SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4260-5
Lithium-sulfur batteries (LSBs) are recognized as a leading candidate for next-generation energy storage due to their high theoretical specific capacity (1675 mAh g⁻¹). However, the shuttle effect of lithium polysulfides (LiPSs) severely limits cycle life and energy efficiency. Here, we report a multi-interface engineering strategy employing a MnO₂-TiO₂@Ti₃C₂ MXene (MT@MX) heterojunction, synthesized via a facile redox reaction between MXene and KMnO₄, to modulate bidirectional polysulfide conversion. The 2D structure with high conductivity and abundant heterogeneous interfaces facilitates fast ion/electron transfer, reduces reaction energy barriers, and enhances adsorption via d-band center effects. The stepped built-in electric field (BIEF) in MT@MX lowers the migration energy barrier of LiPSs from catalytic MXene to TiO₂ and then to adsorptive MnO₂, enabling reversible migration across multi-interfaces. Optimized heterointerfaces synergistically integrate adsorption, diffusion, and catalytic conversion, yielding excellent cycling stability even at a high sulfur loading of 6.4 mg cm⁻². This work demonstrates that constructing heterojunctions with stepped BIEF offers a feasible approach to modulate interfacial diffusion and provides a new design strategy for high-performance LSB electrocatalysts.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4303-7
Sodium-ion batteries (SIBs) are promising for grid-scale storage and low-speed electric vehicles, yet their electrochemical behavior is governed by intricate mechanical-electrochemical coupling effects, rendering failure mechanisms not fully understood. Here, we develop an in-situ pressure-electrochemical monitoring system and reveal the failure mechanism of commercial Ah-level NaNi1/3Fe1/3Mn1/3O2//hard carbon (NNFMO//HC) sodium-ion pouch cells. Under an initial external pressure of 500 kPa, the full cell retains 90.07% of its capacity after 500 cycles at 0.5 C. Operating at the optimal pressure of 500 kPa effectively avoids heterogeneous sodium deposition in HC anodes, suppresses gas evolution from electrolyte decomposition, and prevents irreversible phase transitions in NNFMO cathodes during long-term cycling, thereby mitigating capacity degradation. Deviation from this optimal pressure leads to spatially non-uniform sodium deposition, accelerated electrolyte decomposition, and irreversible cathode phase transitions, collectively accelerating capacity fade. This work establishes a quantitative relationship between external pressure and pouch cell degradation, advancing SIBs development and application.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4197-4
Deep-blue organic light-emitting diodes (OLEDs) remain the most challenging primary-color emitters due to stringent exciton energy requirements. We strategically designed two innovative deep-blue emitters, SCZ-4AnCN and STPA-4AnCN, via systematic functionalization of an anthracene core with arylamino-decorated spirofluorene donors and cyano-substituted phenyl acceptors. Comprehensive theoretical and experimental analyses demonstrate that these spirofluorene-anthracene hybrids adopt precisely engineered distorted configurations, effectively suppressing detrimental intermolecular π–π stacking in condensed phases. The sp3-hybridized bridgehead carbons in spirofluorene units play a pivotal role by simultaneously restricting π-conjugation extension and fine-tuning donor–acceptor interactions, thereby stabilizing the lowest excited singlet (S1) state with dominant local excitation (LE) character. This molecular engineering yields exceptional deep-blue emission with remarkable efficiency. Notably, the materials exhibit unique high-lying reverse intersystem crossing (hRISC) behavior, enabling efficient triplet harvesting. Optimized doped devices incorporating SCZ-4AnCN achieve outstanding performance, including a maximum external quantum efficiency (EQE_max) exceeding 10% and CIE coordinates (0.154, 0.052) approaching the BT.2020 blue standard. Nondoped devices maintain impressive performance with an EQE_max of 7.51% and superior operational stability, demonstrating less than 10% efficiency roll-off at 1000 cd m−2. This work validates anthracene-based molecular architectures for deep-blue electroluminescence and establishes a transformative design paradigm for next-generation OLED emitters.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3694-3
