SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4500-8
Electroreduction of CO2 to ethylene offers a promising route for renewable electricity storage, yet achieving high ethylene selectivity at industrial current densities remains challenging due to the large energy barrier for C–C coupling. Here, we report a “MOF-assisted in situ doping” strategy to introduce the oxophilic nonmetal phosphorus (P) into the copper oxide (CuO) lattice, constructing a localized Cu–P dual-site adsorption configuration for the key *OCCHO intermediate. The optimized catalyst delivers an impressive Faradaic efficiency of 64.6% for ethylene with a partial current density of 646 mA cm-2. Comprehensive structural characterizations demonstrate that P mainly occupies Cu sites, generating abundant lattice defects and oxygen vacancies. In situ synchrotron infrared spectroscopy and theoretical calculations reveal that P doping modulates the electronic structure of Cu, optimizes the binding energies of *CO and *CHO, and stabilizes *OCCHO via P–O/Cu–C dual-site adsorption, thereby significantly lowering the asymmetric C-C coupling energy barrier to 0.74 eV. This work highlights a dual-site microenvironment regulation strategy for CO2-to-ethylene electroreduction.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4439-4
Silk fibroin (SF) hydrogels are promising for neural regeneration but suffer from progressive stiffening due to excessive β-sheet assembly, limiting their use in traumatic brain injury (TBI) repair. This study introduces a dopamine (DA)-mediated synergistic topological entanglement strategy to construct an SF-DA/gelatin-DA composite hydrogel (SG). The system integrates covalent cross-linking, net cationic electrostatic repulsion, hydrogen bonding, and π-π stacking to regulate SF assembly dynamics at the molecular level. The resulting SG hydrogel maintains stable mechanical softness over extended periods, with a storage modulus of approximately 1.2 kPa after 28 days, compared to a 5-fold increase in pure SF hydrogels. The sustained softness promotes neural stem cell (NSC) proliferation and differentiation, with a 2.5-fold increase in βIII-tubulin expression and a 1.8-fold increase in GFAP expression after 14 days. In a rat TBI model, SG hydrogel implantation reduced glial scar formation by 40% and improved neurological function scores by 30% at 8 weeks. The hydrogel degrades at a rate of 12% per week, matching tissue regeneration. This multi-crosslinking approach offers a clinically translatable strategy for neural tissue engineering, addressing the critical bottleneck of mechanical instability in SF-based biomaterials.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4343-7
Piezoelectric materials interconvert mechanical and electrical energy, but piezoceramics are brittle while PVDF-based ferroelectric polymers exhibit low piezoelectric coefficients (d33 ≈ -30 pC N-1). Chemical modification via morphotropic phase boundary (MPB) engineering has raised d33 in P(VDF-TrFE) to -63.5 pC N-1, and to -69 pC N-1 with stretching, but intrinsic piezoelectricity in relaxor terpolymers remains limited. Here, relaxor ferroelectric P(VDF-TrFE-CFE) with varying C=C double bond (DB) content is synthesized via dehydrochlorination. Structural and electrical characterization reveals that increasing DB content stabilizes long-range ferroelectric order while suppressing short-range relaxor characteristics, forming a trans/helix phase boundary. At a critical DB content of 2.0 mol%, a markedly enhanced intrinsic d33 of -129.0 pC N-1 is achieved, outperforming previous MPB approaches. This finding addresses the fundamental bottleneck of low piezoelectric response in flexible ferroelectric polymers and provides a viable route for high-performance wearable electromechanical devices.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4499-9
Two-dimensional (2D) ferroelectric materials have emerged as promising candidates for next-generation non-volatile memory and neuromorphic computing, yet their integration into commercial devices faces substantial hurdles. This review critically examines the structure, properties, and applications of ferroelectric 2D In-Se materials, with a focus on their potential to overcome the scaling and retention limitations of conventional ferroelectrics such as Hf0.5Zr0.5O2 (HZO). The manuscript synthesizes recent advances in In-Se ferroelectricity, including the mechanisms of polarization switching, modulation strategies, and device demonstrations. Key experimental benchmarks from the literature are analyzed, such as the high data retention and read endurance of 5-nm HZO ferroelectric FETs (IEEE Electron Device Lett, 2019, 40(3): 399-402) and the giant barrier height modulation in ferroelectric van der Waals heterojunctions (Nat Electron, 2020, 3: 466-472). The review also highlights the performance of sliding ferroelectric memories based on rhombohedral-stacked bilayer MoS2, which achieved non-volatile storage with low power consumption (Nat Commun, 2024, 15: 10796). Despite these advances, critical challenges remain: the scalability of In-Se synthesis, the control of domain dynamics at the nanoscale, and the cost parity with silicon-based technologies. By consolidating empirical data and identifying unresolved bottlenecks, this review provides a roadmap for researchers and engineers aiming to translate 2D ferroelectric In-Se from laboratory curiosities to manufacturable devices. The analysis underscores the need for standardized metrology and accelerated lifetime testing to validate industrial viability.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4358-y
Oxygen electrocatalysis underpins the viability of proton-exchange-membrane water electrolyzers and rechargeable Zn–air batteries, yet commercial deployment remains constrained by the sluggish kinetics of the oxygen evolution reaction (OER) and oxygen reduction reaction (ORR), which impose overpotentials exceeding 300 mV and accelerate catalyst degradation. This review, submitted to SCIENCE CHINA Materials (Manuscript ID SCMs-2026-1384.R1), synthesizes recent advances in rational catalyst design guided by the direct observation and theoretical treatment of reaction intermediates. The authors compile evidence from in situ characterization and computational modeling to establish that intermediate binding energies—particularly *OOH, *O, and *OH on Ru, Ir, Co, and Fe–N–C active sites—serve as predictive descriptors for activity and stability. Cited works demonstrate that 4f-modified Ru–O polarity, spin-balanced Janus Ir–Co magnetic atoms, and aligned d-orbital energy levels in dual-atom sites can shift rate-determining steps and lower activation barriers. The review further examines interfacial microenvironment engineering via anion adsorption, ligand functionalization, and S,N co-doped carbon confinement, which modulate local pH, water orientation, and mass transport. Emphasis is placed on dual-site mechanisms, including FeN6–CoN4 and Co-substituted Ni coordination polymers, where synergistic strong–weak adsorption coupling alters ORR pathways from adsorbate evolution to dissociation. The manuscript provides a critical assessment of descriptor reliability, noting that intermediate binding alone cannot capture dynamic reconstruction, electrolyte effects, or long-term operational stability. By integrating in situ spectroscopy with descriptor-based design, the review offers a framework for translating mechanistic insight into durable, cost-effective oxygen electrocatalysts for industrial electrolysis and metal–air batteries.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4494-9
Superionic conductors exhibit high cation mobility arising from weak binding and continuous transport pathways, atomistically characterized by extensive structural disorder and partial occupancy akin to amorphization. This disorder, whether confined to a cation sublattice or extended to full amorphization, strongly impedes lattice thermal transport, rendering these materials intrinsically ideal thermal insulators. This work investigates Ag26I18W4O16, a superionic conductor tunable from fully amorphous to single-crystalline states, as a model system to probe the impact of disorder and amorphization on thermal transport. Extensive Ag+ disorder, in both crystalline and amorphous phases, reduces thermal conductivity to approximately the theoretical lower bound of 0.16 W/m-K with virtually no temperature dependence, while concurrently achieving the lowest mean sound velocity ever recorded for a dense solid. Pair distribution function (PDF) analysis of synchrotron X-ray total scattering data indicates that short-range disorder (< 5 Å), rather than long-range periodicity, governs thermal insulation performance in both phases. These findings suggest a design strategy reconciling structural stability with glass-like thermal insulation.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4404-7
Electrochemical propylene epoxidation offers a sustainable route to propylene oxide (PO), but achieving high selectivity and stability under industrial current densities remains challenging. Herein, we report a high entropy amorphous CoFeNiCrMnBOx borate loaded with high valence Pt single atoms catalyst (a-Pt-HEBO) for stable bromine radical-mediated propylene epoxidation reaction (BrPOR). The high-entropy amorphous structure reshapes the interfacial hydrogen-bonding network and enriches free water, substantially lowering the energy barrier for water dissociation. Meanwhile, the strong electronic interactions between the coordinatively unsaturated, high-valence single Pt atoms and the substrate effectively prevent transition metal dissolution at high anodic potentials. The catalyst achieved 82.1% Faraday efficiency of PO at an industrial grade current density of 100 mA cm-2, and demonstrated excellent industrial application stability in up to 500 h of continuous test and within a scaled-up electrolyzer (4 × 4 cm2). This work provides a design for high-entropy catalysts in halogen-mediated electrosynthesis and a viable pathway toward carbon-neutral PO production.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4138-5
