hydrophobic yet ultrathin (~5 nm) polydimethylsiloxane (PDMS) artificial interphase fabricated via conformal coating. The oxygen-rich PDMS layer selectively coordinates Zn2+ while its superhydrophobicity excludes water, and the ultrathin nature enables rapid Zn2+ conduction, enhancing the Zn2+ transference number by 2.28-fold. This synergistic design suppresses dendrites and mitigates hydrogen evolution. The PDMS-modified anode achieves 99.9% Coulombic efficiency over 3500 cycles, 880-hour symmetrical cell operation at 60% depth of discharge, and 2500-cycle full-cell endurance under lean Zn conditions (N/P ratio 5.7). Proof-of-concept pouch cells sustain 1400 cycles with a 0.01% decay rate. This molecular-scale interphase strategy provides a feasible pathway toward practical AZIB implementation.
Environmental Chemistry•2026•DOI: 10.7524/j.issn.0254-6108.2025022302
The escalating environmental contamination by mercury ions (Hg2+) poses severe risks to ecosystems and human health, necessitating the development of rapid, sensitive, and cost-effective detection methods. In this study, Fe1-xS@CNT composite nanozymes were synthesized via a straightforward solvothermal approach. The nanozymes exhibit uniform morphology, structural stability, and significant peroxidase (POD)-like activity. The incorporation of carbon nanotubes (CNT) facilitates electron transfer, enhancing the Fenton reaction between Fe2+/Fe3+ to generate abundant reactive oxygen species (ROS), primarily hydroxyl radicals (·OH) and superoxide anions (·O2−). The synergistic action of these ROS and photogenerated holes (h+) promotes the oxidation of 3,3',5,5'-tetramethylbenzidine (TMB) to a blue-colored product (oxTMB), establishing a colorimetric system of Fe1-xS@CNT + H2O2 + TMB. The specific binding of S2− on the nanozyme surface to Hg2+ inhibits POD activity, reducing the absorbance of the system. This principle was harnessed to develop a colorimetric method for Hg2+ quantification in environmental water samples. The method demonstrates a linear range of 0.1–500 μg·L−1 and a limit of detection (LOD) of 0.04 μg·L−1. Validation in real water samples (campus and tap water) showed recoveries between 94.4% and 111.1% with relative standard deviations (RSD) below 3.0%, comparable to atomic fluorescence spectrometry. The method offers advantages of simplicity, rapid analysis, and naked-eye visibility, providing a novel approach for on-site monitoring of heavy metal pollutants.
Journal of Fuel Chemistry and Technology•2026•DOI: 10.1016/S1872-5813(26)60656-1
Under the carbon neutrality strategy, biomass boilers have emerged as key facilities for renewable energy utilization, yet are characterized by low-concentration SO2 emissions. Ca-based dry desulfurization presents a promising technology for biomass boiler flue gas purification due to its compact structure, low capital investment and simple operation and maintenance. However, it is generally limited by the low adsorbent utilization and insufficient desulfurization efficiency. Herein, this study developed a novel Ca-Mn composite adsorbent through a synergistic strategy integrating F127 surfactant to optimize dispersion and Mn loading to enhance oxidation efficiency. The resulting adsorbent not only significantly increased the breakthrough sulfur capacity of the Ca-based material but also markedly improved the synergistic removal of Hg0. It was demonstrated that the introduction of Mn elements and F127 effectively suppressed the agglomeration of Ca(OH)2 crystallites and induced an oxygen vacancy-rich structure, while simultaneously optimizing the pore structure of the adsorbent. The modified adsorbent exhibited the enlarged specific surface area and pore volume, which favored to enhance the reaction mass transfer and effectively prevent the pore blockage and coverage of active sites by desulfurization products. The Mn sites and oxygen vacancies formed catalytic centers, which not only accelerated the desulfurization reaction by promoting SO2 oxidation but also enabled the adsorbent to couple with Hg0 catalytic oxidation functionality. Consequently, the simultaneous removal of SO2 and Hg0 was significantly enhanced on the Ca-Mn composite adsorbent.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-4058-4
Bacterial infection following endometrial injury delays tissue regeneration and may progress to endometritis and other reproductive disorders. Photodynamic therapy (PDT) offers a promising antibacterial strategy in the post-antibiotic era, yet its efficacy is often limited by rapid recombination of photogenerated charge carriers and poor penetration of visible excitation light. Here, we report a previously unexplored upconversion-mediated, Type I dominant photodynamic antibacterial uterine scaffold specifically designed for infection-associated endometrial injury. The core innovation is the construction of a Schottky Ag0-Ag2S heterojunction on NaYF4:Yb,Tm nanoparticles using ZIF-8 as a sacrificial precursor, enabling efficient charge separation and oxygen-independent hydroxyl radical generation, overcoming the oxygen dependence of conventional Type II PDT under hypoxic uterine conditions. The upconversion core permits deep-tissue-penetrable near-infrared (NIR) activation. Beyond instantaneous PDT, dynamic release of Ag+ ions provides synergistic bactericidal activity, enabling spatiotemporally coordinated biofilm disruption. These nanostructures were incorporated into patient-customizable, biodegradable poly(L-lactic acid) (PLLA) scaffolds fabricated by selective laser sintering, achieving simultaneous antibacterial therapy and endometrial regeneration in a single platform. This integration of an oxygen-independent PDT mechanism, MOF-templated heterojunction engineering, and 3D printed personalized uterine implants constitutes a comprehensive therapeutic strategy not previously reported for treating infection and endometrial injury.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-4173-x
Ferroelectric memory, with its promise of low power consumption, high writing speed and exceptional endurance, requires the scaling of ferroelectric films to ultrathin dimensions—often just a few atomic layers thick. However, such extreme thinning risks destabilizing or even erasing electric polarization, mainly due to the detrimental depolarization field. Remarkably, certain ferroelectrics exhibit an intrinsic immunity to this effect, as predicted theoretically and confirmed experimentally. Examples include improper ferroelectrics, hyper ferroelectrics, engineered heterostructures, and low-dimensional van der Waals ferroelectrics. This review systematically examines these unique materials, unravelling the fundamental physics behind their polarization robustness and the mechanisms enabling them to resist the depolarization field. By bridging theory with experimental advances, we aim to inspire the design of next-generation ferroelectrics capable of overcoming critical challenges encountered in practical ferroelectric memory devices.