Lithium metal anodes (LMAs) are among the most promising candidates for next-generation batteries with high energy density. However, their practical application is hindered by persistent challenges such as dendritic lithium growth, unstable solid electrolyte interphases (SEI), and poor Coulombic efficiency. Surface coating has emerged as a viable solution to address these limitations. In particular, atomic and molecular layer deposition (ALD/MLD) techniques offer unparalleled control over the fabrication of ultrathin, conformal coatings, making them especially suitable for stabilizing LMA interfaces. This review comprehensively summarizes recent progress in applying ALD and MLD methodologies to construct durable artificial interphases on LMAs. We discuss the underlying mechanisms through which these coatings inhibit dendrite formation, improve interfacial integrity, and facilitate uniform lithium-ion transport. The roles of inorganic ALD coatings, organic MLD coatings, and their organic–inorganic hybrids are systematically examined, with a focus on their chemical composition, deposition behavior, and electrochemical characteristics. Moreover, we highlight the enhanced performance achieved through the integration of ALD/MLD-engineered interfaces in full-cell systems. The review concludes with a discussion of current challenges and potential research avenues aimed at advancing the rational development of effective LMA protection strategies. Overall, this work offers valuable insights into the role of interfacial engineering via ALD and MLD in enabling the practical deployment of lithium metal batteries.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3648-2
Transient energy storage devices represent an emerging class of biodegradable power systems that provide temporary energy for implantable medical electronics before safely degrading in vivo. From early transient primary batteries to contemporary rechargeable batteries integrated with wireless charging systems, these devices have evolved to enable stable prolonged power supply. Through rational transient design and structural engineering, they achieve desirable electrochemical performance, tunable degradation rates, and mechanical compatibility with soft, irregular, and dynamic biological tissues. This work provides a critical review of state-of-the-art transient energy storage devices, including transient primary batteries, transient secondary batteries, and transient supercapacitors, with emphasis on their electrodes, electrolytes, encapsulation materials, fabrication processes, and applications. We critically analyze material selection strategies, transient design principles, and architecture design for various transient batteries and capacitors. Finally, we discuss existing challenges and outline future directions to guide the clinical translation of biodegradable power solutions for biomedical implants.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3860-0
Drug detection is critical for public health and security, yet reversible and highly sensitive sensing materials remain scarce. This study presents a novel ionogel sensor material, poly(ethylene glycol) diacrylate (PEGDA)/1-butyl-3-methylimidazole tetrafluoroborate, for reproducible detection of N-methylphenylethylamine (MPEA), a structural analogue of methamphetamine. The ionogel is fabricated by immobilizing a flowable ionic liquid within a PEGDA network via UV curing, preserving ionic mobility for efficient conduction. Integrated on a flexible poly(ethylene naphthalate) substrate, the sensor exhibits over 72.6% transmittance in the visible spectrum, enabling concealed attachment. Utilizing non-covalent interactions, the sensor achieves reproducible MPEA detection at sub-ppb levels at room temperature, with a theoretical detection limit of 317 ppt. It demonstrates high selectivity and consistency. Ionic conductivity was confirmed via current-voltage tests and impedance spectroscopy, and the sensing mechanism was clarified. The device maintains reliable performance under bending, indicating suitability for dynamic environments. With Bluetooth integration for wireless data transmission, the sensor shows strong potential for practical, discreet drug monitoring in real-world applications.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3805-1
The sluggish kinetics of oxygen reduction and evolution reactions (ORR/OER) at the air electrode impede the practical deployment of fiber zinc-air batteries (FZABs) for wearable electronics. Conventional bifunctional catalysts suffer from an inherent activity trade-off due to the distinct mechanisms of ORR and OER. Here, we propose a spatial decoupling strategy to overcome this limitation by engineering isolated Fe single atoms and Fe–Ir dual-atom pairs on a nitrogen-doped carbon matrix (Fe/FeIr-NC). In this architecture, Fe single atoms serve as ORR centers, while Fe–Ir pairs with tunable spacing are tailored for OER, enabling complete functional separation and independent optimization. The catalyst exhibits an ORR half-wave potential of 0.91 V and an OER overpotential of 250 mV at 10 mA cm−2, yielding a record-low bifunctional gap (ΔE = 0.57 V) that outperforms all reported single- and dual-atom catalysts. A flexible fiber zinc-air battery based on this catalyst delivers a peak power density of 3920 W kg−1, along with a 1.4-fold increase in energy efficiency and a 2.6-fold extension in cycle life compared to the commercial Pt/C + IrO2 benchmark. This work not only breaks the traditional activity trade-off in bifunctional catalysis but also offers a promising route toward high-performance power sources for wearable electronics.