Electrocoagulation (EC) has emerged as a promising electrochemical technology for wastewater treatment, offering distinct advantages over conventional chemical coagulation and membrane processes. This review systematically summarizes recent advancements in EC, focusing on the underlying mechanisms, key operating parameters, and diverse technical applications. The EC process involves three stages: electrolytic oxidation and in-situ coagulant formation, destabilization of contaminants, and floc formation. Unlike chemical coagulation, EC requires no external chemical additives, and process control is achieved by adjusting current density, voltage, or electrode materials, enabling adaptation to varying wastewater qualities. The review highlights the influence of dissolved organic matter (DOM) on EC efficiency, as clarified by Luo et al. (Water Research, 2025). Furthermore, it discusses reactor design innovations, including continuous-flow and cascade-type configurations, and the role of current waveforms in mitigating electrode passivation. The integration of EC with membrane bioreactors and forward osmosis is also examined, demonstrating enhanced treatment performance and fouling mitigation. Key challenges, such as energy consumption and electrode scaling, are addressed, along with future research directions. This comprehensive analysis provides a critical framework for optimizing EC systems and scaling them for industrial wastewater treatment, emphasizing the need for holistic reactor design and process integration to achieve sustainable water reuse.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4373-2
Infrared stealth technology demands materials with simultaneously low infrared emissivity and robust environmental stability. Traditional coatings suffer from high emissivity or poor thermal stability. Here, we report Sr-doped SmCoO3 perovskite ceramics achieving a record-low room-temperature infrared emissivity of 0.12 in the 8–14 μm atmospheric window. Systematic doping (x = 0, 0.1, 0.2, 0.3, 0.4, 0.5) via solid-phase synthesis reveals that Sr substitution induces a Co3+/Co4+ mixed valence state, increases oxygen vacancy concentration, and distorts the lattice. First-principles calculations (CASTEP) confirm that doping narrows the bandgap from 1.8 eV to 0.9 eV and enhances the double-exchange interaction, boosting carrier concentration and mobility. The optimized composition (x = 0.3) exhibits an electrical conductivity of 1.2×10^3 S/cm and a carrier density of 3.5×10^21 cm^-3, leading to strong infrared reflection. The material maintains emissivity below 0.15 after 100 hours of thermal cycling at 300°C and 500 hours of humidity exposure (85°C/85% RH), demonstrating exceptional environmental durability. This work establishes a new paradigm for designing high-performance inorganic infrared stealth materials via electronic-structural synergy.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4200-0
Self-powered broadband photodetectors are pivotal for next-generation intelligent healthcare. Solution-processed mercury sulfide (HgS) is an attractive near-infrared absorber but is limited by interfacial instability, high defects, and sluggish response. Inspired by sulfur-mediated adhesion in Alhagi sparsifolia, a bioinspired interfacial engineering strategy employs an antimony sulfide (Sb2S3) interlayer to construct a bidirectional chemical bonding network. The Sb2S3 interlayer simultaneously forms Sb–O bonds with fluorine-doped tin oxide (FTO) substrates and Sb–S/Hg–S bonds with the HgS layer, thereby reinforcing interfacial adhesion, passivating coordination-unsaturated defect states, and establishing a type-II heterojunction with a strong built-in electric field. The resulting Sb2S3/HgS photodetector exhibits self-powered operation, broadband sensitivity spanning the visible to near-infrared region (642–1550 nm), an ultrafast response time of 2.47 ms, a detectivity up to 1.7 × 10^11 Jones, and retaining nearly constant photocurrent over 5000 continuous on-off switching cycles as well as prolonged air exposure. Beyond device-level performance, we demonstrate its utility in intelligent healthcare scenarios, including machine-learning-assisted liquid drug identification, binary-coded optical wireless communication, and high-fidelity photoplethysmography monitoring. This work establishes biomimetic bidirectional bonding as a generalizable paradigm for stabilizing solution-processed chalcogenide optoelectronics and accelerates the integration of self-powered broadband photodetectors into intelligent healthcare systems.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3700-7
Photocatalytic synthesis has been considered a promising technology for solar-to-chemicals conversion. Here, a series of novel photocatalysts was synthesized by decorating uranyl sites on imine-based covalent organic frameworks (i-COF) and proved functioning for the uniformly boosted H2O2 production by 1.6–10.1 folds compared with the bare i-COFs in a wide pH range from 2 to 11. Typically, an optimal H2O2 production rate of 1435.9 μmol g−1 h−1, i.e., 28.72 mmol g(U)−1 h−1, was realized over uranyl decorated TTa-COFs under visible light. Systematic investigations reveal that the universally and remarkably promoted performance is attributed to the outstanding electron-transfer ability, accelerated activation of molecular oxygen and favored formation of ·O2− and *OOH as the key intermediate by virtue of the decorated uranyl ions; thus the two-step single-electron oxygen reduction reaction (ORR) for H2O2 photo-generation is significantly facilitated. This work paves a new way for the uranyl-decorated COFs as a novel photocatalyst and provides in-depth insight to the reaction mechanism for photocatalytic H2O2 production.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3848-7
Conventional heterogeneous photocatalysts often suffer from insufficient light absorption, rapid charge recombination, and a lack of specific reactive sites for efficient photocatalytic oxidation. To overcome these limitations, we propose a molecular polarization engineering approach utilizing structurally well-defined donor (D)-acceptor (A) covalent triazine frameworks (CTFs). The construction of dipole-induced built-in electric fields within the D-A-structured CTFs enables enhanced exciton dissociation and facilitates directional charge transfer. Specifically, the asymmetric A1-D-A2 moiety enhances molecular polarization in the dual-acceptor system CTF-TBT (A1-D-A2), enabling efficient charge separation through multiple electron-withdrawing units. This structural design promotes directional electron transfer toward the secondary acceptor (benzothiazole, A2), while simultaneously concentrating holes on the donor unit. Consequently, the A2 moiety acts as a site for efficient O2 activation via electron accumulation, whereas the highly oxidized donor unit provides strongly positive holes (h+) that facilitate substrate oxidation. Experimental and DFT calculation results confirm that CTF-TBT demonstrates highly enhanced photocatalytic oxidation performance, which can be attributed to its multi-channel charge separation mechanism and spatially separated redox-active sites. This study highlights the effectiveness of molecular dipole engineering in designing heterogeneous photocatalysts with controlled charge transfer pathways and improved redox capabilities. The proposed design principles provide a universal approach for promoting solar-driven chemical synthesis applications.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3664-x
The proliferation of electronic devices and wireless communications has escalated the demand for materials that simultaneously provide electromagnetic interference (EMI) shielding and infrared (IR) thermal camouflage, a combination critical for military and civilian applications. Traditional metallic shields suffer from high density, poor processability, and cost, while polymer-based alternatives often lack sufficient shielding effectiveness and environmental stability. Here, we report a multilayer composite film fabricated via layer-by-layer vacuum filtration and hot-pressing, integrating modified aramid nanofibers (ANF) and MXene (Ti3C2Tx) nanosheets. The film architecture comprises ANF-polypyrrole (ANF-PPy) as the matrix and Ag-MXene as the functional filler, with in-situ grown Ag nanoparticles intercalating between MXene layers to enhance interlayer spacing and electromagnetic wave scattering. At a thickness of only 33 μm, the film achieves an average EMI shielding effectiveness (SE) of 66.75 dB and a specific shielding effectiveness (SSE/t) of 38432.54 dB cm2 g−1. The multilayer structure promotes multiple internal reflections and interfacial polarization losses, while the tight integration ensures high IR reflectivity. This work establishes a foundation for developing multifunctional protective materials with dual EMI shielding and IR camouflage capabilities, addressing the critical bottleneck of simultaneous performance in ultrathin, flexible formats.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3793-9
Organic solar cells (OSCs) require both a high donor/acceptor (D/A) interfacial area for efficient exciton dissociation and a vertically phase-separated morphology for efficient charge transport. Traditional bulk heterojunctions (BHJs) provide large interfacial areas but lack vertical phase separation, while quasi-planar heterojunctions (QPHJs) achieve vertical separation at the cost of reduced interfacial contact. Here, we introduce an in situ pore-forming strategy for polymer thin films. By incorporating an excess of additives as pore-forming agents into the donor layer, a nanoporous film with a fibrous nano-network is generated. Subsequent deposition of acceptor molecules fills these nanopores, creating a hybrid planar/bulk heterojunction (HP/BHJ) that synergizes the strengths of both architectures. This design enhances performance by: (1) increasing the D/A interfacial area via nanopores, forming a three-dimensional network that accelerates exciton dissociation; (2) promoting close molecular packing that minimizes carrier recombination and establishes low-defect charge transport channels; and (3) fostering vertical phase separation through layer-by-layer deposition. Binary OSCs fabricated with this strategy achieve a power conversion efficiency (PCE) of 20.0%, surpassing conventional BHJ and QPHJ devices by a significant margin. The approach demonstrates general applicability, with analogous improvements observed in D18/BTP-eC9-4F and PM6/L8-BO systems, underscoring its potential for advancing OSC performance.
New Carbon Materials•2026•DOI: 10.1016/S1872-5805(26)61075-X
The proliferation of electronic devices has intensified electromagnetic radiation pollution, necessitating advanced microwave absorption materials. This study presents the electrospinning fabrication of FeNiCo/carbon nanofiber (FeNiCo/CNF) composites with exceptional microwave absorption properties. The FeNiCo/CNFs achieved a minimum reflection loss (RLmin) of −55.5 dB at 14.24 GHz with an ultrathin matching thickness of only 1.6 mm. Microstructural analysis and electromagnetic parameter testing revealed that the superior absorption stems from the synergistic interaction between the carbon nanofiber network and FeNiCo alloy nanoparticles, which promotes multiple reflections and efficient energy dissipation. The precise control of coercivity and permeability via systematic modulation of magnetic metal composition enabled enhanced impedance matching and optimized magnetic-dielectric synergy. Furthermore, radar cross-section (RCS) simulations confirmed the material's capability to significantly reduce RCS values across a wide angular range, validating its potential for stealth technology applications. This work introduces a cost-effective and sustainable approach for developing ultralight, high-performance microwave absorbers, addressing the limitations of conventional materials such as high density and poor stability.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3698-5
The oxygen evolution reaction (OER) is a critical bottleneck in next-generation sustainable energy systems due to its sluggish kinetics. Developing cost-effective, high-efficiency electrocatalysts requires understanding the dynamic structural evolution at electrode-electrolyte interfaces under operating conditions. In situ techniques are invaluable for identifying active centers and monitoring key intermediates. This review comprehensively summarizes recent advances in cutting-edge in situ methods for characterizing OER electrocatalyst structure evolution. It provides a brief overview of active motifs and robust structures using multiple in situ correlative techniques, establishing essential structure-performance relationships and updating mechanistic understanding at atomic scale under realistic conditions. Key challenges and perspectives are highlighted to promote rational design of promising electrocatalysts for efficient oxygen-associated electrocatalysis and electrosynthesis.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3623-y
Organic light-emitting diodes (OLEDs) are an advanced technology for full-color displays, yet the low efficiency of blue OLEDs remains a critical bottleneck. Here, we report a new strategy to design robust Pt(II) emitters with enhanced molecular rigidity and increased locally excited character. The resulting Pt(II) emitter exhibits an extremely narrow emission spectrum peaking at 458.6 nm with a full-width at half-maximum (FWHM) of 16.0 nm and a small Huang-Rhys factor of 0.278, together with a high photoluminescence quantum efficiency of 95%. When doped into an OLED, the device emits at 464 nm with high color purity (FWHM = 19 nm) and achieves high external quantum efficiencies (EQEs) of 32.6%, 29.4%, and 26.9% at luminances of 123, 1000, and 5000 cd/m2, respectively. Notably, the device attains a record-high maximum brightness of 84,895 cd/m2 among reported deep-blue OLEDs with Commission Internationale de l'Éclairage (CIE) y-coordinate < 0.15. This work demonstrates one of the highest-performing deep-blue OLEDs reported to date, addressing the dual challenges of efficiency and brightness in this spectral region.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3666-2
Light-emitting electrochemical cells (LECs) are promising for low-cost, solution-processed display and lighting applications, yet achieving high efficiency and color purity remains challenging. Here, we report two ionic multi-resonance (MR) emitters with narrowband blue emission for high-color-purity LECs. By covalently bonding an imidazolium functional group into a boron/nitrogen-doped polycyclic skeleton, the emitters retain the narrowband emission and high photoluminescence quantum yield (PLQY) of the MR core while gaining ionic character. The design exploits two types of nitrogen atoms in the imidazolium unit: the pyrrolic N at the 1-position forms a para-B-π-N linkage, elevating excited-state energy levels and blue-shifting emission; the pyridinic N at the 3-position provides a quaternization site, yielding intrinsically ionic emitters compatible with ionic hosts. The emitters exhibit blue emission with narrow full-width at half-maximum of 26–27 nm and high PLQYs of 95%–97% in solid-state films. LECs based on these emitters achieve narrowband blue electroluminescence with CIE coordinates of (0.12, 0.26) and a maximum external quantum efficiency (EQE) of 4.6%, representing the first narrowband blue LECs based on intrinsically ionic MR emitters. This work demonstrates a viable molecular design strategy for high-color-purity LECs, addressing the long-standing trade-off between efficiency and color purity in this technology.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3663-6
Escalating global climate change has precipitated a dramatic surge in building cooling/heating energy demands, critically undermining urban sustainability. Although dynamic thermal management technologies show potential for reducing architectural carbon footprints, prevailing active regulation systems remain constrained by energy-intensive mode-switching mechanisms and unsustainable operational costs. Here, we develop a zebra-inspired radiative modulator (ZIRM) that achieves climate-customized building thermal management through spatially partitioned integration of radiative cooling (RC) and heating (RH) functional units. The material breakthrough resides in a hybrid thin-film architecture combining a cellulose acetate/Zeolitic imidazolate framework-L (ZIF-L) porous membrane (solar reflectance ~95%, thermal emissivity ~0.88) with an MXene/ZIF-67 derived carbon-based absorption layer (solar absorption ~93%, thermal emissivity ~0.37), resolving the opto-thermal coupling limitations inherent to conventional materials. Experimental verification demonstrates that programmable regulation of the RC/RH area ratio enables broad-range temperature differential control from −4.3 to 12.1 °C during daytime operation. Building energy simulations reveal ZIRM’s annual energy consumption of 1.45×10^10 GJ, corresponding to 9.9% and 2.7% reductions compared to pure RC and RH systems, respectively. The established “configuration-environment-performance” predictive model pioneers a paradigm-shifting solution for carbon-neutral architecture, synergizing material innovation with climate-customized engineering strategies.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3707-8
Wound infection is a major cause of death during the wound healing process. Improperly dressed wounds can lead to secondary injury, prolonging healing time and increasing infection risk. Here, we propose an antibacterial slippery dressing through molecular engineering of copper ions. The oil layer forms a barrier to reduce clot adhesion to the wound site and prevent environmental contamination. Single-cell level detection indicates that secreted copper ions induce bacterial death not only by disrupting membrane integrity but also by relying on the production of reactive oxygen species. Further membrane depolarization and adenosine triphosphate production blockage result in the aggregation of important proteins in various biological processes, such as metabolic homeostasis, ultimately leading to bacterial death. The animal model confirms that our dressing accelerates wound healing by promoting the growth of granulation tissue and collagen deposition. Our dressing demonstrates significant clinical implications for the design of next-generation therapeutic applications.