The Chinese Journal of Process Engineering•2026•DOI: 10.12034/j.issn.1009-606X.225185
Sulfur hexafluoride (SF6), widely used as an insulating gas in high-voltage electrical equipment, possesses a global warming potential (GWP) 25,200 times that of CO2, necessitating efficient degradation technologies. This study employed computational fluid dynamics (CFD) to simulate the thermal catalytic degradation of SF6 in a fixed-bed reactor, integrating models for porous media, heat transfer, turbulence, and chemical kinetics. The simulations revealed significant radial non-uniformities in pressure, velocity, temperature, and species concentration distributions, with temperature identified as the dominant factor influencing degradation efficiency. Radial temperature gradients caused uneven reaction rates, with degradation rates near the wall substantially exceeding those at the central axis, thereby reducing overall SF6 conversion. To address this, structural optimizations were implemented, including reducing the reactor tube diameter and incorporating inert porous media with high thermal conductivity at both ends of the catalytic section. These modifications enhanced radial heat transfer, homogenized the temperature field, and improved the uniformity of reaction rates and species concentrations. Parametric studies on inlet gas velocity showed that both excessively low and high flow rates were detrimental: low velocities led to underutilization of the downstream catalyst and increased energy consumption, while high velocities deteriorated heat transfer and exacerbated radial temperature gradients. The optimal inlet velocity range was determined to be 0.4–0.8 m/s for a reactor tube inner diameter of 10 mm, balancing catalyst utilization, energy consumption, and degradation efficiency. This research provides data-driven guidance for the design and scale-up of SF6 catalytic degradation reactors.
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.
New Carbon Materials•2026•DOI: 10.1016/S1872-5805(26)61094-3
Aqueous zinc-iodine (Zn-I2) batteries are promising for large-scale energy storage due to their intrinsic safety, low cost, and high theoretical capacity (211 mAh g−1 for iodine). However, their practical application is hindered by the poor electronic conductivity of iodine, sluggish redox kinetics, and the shuttle effect of polyiodides. This review systematically analyzes the reaction mechanisms of iodine cathodes, including two-electron (I−/I2) and multi-electron (I−/I2/I+ and I−/I2/I+/IO3−) pathways, and identifies key bottlenecks. It then comprehensively summarizes recent advances in iodine host materials, categorized into three strategies: physical confinement, chemical adsorption, and electrocatalysis. Representative host materials such as porous carbons, covalent organic frameworks (COFs), porous aromatic frameworks (PAFs), polymers, MXenes, and Prussian blue analogs (PBAs) are discussed, with emphasis on the structure–performance relationships. The review highlights that heteroatom doping (e.g., nitrogen) enhances chemical adsorption of iodine species, while single-atom catalysts (e.g., Co, Zn) provide electrocatalytic sites that accelerate conversion kinetics. Finally, future research directions are proposed, including exploration of multi-electron systems, mechanistic elucidation of iodine conversion, development of advanced host materials, and optimization of zinc anodes, to accelerate the commercialization of Zn-I2 batteries.
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/s40843-025-3819-7
Selective solar-driven aerobic oxidation of biomass derivatives into valuable chemicals under ambient conditions is pivotal for sustainable chemical manufacturing but faces challenges from the conflict between O2 activation kinetics and selective C–H bond cleavage. This work demonstrates a spatial decoupling strategy in a precisely-engineered 2D/2D g-C3N4/ZnIn2S4 architecture, where ZnIn2S4 domains selectively activate O2, while adjacent g-C3N4 modulates electron transfer to O2 and tailors 5-hydroxymethylfurfural (HMF) binding configuration for selective C–H bond cleavage. This enables efficient selective conversion of HMF to 2,5-diformylfuran (DFF) via ambient aerobic photooxidation. When used alone, ZnIn2S4 produces mixed reactive oxygen species (·O2−/·OH) due to uncontrolled electron transfer during O2 activation. In-situ spectroscopy, Kelvin probe force microscopy (KPFM) and density functional theory (DFT) calculations demonstrate that the 2D/2D heterojunction, driven by its directed electric field, selectively activates O2 into ·O2− at ZnIn2S4 domains while suppressing ·OH generation by moderate electron transfer, mitigating over-oxidation. Adjacent g-C3N4 domains precisely anchor HMF via –OH group interactions, steering selective DFF formation. This spatial decoupling achieves a remarkable HMF-to-DFF photo-conversion rate of 1517.5 μmol g−1 h−1 with 99.4% selectivity under ambient air, outperforming many reported state-of-the-art catalysts and maintaining durable cycling performance. The work establishes a spatial decoupling principle to overcome O2 activation kinetics and site competition thermodynamics, paving the way for advanced catalyst design for sustainable energy and the environment.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3933-9