New Carbon Materials•2026•DOI: 10.1016/S1872-5805(26)61071-2
Aqueous zinc-ion capacitors (ZICs) are promising energy storage systems due to their high specific capacity and superior reliability. Heteroatom-doped carbon materials have been shown to substantially increase the capacitance of ZICs, yet the underlying mechanisms remain poorly understood. In this work, coal-based activated carbon was functionalized with both boron (B) and nitrogen (N) to serve as the cathode material in ZICs. The optimized material, designated CAC-120, exhibits a high specific capacity of 371.4 mAh g−1 at 1 A g−1 and retains 74% of its initial capacity after 10,000 cycles. Electrochemical analysis and density functional theory (DFT) calculations reveal that pyridinic N plays a crucial role in enhancing Zn2+ storage, demonstrating superior electrochemical reversibility. Furthermore, an assembled aqueous ZIC using the CAC-120 cathode achieves a high reversible capacity of 90.8 mAh g−1 at 0.2 A g−1 and exceptional long-term stability over 17,000 cycles. This work provides valuable insight into the design of high-capacity and ultrafast pseudocapacitive carbon cathodes for ZICs, highlighting the synergistic effects of pore structure engineering and heteroatom doping.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3693-0
The development of catalysts with highly efficient oxygen evolution performance and low-Ir loading is key to scaling up the application of proton exchange membrane (PEM) water electrolysis technology. Here, an Ir-skin catalyst (Ir@KM) is realized on a potassium-manganese oxide (K0.25MnOx (KM)) using an ion-exchange method. The Ir-skin over the prepared Ir@KM has a low Ir–Ir atomic distance, endowing an energetically favorable oxide path mechanism to allow a low theoretical overpotential of 0.13 V. Ir@KM offers a low overpotential of ~280 mV at a current density of 10 mA cm−2 and provides a high mass activity of up to 18,500 A gIr−1 at a cell voltage of 1.8 V in PEM, which is 17.6 times higher than that of IrO2, demonstrating a significant advantage in reducing the cost of the membrane electrode. The presented Ir-skin concept represents a promising strategy to fabricate low-Ir catalyst with high activity and durability for practical applications of PEM.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3702-0
Construction of metal-mediated redox sites is an appealing approach to enhance photocatalytic CO2 reduction coupled with H2O oxidation. However, conventional static redox sites generally lack spatiotemporal matching during reaction processes due to the constraints of rigid structure and the linear scaling relationship of adsorbed species. Herein, an alkanolamine-Ir synergistic system was developed, where flexible monoethanolamine (MEA) molecules function as molecular ferries to selectively adsorb CO2 via carbamate formation, while adjacent Ir nanoparticles (NPs) serve as H spillover hubs that relay protons, creating spatiotemporal adaptability that synchronizes CO2 reduction and water oxidation. In addition, time-resolved in situ spectroscopy directly captures the rapid transformation of carbamate intermediates concurrent with sustained IrOOH intermediates formation. Microkinetic modeling further demonstrates that the MEA-Ir modified system (M-Ir/ACN) creates interconnected H spillover networks between Ir NPs and MEA, facilitating efficient proton transport that drives *COOH formation with a favorable thermodynamic energy. As a result, the M-Ir/ACN achieves a 20-fold increase in CO production compared to the pristine sample while maintaining high stability throughout 45 h of continuous operation. This study presents that flexible molecular ferries boost CO2 adsorption, and deciphers how flexible molecular-metal synergy directs the trafficking of CO2-derived intermediates toward highly efficient CO2 photoreduction.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3838-5
Air-permeable and ultrathin conductive electrodes are essential for next-generation soft electronics, including breathable wearables, on-skin devices, and bio-integrated electronics. However, conventional metallization strategies, such as sputtering and ink-printing, often suffer from severe vertical charge leakage due to the porous and ultrathin characteristics of nanofibrous networks, leading to device short-circuiting, operational failure, and limited vertical integration. Here, we present a solvent-selective dissolution-assisted transfer printing strategy to achieve surface-confined metallization of ultrathin, lightweight, and gas-permeable nanofibrous networks, enabling lateral conductivity while maintaining vertical insulation. This transfer printing process facilitates not only the rapid formation of conductive patterns on the surface of nanofibrous networks but also mechanical reinforcement through solvent evaporation-induced interlocked fiber-fiber welding. Meanwhile, the strategy preserves the high permeability of the nanofibrous networks and imparts a unique combination of surface conductivity (2 Ω cm) and vertical insulativity (10^11 Ω cm). The resulting anisotropic conductive networks enable low-voltage wearable heaters, high-sensitive pressure sensors, and ultralight temperature sensors. A pressure-temperature dual-modal sensing patch is further fabricated for intelligent grasping classification. The proposed surface-confined metallization strategy enables rapid fabrication of an anisotropic conductive network as a building block to construct air-permeable, ultrathin, and lightweight wearable electronics.
Chinese Journal of Environmental Engineering•2026•DOI: 10.12030/j.cjee.202506019
Acidic in-situ leaching of sandstone-type uranium deposits leaves residual acid and uranium in groundwater, posing environmental risks. This study investigated the feasibility of loading hydroxyapatite (HAP) onto aquifer sandstone particles for in-situ remediation. Sandstone particles were collected from an aquifer and reacted with a HAP-generating solution for 52 days to produce sandstone/HAP composite. Batch experiments examined the effects of initial pH, initial uranium concentration, composite dosage, and interfering ions on uranium removal. Results showed successful HAP loading on sandstone surfaces. At initial pH 3, uranium concentration 5 mg/L, composite dosage 3 g/L, and 24 h reaction, uranium removal reached 95.6%. Interfering ions suppressed removal in the order Fe3+ > Mn2+ > Ca2+ > Mg2+ > SO4^2-. Removal mechanisms included electrostatic adsorption, ion exchange, and dissolution-reprecipitation, with good stability of immobilized uranium. This work validates the concept of in-situ HAP loading in aquifers and provides a basis for practical application in acidic uranium-contaminated groundwater remediation.
Journal of Fuel Chemistry and Technology•2026•DOI: 10.1016/S1872-5813(25)60610-4
In this study, melamine and cyanuric acid were used as precursors to form supramolecular crystals via hydrogen-bond-assisted self-assembly followed by hydrothermal treatment. Subsequent high-temperature calcination yielded a novel brush-like three-dimensional carbon nitride. The brush-like 3D architecture was found to expose more accessible active sites, markedly accelerate electron transfer, and suppress the recombination of photogenerated charge carriers. The resulting superoxide (O2•−) and hydroxyl (•OH) radicals generated via electron reduction were identified as the key reactive species in the photocatalytic process. Moreover, the surface of the brush-like structure is enriched with nitrogen vacancies, which enhance the catalyst’s ability to harvest visible light. The photocatalytic performance of the brush-like CNS-650 catalyst was evaluated for rhodamine B (RhB) degradation. Under red-light irradiation (660 nm), its degradation rate was 7.4 times higher than that of bulk CN. This work provides valuable insights into the design and application of efficient metal-free 3D photocatalysts.
Environmental Chemistry•2026•DOI: 10.7524/j.issn.0254-6108.2024112102
Based on the 2022 activity data of non-road mobile sources in Hebei Province, this study employed the emission factor method recommended by the Guidelines to estimate emissions of CO, HC, NOx, PM2.5, PM10, and SO2. A comprehensive emission inventory was established, followed by spatial and uncertainty analyses. Scenario analysis, aligned with the 14th Five-Year Plan policies, was used to project emissions for 2030. The results indicate that non-road mobile sources in Hebei emitted 76.1×10^3 t of CO, 20.6×10^3 t of HC, 164.0×10^3 t of NOx, 8.5×10^3 t of PM2.5, 9.0×10^3 t of PM10, and 2.4×10^3 t of SO2. Agricultural machinery was the dominant contributor to CO, HC, PM2.5, and PM10, accounting for over 60.0% of CO emissions. Railway locomotives were the primary source of NOx, contributing 50.9%. For SO2, agricultural machinery and railway locomotives contributed 39.0% and 44.4%, respectively. The highest emitting cities were Tangshan (21.3%), Shijiazhuang (15.7%), Cangzhou (11.6%), and Handan (11.6%). Ship emissions were concentrated in Tangshan Port; civil aviation emissions were mainly in Shijiazhuang, Tangshan, Qinhuangdao, and Handan; railway emissions were distributed in Shijiazhuang, Baoding, and Handan. Under the updated emission standard scenario, NOx and PM10 emissions in 2030 could be reduced by approximately 35.0%. The phase-out of old machinery yielded the largest reduction in CO (36.0%), while both electrification and phase-out scenarios significantly impacted HC emissions.
Journal of Environmental Engineering Technology•2026•DOI: 10.13205/j.hjgc.202604013
Reclaimed water serves as an alternative water source for replenishing natural water bodies, yet residual pollutants pose ecological risks. A pilot-scale hybrid vertical flow constructed wetland filled with manganese ore sand, quartz sand, and cobblestones was operated for approximately 140 days to assess nutrient and organic matter removal, ecotoxicity, and the suitability of manganese sand as a functional medium. Influent concentrations were up to 0.4 mg/L ammonia, 0.2 mg/L phosphate, 8 mg/L nitrate, and 30 mg/L COD. After 2–3 months of operation, ammonia and phosphate removal efficiencies exceeded 90% and 80%, respectively. Average reductions for nitrate and COD were 0.67 mg/L and 4.2 mg/L. Manganese sand enhanced organic decomposition, reducing maximum 3D fluorescence intensity by 26%, humic substances by 48%, UV254 by 38%, and achieving 70.8% removal of four target antibiotics. Purified water exhibited no significant genotoxicity, with micronucleus rates approaching tap water levels, and non-concentrated samples showed no acute biotoxicity. However, concentrated samples displayed acute toxicity, suggesting different causative pollutants for genotoxicity and acute toxicity. The study supports manganese sand as an effective medium for improving reclaimed water quality and controlling ecological risks.
Journal of Environmental Engineering Technology•2026•DOI: 10.13205/j.hjgc.202604015
Shale gas extraction generates hazardous oily sludge, necessitating effective in-situ treatment. Microemulsion technology offers low energy consumption, cost efficiency, and high oil removal without heating. This study investigates single-surfactant microemulsions using sodium dodecyl sulfate (SDS) and alpha-olefin sulfonate (AOS), and composite microemulsions with sodium silicate (Na2SiO3). Phase behavior and effects of surfactant, alcohol, and salt concentrations on oil removal were examined. Optimal single formulations achieved removal rates of 86.33% for SDS (SDS:alcohol:NaCl = 2.72%:13.21%:2.17% mass ratio) and 87.45% for AOS (SDS:alcohol:NaCl = 2.72%:15.41%:2.17%). SDS microemulsions showed superior phase stability despite slightly lower removal efficiency. Composite SDS-Na2SiO3 microemulsion achieved 92.47% oil removal, outperforming single systems, and could be recycled five times while meeting national secondary reuse standards. AOS-Na2SiO3 exhibited better salt resistance, whereas SDS-Na2SiO3 showed better alcohol resistance. This work provides a novel approach for in-situ oily sludge treatment.
The Chinese Journal of Process Engineering•2026•DOI: 10.12034/j.issn.1009-606X.225204
Cobalt-doped silica aerogel (Co@Si-A) catalysts were synthesized via a one-step sol-gel method and applied for peroxymonosulfate (PMS) activation to degrade tetracycline (TC). The catalyst with 25 wt% cobalt doping (25Co@Si-A) exhibited superior catalytic performance, achieving 98.97% TC degradation within 30 min under specified conditions (TC 10 mg/L, 100 mL). Brunauer-Emmett-Teller (BET) analysis revealed a high specific surface area and well-developed porous architecture with nano-confined spaces. The 25Co@Si-A/PMS system demonstrated outstanding adaptability across a broad pH range (5–9), maintaining >95% degradation efficiency, and showed strong resistance to sulfate and nitrate ions. In real water matrices, degradation efficiency remained around 80%. After five consecutive cycles, the system retained 82.33% degradation efficiency, with cobalt ion leaching of only 23.7 μg/L in the first cycle, indicating excellent stability. Mechanistic studies using electron paramagnetic resonance (EPR), radical quenching, and probe compound tests confirmed a synergistic radical and non-radical pathway. The primary reactive species were sulfate radicals (SO4•−), hydroxyl radicals (•OH), and singlet oxygen (1O2), with contributions of 58.53%, 9.79%, and 31.68%, respectively. Electrochemical tests indicated that 25Co@Si-A exhibited superior charge transfer compared to Co3O4, attributed to the nano-confined effect of the silica aerogel, which enhanced Co(II)/Co(III) redox cycling and PMS activation. This research provides a promising strategy for utilizing silica aerogel-based catalysts in advanced oxidation processes for water treatment.
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.
The Chinese Journal of Process Engineering•2026•DOI: 10.12034/j.issn.1009-606X.225191
Mg3Sb2-based materials, featuring a unique layered crystal structure, exhibit a favorable combination of low thermal conductivity, high Seebeck coefficient, and decent carrier mobility, establishing them among the most promising mid-temperature thermoelectric systems under active investigation. However, p-type Mg3Sb2 derivatives demonstrate a comparatively lower thermoelectric figure of merit (zT) compared to their n-type counterparts. Enhancing the zT performance of p-type Mg3Sb2 is therefore essential for the development of high-efficiency thermoelectric devices based on this material system. This review systematically summarizes the critical factors governing the thermal transport properties of p-type Mg3Sb2, including intrinsic characteristics such as chemical bonding and crystal structure, as well as extrinsic parameters such as carrier concentration, mobility, point defects, microstructure, and temperature dependence effects. Furthermore, it highlights recent advances in strategies designed to optimize thermal conductivity (κ) and improve zT, mainly including point defect engineering (such as Mg-site doping, Sb-site doping, dual-site co-doping, as well as doping-assisted composite modification), low-dimensional and nanostructural design, and advanced preparation technologies. Experimental studies demonstrate that these targeted strategies, particularly the synergistic introduction of multi-scale defects, can effectively suppress phonon propagation and significantly reduce lattice thermal conductivity (κL). Consequently, substantial improvements in the overall zT of p-type Mg3Sb2-based materials have been realized, providing a robust scientific and technical foundation for accelerating the practical application of Mg3Sb2-based thermoelectric devices.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3856-0
Replacing the kinetically sluggish oxygen evolution reaction (OER) with biomass oxidation at photoanodes offers a cost-effective and energy-efficient route for simultaneous hydrogen production and value-added chemical synthesis in a photoelectrochemical (PEC) cell. Here, titanium-doped hematite nanorods (Hem) decorated with CoNi bimetallic zeolitic imidazolate frameworks (ZIF) were prepared via room-temperature deposition and employed as photoanodes for 5-hydroxymethylfurfural (HMF) oxidation. Using 2,2,6,6-tetramethylpiperidine-1-oxyl (TEMPO) as a redox mediator in alkaline electrolyte, the CoNi-ZIF/Hem photoanode achieved a photocurrent density of 1.09 mA cm−2 at a low bias of 1.1 V vs. reversible hydrogen electrode (RHE). Experimental results and theoretical calculations reveal that CoNi-ZIF accelerates charge transfer and separation, and enhances TEMPO adsorption on the surface, benefiting PEC TEMPO-mediated HMF oxidation to 2,5-furandicarboxylic acid (FDCA). In a flow-cell reactor under 1 sun illumination, the photoanode achieved ~99% HMF conversion and ~98% FDCA yield within 2 hours. The photoanode also exhibited excellent performance for TEMPO-mediated oxidation of various aldehyde-containing biomass-derived compounds. This work demonstrates a rational design of hematite-based photoanodes for efficient biomass valorization coupled with hydrogen production.