The global cold chain consumes vast amounts of energy and emits greenhouse gases, while many regions lack proper refrigeration. To address this, we developed a dual-layer electrospun membrane (PZ-PML) for energy-free fruit preservation. The top PVDF-HFP/ZIF-8 layer offers 97.64% solar reflectance and 92.5% mid-infrared emissivity, providing 70 W/m2 radiative cooling. The bottom PAN/MIL-101/LiCl layer, with 2.18 g/g water uptake at 80% RH, delivers ~156 W/m2 evaporative cooling, lowering surface temperature by 6.1 °C under ~400 W/m2 irradiation. The membrane also shows ≥99% antibacterial efficiency against E. coli and S. aureus. Applied to strawberries, it reduced dehydration to 20.2% after 9 days, compared to 68.2% and 74.4% in controls. Additionally, it demonstrates durability, superhydrophobicity, and UV stability. This scalable solution offers energy-free fruit cooling, reducing postharvest losses while maintaining quality and safety.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3768-8
Damping materials are critical for mitigating vibrations and noise across various frequencies by converting mechanical energy into thermal energy. However, achieving a simultaneous high damping capacity and high toughness remains a formidable challenge. Here, we report a supramolecular polymer (SMP) that integrates high damping and toughness through the synergistic action of dynamic hydrogen bonds and side-chain relaxation. The polymer exhibits exceptional mechanical properties: a Young's modulus of 47.08 MPa, elongation at break of 605%, and toughness of 15.24 MJ m−3. The dynamic hydrogen bonds confer dual responsiveness to strain rate and temperature, with a 6.7-fold variation in Young's modulus under different stretching rates and a five-order-of-magnitude change in storage modulus across a temperature range. Under mechanical force, the interpenetrating side chains undergo mutual friction, enabling repetitive energy dissipation. This mechanism yields superior damping ability with a loss factor (tanδ) of 1.6 at 1 Hz, demonstrating outstanding performance in vibration absorption and noise reduction. The material's design offers a promising strategy for developing high-performance damping materials that balance energy dissipation and mechanical robustness, suitable for applications in wearable electronics, protective equipment, and structural vibration control.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3944-9
Hard carbon (HC) is a promising anode material for sodium-ion batteries (SIBs) but suffers from low initial Coulombic efficiency (ICE) and unstable solid electrolyte interphase (SEI). Here, we report a dual-functional strategy combining surface engineering and solution chemical pre-sodiation. A graphitic carbon coating on HC acts as a conductive buffer network and shields surface defects, while sodium biphenyl (Na-Bp) pre-sodiation drives sodium ions into the material via a potential difference, inducing a pre-SEI layer that matures into a thin, dense, NaF-rich inorganic SEI during cycling. This approach compensates for irreversible sodium loss and enhances cycling stability. The pre-sodiated electrode (pCH4-HC) achieves an ICE of 99.5% and a reversible capacity of 321.7 mAh g−1, compared to 54.2% for untreated HC. Long-term cycling shows 74.0% capacity retention after 1000 cycles at 300 mA g−1. In full-cells with NaNi1/3Fe1/3Mn1/3O2 (NFM) cathode, pCH4-HC||NFM delivers 81.9 mAh g−1 after 100 cycles, demonstrating excellent stability and rate performance. This dual-strategy approach validates the adaptability of pre-sodiation technology for high-performance SIBs.
Journal of Fuel Chemistry and Technology•2026•DOI: 10.1016/S1872-5813(26)60645-7
Volatile organic compounds (VOCs) from diverse sources severely impact atmospheric environment and human health. Manganese (Mn)-based catalysts, with exceptional structural diversity and abundant redox versatility, are widely used in catalytic combustion of VOCs. This review summarizes the catalytic performance of various Mn-based catalysts, emphasizing preparation strategies for high-performance materials and systematically analyzing how active site construction influences VOC combustion. Catalytic oxidation mechanisms are expounded in detail. Key aspects include MnOx polymorphs, doping with alkali metals (e.g., K+), transition metal composites (Co, Cu), and noble metal loading (Pt, Pd, Au). Performance metrics such as T90 values, oxygen vacancy concentrations, and specific surface areas are discussed. The review provides insights into deactivation mechanisms and anti-poisoning strategies, offering practical guidance for VOC pollution remediation.