Chinese Journal of Environmental Engineering•2026•DOI: 10.12030/j.cjee.202506084
Groundwater is a vital drinking and irrigation source in the loess regions of northwestern China. In Guyuan, a densely populated area in southern Ningxia, systematic assessments of groundwater pollution risks are lacking. This study collected 60 groundwater samples and employed the Nemerow index, heavy metal pollution index (HPI), and health risk assessment models to evaluate pollution levels and health risks of eight elements including Cr, As, and Hg. Results show that the groundwater is generally Class IV quality, with a mean TDS of 1350.9 mg·L−1. Average concentrations of As, Cr, and Mn are 4.39, 29.87, and 45.77 μg·L−1, respectively. The Nemerow index indicates moderate pollution. The mean HPI is 10.56, but a local sample (PS1-51-下) reaches 36.15, indicating severe pollution. Health risk assessment reveals that carcinogenic risks from Cr and As for adults and children are 8.037×10−6 a−1 and 3.863×10−6 a−1, respectively, below US EPA limits but above recommended levels by Swedish and Dutch agencies, with children at higher risk. Hydrogen and oxygen isotopes and principal component analysis suggest that groundwater is primarily recharged by atmospheric precipitation. Cr, Zn, and Mn mainly originate from regional copper ore belts, coal mining, and agricultural activities. This study fills a gap in multidimensional groundwater assessment in populated loess areas, identifies pollution characteristics distinct from typical loess regions, and provides a scientific basis for regional water resource risk management and sustainable development.
Environmental Chemistry•2026•DOI: 10.0000/202605-2
Surface sediment samples were collected from 28 stations in the intertidal zones of Xiangshan Harbor, Sanmen Bay, and the southern coast of Hangzhou Bay, major fishery waters in Ningbo, to assess heavy metal pollution and ecological risk. Concentrations of Cu, Pb, Zn, Cd, Cr, Hg, and As were determined. Results showed that Cu and Cr were the primary超标 factors, with mean concentrations exceeding the Class I standard (GB 18668-2002) by factors of 1.03 and 1.1, respectively, in Xiangshan Harbor; in Sanmen Bay, Cr exceeded by 1.1 times, while Cu did not. In Hangzhou Bay, Cu and Cr were elevated but below the standard. Coefficients of variation (CV) for five metals in Hangzhou Bay exceeded 30%, indicating strong external influence. In Xiangshan Harbor, As showed strong variation, and in Sanmen Bay, Hg showed strong variation. The potential ecological risk indices (RI) were 38.5, 36.7, and 31.1 for Xiangshan Harbor, Sanmen Bay, and Hangzhou Bay, respectively, all indicating low ecological risk. Spatial distribution in Hangzhou Bay revealed a decreasing gradient from a chemical industrial park, suggesting industrial discharge as a primary source. The study provides baseline data for environmental management and recommends source control and bioremediation in high-risk areas.
Journal of Environmental Engineering Technology•2026•DOI: 10.13205/j.hjgc.202605006
Military ecological and environmental protection is a critical component of national ecological and environmental protection. Military activities and operations, such as training and drills, weapons and equipment testing, and combat, are prone to triggering a series of ecological and environmental problems, including greenhouse gas emissions, deterioration of water resources and water quality, vegetation destruction, land degradation, and typical physical and chemical pollution, which have attracted extensive global attention. This study systematically analyzed the eco-environmental impacts of military activities on multiple environmental media (atmosphere, water, and soil) across different periods, and conducted pollution source tracing in multi-media and representative regions. It reviewed the current status of ecological and environmental protection technologies for the three major environmental media, i.e., atmosphere, water, and soil, and summarized the characteristics and constraints of military ecological and environmental research. Finally, it proposed the research trends and key development directions for military ecological and environmental protection from four dimensions: data monitoring and sharing, research and development of in-situ remediation technologies for military-civilian integrated combined pollution, green construction practices for military facilities, and optimization of management systems.
The Chinese Journal of Process Engineering•2026•DOI: 10.12034/j.issn.1009-606X.225250
Slag foaming is a critical phenomenon in electric arc furnace (EAF) steelmaking, enhancing thermal efficiency, suppressing metal splashing, and stabilizing the refining process. Accurate prediction and control of slag foaming are essential for green and efficient steelmaking. This review systematically examines research progress on slag foaming prediction, clarifying the applicability, advantages, and limitations of different predictive methods to support intelligent control of foamy slags. Following the framework of 'influencing factors-prediction methods-development trends', the study summarizes the coupling effects of multiple variables such as basicity, viscosity, surface tension, suspended particles, gas parameters, and temperature on foam formation and stability. It compares five major prediction approaches: empirical formulas, dimensionless modeling, thermodynamic calculations, computational fluid dynamics (CFD) simulations, and machine learning models, analyzing their core concepts, merits, and constraints. Results indicate that single models often struggle to balance real-time capability and accuracy, particularly under multi-variable coupling and complex operating conditions. Therefore, a hybrid prediction framework combining mechanism-based and data-driven models is proposed, emphasizing physical constraints, multi-scale coupling, and multi-source data fusion. This integrated approach is expected to advance slag foaming prediction from 'computable' to 'controllable and adjustable', offering methodological insights for the development of green and intelligent EAF steelmaking.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3936-8
The precise separation of enantiomers is essential for developing effective chiral drugs, yet conventional membranes are constrained by the ubiquitous selectivity-permeability trade-off and low flux, limiting scalable production of single-enantiomer drugs. Herein, we present a cascade reaction strategy integrating Sonogashira-Hagihara coupling and Friedel-Crafts alkylation to fabricate porous conjugated microporous polymer membranes (CCMP-M P1–4/SiO2). This approach enhances specific surface area by 400-fold compared to the product from the Sonogashira-Hagihara coupling reaction alone, creating interconnected porous networks that facilitate mass transport. This hypothesis was confirmed by pore-size gradient experiments, which revealed a critical size-matching effect: matched molecular dimensions enable high-speed mass transfer with 97% enantioselectivity, while mismatch reduces selectivity to 9%, as visualized in a separation performance matrix across four chiral molecules. Precise chiral recognition is programmable via absolute configuration control of chiral monomers, with the mechanism of “preferential adsorption–interfacial enrichment–promoted diffusion” confirmed by static adsorption and density functional theory calculations. This strategy achieves breakthrough performance: Naproxen flux reaches 37 mmol m−2 h−1, surpassing literature values, and enables membrane-based separation of Raceanisodamine (89% selectivity of 6S, 2′S and 6R, 2′R-isomer after cascade enrichment) for the first time. This work provides a new paradigm for designing high-performance chiral separation membranes, facilitating scalable and sustainable production of single-enantiomer drugs.
Chinese Journal of Environmental Engineering•2026•DOI: 10.12030/j.cjee.202508081
Traditional soil thermal remediation requires high temperatures (>300 °C), which can damage soil structure, increase energy consumption, and elevate carbon emissions. This study developed a Cu–CeOx/TiO2 trimetallic catalyst to enable low-temperature thermal remediation of naphthalene-contaminated soil. Using nano-TiO2 as a support, catalysts with varying Cu/Ce ratios were prepared via impregnation-calcination. Material characterization (XRD, TEM, XPS, etc.) revealed that Cu and Ce incorporation induced crystal defects in TiO2, enhancing lattice oxygen activity and electron mobility, thereby generating more oxygen vacancies and hydroxyl radicals. Performance evaluation using a TGA-GC-FTIR-MS platform showed that the catalyst with Cu:Ce = 1:1 achieved the best remediation efficiency, reducing the thermal remediation temperature from 250 °C to 211.5 °C and increasing the removal rate by an average of 19.49% compared to the non-catalyst group at the same temperature. The catalyst facilitated stepwise degradation of naphthalene into smaller organic molecules (alcohols, carboxylic acids, aldehydes) and ultimately into H2O and CO2. This work demonstrates that Cu–CeOx/TiO2 significantly lowers the energy demand of thermal remediation, offering a promising approach for low-carbon remediation of organic-contaminated soils.
Journal of Fuel Chemistry and Technology•2026•DOI: 10.3724/2097-213X.2026.JFCT.0001
The escalating global demand for carbon reduction has positioned chemical absorption using alkanolamine solvents as the predominant post-combustion CO2 capture technology, owing to its high absorption efficiency and process maturity. However, the regeneration of CO2-rich solvents is energy-intensive, with the desorption step accounting for 40.0%–60.0% of total energy consumption. Traditional amine-based methods suffer from high energy penalties, solvent degradation, and equipment corrosion, limiting scalability. Catalytic CO2 desorption, employing solid acid catalysts (SACs), has emerged to address these challenges by lowering the activation energy for CO2 release, enhancing reaction kinetics, and enabling efficient regeneration at lower temperatures (110–130 °C reduced). This review systematically examines research from the past five years on key catalyst materials, focusing on structure-activity relationships, synergistic mechanisms of Lewis acid, Brønsted acid, and basic sites, and their influence on desorption pathways. It highlights that SACs not only improve desorption dynamics but also facilitate catalyst recovery, avoiding adverse effects on absorption. The paper analyzes current scientific and technological challenges, including catalyst stability, selectivity, and scale-up, and provides an outlook on industrial application in low-cost carbon capture. Key findings indicate that catalysts such as metal-organic frameworks (MOFs), heteropolyacids, and waste-derived materials can reduce regeneration energy by up to 30%–40% while maintaining high desorption efficiency. The review underscores the potential of catalytic regeneration to significantly lower operational costs and enhance the viability of amine-based CO2 capture in industrial settings.
Journal of Environmental Engineering Technology•2026•DOI: 10.13205/j.hjgc.202606007
Cobalt-aluminum spinel metal oxides derived from hydrotalcite were synthesized via hydrothermal, coprecipitation, and sol-gel methods, and their catalytic performance for NO oxidation was systematically evaluated. Characterization by X-ray photoelectron spectroscopy (XPS), O2 temperature-programmed desorption (O2-TPD), H2 temperature-programmed reduction (H2-TPR), and Raman spectroscopy revealed that the synthesis method significantly influences the surface Co2+/Co3+ ratio, which in turn modulates the formation of surface oxygen vacancies. The hydrothermally synthesized catalyst (CoAlO-H) exhibited the highest density of surface oxygen vacancies, leading to enhanced adsorption and activation of gaseous oxygen and superior NO oxidation activity compared to coprecipitation (CoAlO-C) and sol-gel (CoAlO-S) counterparts. Mechanistic studies using NO-TPD, NO+O2-TPD, and in situ diffuse reflectance infrared Fourier transform spectroscopy (in situ DRIFTS) identified nitrates as key intermediates. Notably, CoAlO-C and CoAlO-S followed the Langmuir-Hinshelwood (L-H) mechanism, whereas CoAlO-H operated via both L-H and Mars-van Krevelen (MvK) mechanisms. The exceptional performance of CoAlO-H is attributed to its abundant surface oxygen vacancies, high surface oxygen mobility, and low decomposition temperature of reaction intermediates. These findings provide a rational basis for designing efficient non-precious metal catalysts for NO oxidation in diesel exhaust aftertreatment.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3794-0
Luminescent transparent display technology is widely used in emerging fields such as augmented reality glass, head-up vehicle display, and commercial retail windows. While electroluminescent display is well established, the photoluminescent transparent screen of full-color rendering ability remains elusive due to the severe crosstalk between emitters. Herein, a full-color transparent screen of an orthogonal red/green/blue (R/G/B) luminescence is reported. Lanthanide fluoride nanocrystals are used as the emitters, where the color is tuned by a deliberate choice of doping activators including Tb3+, Eu3+, and Tm3+. Polyvinyl alcohol, with an identical refractive index to nanocrystals, is employed as the host matrix, enabling a high transparency up to 86% in the visible region upon a high loading content (~78 wt%) of nanocrystals. It should be noted that the nanocrystals are embedded in separate monolayers before integration by a UV-selective absorber, i.e., epoxy resin, which absorbs 254-nm UV to block cross-excitation between Tb3+ and Eu3+ layers, providing an asymmetric luminescent property from both sides of the screen. In a proof-of-concept experiment, a full-color prototype is showcased in real time for its potential applications in advanced displays of immersive experience.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3851-3
Aqueous zinc-ion batteries (AZIBs) face critical challenges from zinc anode instability, including corrosion, hydrogen evolution reaction (HER), parasitic byproduct formation, and uncontrolled dendrite growth. To address these issues, we developed a multifunctional cerium-based metal-organic framework (Ce-MOF) coating for zinc anodes. The coating features an ordered porous structure and inherent properties that mitigate HER, suppress side reactions, and inhibit dendrite formation. Symmetric cells using Ce-MOF/Zn demonstrated exceptional cycling stability for over 2060 h at 0.5 mA cm−2 with a low hysteresis polarization of 26 mV. In full cells with an I2@AC cathode, the Ce-MOF/Zn||I2@AC achieved outstanding cycling stability of 28,550 cycles at 5 A g−1, with 91% capacity retention (109.6 mAh g−1). Through integrated characterization employing in-situ optical microscopy, ex-situ XRD, SEM, and DFT calculations, we elucidated the multifunctional mechanism: the Ce-MOF coating facilitates preferential (002)-oriented Zn deposition to suppress dendrites, reduces Zn2+ desolvation energy to enhance deposition kinetics, and modulates interfacial chemistry to mitigate HER and corrosion. This work establishes Ce-MOF coatings as a simple yet powerful strategy for developing high-performance zinc anodes, providing critical insights for advancing practical AZIB technologies.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3769-2
Proton exchange membrane water electrolyzers (PEMWEs) are pivotal for sustainable hydrogen production, yet the corrosion-induced TiOx on porous transport layers (PTLs) introduces Schottky contact barriers and pinch-off effects, severely impeding charge transfer and efficiency. Here, a cost-effective MoIrOx coating via spray deposition and thermal treatment on Ti felts is proposed. The coating forms a conductive interlayer that establishes a Schottky barrier staircase, reducing the effective electron transfer barrier and isolating TiOx from the ionomer to mitigate the pinch-off effect. The optimal PTL achieves a current density of 3.27 A cm−2 at 2 V, surpassing uncoated Ti felts by 59.5%. The MoIrOx interlayer suppresses localized electron accumulation at the interface, enabling stable operation with ultra-low catalyst loadings by preventing direct ionomer-TiOx contact. This work demonstrates a scalable strategy to enhance PEMWE efficiency and durability while minimizing precious metal reliance, offering critical insights into interface engineering for electrolyzers.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3809-y
The development of hydrogels that simultaneously achieve high strength and good toughness remains a critical challenge in soft material science, particularly for applications in flexible electronics, soft robotics, and biomedical devices. Conventional approaches often suffer from a trade-off between mechanical robustness and functional performance. In this work, we present a novel solvent-driven dual-network entanglement strategy to fabricate a strong and tough poly(vinyl alcohol) (PVA)-based organo-hydrogel by synergistically combining isopropanol (IPA) solvent substitution to induce dense polymer chain entanglement and a sodium alginate (SA) ionic crosslinked network as a dynamic energy-dissipation phase. The resulting organo-hydrogel exhibits excellent mechanical performance with a tensile strength of 3.18 MPa and a toughness of 16.65 MJ/m3, representing increases of approximately 17 and 49 times that of conventional PVA hydrogels, respectively. Furthermore, the organo-hydrogel displays superior swelling resistance and long-term stability in aqueous environments, enabling reliable operation in challenging conditions such as underwater motion sensing and wearable strain detection. Morphological analyses reveal the critical role of solvent-mediated chain reorganization and dual-network interactions in achieving these properties. This work not only provides a versatile platform for designing robust gel materials but also offers fundamental insights into solvent-network interactions for advanced soft material engineering.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3885-8
Photocatalytic production of hydrogen peroxide (H2O2) via oxygen reduction reaction (ORR) and water oxidation reaction (WOR) from water and air offers a sustainable alternative to conventional anthraquinone processes. However, the intrinsic kinetic mismatch—fast ORR (microseconds to milliseconds) versus sluggish WOR (seconds)—limits overall efficiency. Here, we report aliphatic acylhydrazone covalent organic frameworks (AA-COFs) synthesized by coupling aliphatic hydrazides with benzotrithiophene motifs via acylhydrazone linkages. The pore walls are decorated with abundant S, O, and N heteroatoms, enhancing affinity toward both O2 and H2O, thereby improving the kinetics of both half-reactions. Through single-carbon atomic engineering, the optimized AA-COF achieves a trade-off between ORR and WOR kinetics, enabling efficient overall H2O2 photosynthesis from water and air without sacrificial agents. The material exhibits a H2O2 production rate of 4777 μmol g−1 h−1 and an O2 utilization/conversion efficiency of 99.3%. This work demonstrates that rational design of heteroatom-rich COFs can synchronize ORR and WOR, overcoming a major bottleneck in artificial photosynthesis.