Environmental Chemistry•2026•DOI: 10.7524/j.issn.0254-6108.2026030202
High nitrogen (N) inputs, low N use efficiency, and substantial greenhouse gas emissions constrain sustainable double-cropping rice production in the middle and lower reaches of the Yangtze River. To evaluate whether humic acid urea (HAU) can reconcile yield stability with N reduction and carbon mitigation, a field experiment was conducted in a double-cropping rice system. Five treatments were established: conventional urea at the recommended N rate (U), HAU at the recommended N rate (HAU), conventional urea with a 20% reduction in N input (U-20), HAU with a 20% reduction in N input (HAU-20), and a no-N control (CK). Rice yield, N uptake and utilization, and the full life-cycle carbon footprint were quantified. Results showed that HAU significantly increased double-cropping rice yield by 6.46% (early rice) and 8.76% (late rice) compared to U (P < 0.05). HAU-20 maintained yield equivalent to U, while U-20 significantly reduced yield. HAU-20 significantly improved nitrogen fertilizer apparent utilization rate, agronomic efficiency, and partial factor productivity. Specifically, apparent utilization rate increased by 9.24 percentage points (early rice) and 7.80 percentage points (late rice); agronomic efficiency increased by 18.51% and 26.69%, and partial factor productivity by 22.79% and 25.58% for early and late rice, respectively (P < 0.05). Life-cycle carbon footprint was significantly reduced by 26.25% (early rice) and 40.38% (late rice) under HAU-20 compared to U, with per-unit product carbon footprint reduced by 0.22 t CO2-eq·t−1 and 0.86 t CO2-eq·t−1, respectively. The reduction was primarily attributed to decreased CH4 and N2O emissions: early rice CH4 and N2O cumulative emissions decreased by 28.92% and 44.34%, and late rice by 44.46% and 63.85% (P < 0.05). In conclusion, HAU with 20% N reduction sustains yield, enhances N use efficiency, and significantly lowers carbon footprint, offering a viable path for green and low-carbon double-cropping rice production.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-4025-y
Gd3+-sensitized Tb3+-based glasses are high light-yield scintillators. Energy transfer sensitization between Gd3+ and Tb3+ is well-recognized. Gd3+ ions are also found to typically modulate the interionic distances of Tb3+ ions; however, the mechanism why this effect enhances the latter’s photoluminescence still remains unclear. This work focuses on Gd3+, Tb3+ co-doped La2O3-B2O3-SiO2 (LBSO), first demonstrating Tb3+ clusters via spectroscopy. LBSO’s optimal Tb3+ single-doping concentration is 37%, rising to 50% with 20% Gd3+. The LBSO:20%Gd3+,50%Tb3+ sample exhibits a 542 nm emission intensity 2.22 times that of the 37%Tb3+ single-doped sample, 38% scintillation efficiency (vs. BGO), and >20 lp mm−1 X-ray resolution. The introduction of Gd3+ increases the interionic distance between Tb3+ ions within the clusters, thereby suppressing the concentration quenching effect and enhancing the fluorescence emission. We propose this mechanism as “cluster-dispersion sensitization effect”. This effect was further confirmed in other glass systems (LBSO:Lu3+, Tb3+, LBSO:Y3+, Tb3+, Bi-based:Lu3+, Tb3+, etc.). Spectroscopic analysis shows Gd3+-Tb3+ energy transfer efficiency up to 80%. In conclusion, Gd3+ synergistically enhances Tb3+ fluorescence via both effects. These findings not only fully elucidate the sensitization mechanism of Gd3+ ions in Gd3+, Tb3+ co-doped scintillating glasses but also provide new insights for researching the manipulation of activator ion clusters in luminescent materials. In search for novel scintillators, cluster-dispersion sensitization effect may greatly improve their spatial resolution via intrinsic architectures design in glasses, ceramics, thin films, and nanoparticles.
Journal of Environmental Engineering Technology•2026•DOI: 10.13205/j.hjgc.202608024
Microbial remediation is a widely used technology for treating chromium pollution in groundwater. This study conducted a bibliometric analysis of 441 papers from the Web of Science Core Collection (2010–2024) using CiteSpace, VOSviewer, and Pajek. The publication trend increased over the period, with three developmental stages identified: early (2010–2016) focusing on basic treatment methods, intermediate (2017–2019) on intrinsic mechanisms, and recent (2020–2024) on process optimization. Biological adsorption and reduction were identified as the primary mechanisms. Correlation and principal component analyses of environmental factors (temperature, pH, initial Cr concentration, reaction time) revealed temperature as the key factor affecting remediation efficiency. The removal efficiencies and mechanisms of various dominant bacterial strains were summarized to guide strain selection. Future research should focus on microbial community synergy, nanomaterial integration, and environmental optimization to enhance remediation efficiency.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3968-3
The commercialization of perovskite solar cells (PSCs) is hindered by stability issues primarily stemming from interfacial defects. This study employed a machine learning (ML) screening approach and constructed a learnable weighted ensemble model (LWEM) to enhance prediction robustness for identifying effective interface passivation materials. The ML model predicted that an imidazolium salt-based interface modifier, 1-benzyl-3-methylimidazolium tetrafluoroborate (BMT), is suitable for planar n-i-p PSCs. Subsequent experimental results demonstrated that BMT provides synergistic passivation via an 'ion-coordination dual-lock' mechanism that significantly suppresses non-radiative recombination, facilitates hole extraction, and improves the quality of the perovskite film. The BMT-modified devices achieve a significant increase in power conversion efficiency (PCE) from 22.45% to 24.89% under AM 1.5G illumination, and attain a high PCE of 41.31% under 1000 lux light emitting diode (LED) indoor lighting. Additionally, the modified devices exhibit outstanding stability under long-term storage and maximum power point tracking conditions. This work provides a strategy for developing high-performance and highly stable PSCs for both indoor and outdoor applications.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-4162-0
The urea oxidation reaction (UOR) offers a low-energy pathway for hydrogen production via water electrolysis, but Ni-based catalysts suffer from Ni self-oxidation reaction (NSOR) that wastes energy and poisons active sites via strong CO2 adsorption. Here, we design MoN/Ni heterostructures to optimize the electronic structure of Ni sites, suppressing NSOR. X-ray photoelectron spectroscopy and X-ray absorption spectroscopy confirm the formation of electron-rich Mo and electron-deficient Ni active pairs. In-situ spectroscopy, electrochemical tests, and density functional theory calculations reveal that electron-rich Mo sites enhance urea adsorption, while electron-deficient Ni sites prevent NSOR, facilitating urea activation, intermediate conversion, and CO2 desorption. The synergistic effect yields a current density of 100 mA cm−2 at only 1.39 V vs. RHE in 1 M KOH + 0.33 M urea, outperforming many NiOOH-based catalysts. This work introduces a novel high-performance catalyst with electron-rich/electron-deficient active pairs for efficient UOR.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-4274-x
The escalating power density of electronic devices necessitates effective visible-light shielding in advanced packaging to ensure circuit security and long-term reliability. Photosensitive polyimides (PSPI) serve dual roles as photodefinable dielectrics and structural layers, but intrinsically black PSPI (B-PSPI) suffer from competitive ultraviolet (UV) absorption between chromophores and photosensitive moieties, limiting co-optimization of deep visible-light blocking and lithographic resolution. Here, we report a main-/side-chain spatial decoupling strategy to synthesize a novel B-PSPI. By polymerizing pyromellitic dianhydride with a main-chain coloring monomer (4,4'-diaminodiphenylamine) and a side-chain photosensitive monomer (1,4-dihydropyridine-functionalized diamine), the monomer stoichiometric ratio is precisely engineered. This design spatially isolates functional groups and enhances charge transfer, yielding exceptional visible-light shielding (CIE L* index of 21.39, cut-off wavelength ≈ 555 nm) with good lithographic sensitivity. UV exposure triggers in situ generation of coordination sites from photosensitive groups, anchoring active metal species for electroless copper plating. This enables direct additive fabrication of fine copper lines (40/80 μm line width/spacing) with robust Cu/B-PSPI interfacial adhesion of 16.6 MPa. This work provides a robust molecular design paradigm for B-PSPI, integrating superior optical shielding and surface metallization for high-density interconnect applications.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4175-3
The precise manipulation of microdroplets (diameter < 20 μm) on solid substrates is critical for applications in environmental monitoring, targeted drug delivery, clinical diagnostics, and public health. A major challenge is contact angle hysteresis (CAH), which pins droplets and impedes mobility. Here, we introduce a crack-mediated capillary bridging strategy for efficient capture and directional transport of microdroplets. The approach employs a stretchable elastomeric substrate with island-like microstructures. Under longitudinal tensile stress, controlled fracture generates densely packed, directionally oriented surface cracks. These fissures induce localized capillary forces that counteract adhesion-induced resistance, enabling programmable droplet motion. Experiments capturing airborne pathogenic agents demonstrated a 14.2-fold enhancement in enrichment efficiency compared to flat surfaces. This work integrates fracture mechanics with capillary-driven fluid dynamics, establishing a framework for next-generation microfluidic systems. The findings offer promising avenues for biosensing, pollutant analysis, and interdisciplinary applications.