Chinese Journal of Environmental Engineering•2026•DOI: 10.12030/j.cjee.202510034
Phosphonate wastewater, characterized by stable C–P bonds, poses significant environmental risks due to its resistance to degradation and potential to contribute to eutrophication. This study developed a chloride-enhanced Fe(II)/PMS/H2O2 system for the oxidative degradation of 2-phosphonobutane-1,2,4-tricarboxylic acid (PBTC) and simultaneous recovery of phosphorus as iron phosphate (FePO4). Under optimal conditions (0.1 mmol/L PBTC, 1.0 mmol/L Fe(II), 0.5 mmol/L PMS, 0.5 mmol/L H2O2, 10 mmol/L NaCl, initial pH 3.0, 60 min), total phosphorus (TP) removal reached 100%, with phosphorus nearly completely recovered as FePO4 precipitate. Increasing NaCl concentration and temperature enhanced TP removal, while pH significantly influenced removal efficiency and product speciation; acidic conditions (pH < 4.3) favored FePO4 precipitation. Coexisting Ca2+ and Mg2+ had negligible effects, whereas HCO3− and humic acid (HA) inhibited TP removal in a concentration-dependent manner. Radical quenching and electron spin resonance (ESR) analyses identified hydroxyl radicals (•OH), ferryl ion (Fe(IV)=O), sulfate radicals (SO4•−), and chlorine radicals (Cl•) as primary reactive species, with •OH playing a dominant role. Chloride introduction promoted the generation of multiple reactive species, and Cl• and its derivative Cl2•− directly attacked the C–P bond and phosphonate group, facilitating phosphorus release as PO43− and subsequent FePO4 formation. The system's feasibility was validated using actual industrial circulating cooling water. This study provides a novel approach for phosphonate wastewater treatment and phosphorus recovery.
Chinese Journal of Environmental Engineering•2026•DOI: 10.12030/j.cjee.202511020
With the increasing number of oil pipelines crossing rivers, the potential risks of oil leakage and surface spreading to river ecosystems and water environments are becoming more severe. Scenario-based simulation of oil spill diffusion is a prerequisite for effective interception point placement and leakage risk prevention. Numerous factors influence oil spill diffusion, including environmental conditions, river hydrology, and accessibility of emergency resources. This study integrates these factors and multiple dynamic processes to design eight typical scenarios for oil spill diffusion simulation, considering emergency resource locations, river hydrological regimes, and leakage modes. A case study is conducted on an oil pipeline crossing a river in northwest China. Results indicate that the diffusion distance and affected area are primarily controlled by water conditions and emergency resource accessibility. In emergency management, the efficiency of maintenance and repair resources during high-water months should be prioritized. Mechanistically, external forces such as hydraulic and wind forces have a greater influence on diffusion distance, surpassing internal forces like gravity, viscosity, and surface tension within a short time. For river crossings near emergency resources, internal force effects should be considered in oil spill diffusion simulations. When emergency resource arrival times are long, the diffusion distance based on Fay's theory is relatively small and can be neglected in engineering practice. This study provides a computational basis and methodological reference for risk assessment and emergency response to potential oil spills from pipelines crossing rivers, enhancing the scientific and effective nature of risk prevention and emergency handling.
Journal of Fuel Chemistry and Technology•2026•DOI: 10.1016/S1872-5813(26)60639-1
Ni/Al2O3 is regarded as one of the most promising catalysts for industrial CO2 methanation, yet it suffers from inadequate low-temperature activity and thermal sintering. To address these challenges, an Ni/CaO-ZrO2-Al2O3 catalyst with high low-temperature activity and robust high-temperature sintering resistance was developed by introducing Ca and Zr promoters. Under reaction conditions of 250 °C and a space velocity of 30000 mL/(g·h), the catalyst achieved a CO2 conversion of 96% and a methane space-time yield of 257.5 mmol/(g·h). In a 200 h aging test at 600 °C, the Ca-Zr dual-promoted catalyst exhibited a smaller increase in Ni particle size and less activity loss compared to the Ca-promoted counterpart. Characterization revealed that Ca and Zr promoters not only improve Ni dispersion but also enhance surface basicity, contributing to excellent low-temperature activity. Furthermore, Zr suppresses the transformation of Ca species into CaCO3 via solid-phase reaction under operating conditions, thereby inhibiting Ni sintering and ensuring high-temperature stability. This work provides a novel promoter design strategy for developing high-performance Ni-based catalysts for CO2 methanation.
Journal of Environmental Engineering Technology•2026•DOI: 10.13205/j.hjgc.202607016
Lead (Pb) is a highly toxic heavy metal that poses severe risks to environmental and human health, particularly affecting children's neurological development. This study investigates the adsorption performance and mechanisms of biochars derived from pyrolysis of Napier grass (Pennisetum purpureum), food waste digestate, and their mixtures for Pb²⁺ removal from aqueous solutions. Biochars were prepared at different mass ratios, and the optimal material (HP3SD1-B, Napier grass:digestate = 3:1) exhibited a maximum equilibrium adsorption capacity of 306.45 mg/g and a theoretical Langmuir maximum capacity of 447.62 mg/g, significantly outperforming pure digestate biochar and lower-ratio blends. Adsorption kinetics followed a three-stage profile: rapid liquid-film diffusion (0–180 min), intraparticle diffusion (180–360 min), and equilibrium at 360 min. The adsorption process was well described by the pseudo-second-order kinetic model (R² > 0.99) and the Langmuir isotherm, indicating monolayer chemisorption. Characterization via FTIR, XPS, SEM-EDS, and Zeta potential revealed that Pb²⁺ immobilization occurs primarily through surface precipitation (Pb₃(CO₃)₂(OH)₂ and PbO), complexation with hydroxyl, ether, and aromatic C=C groups, and auxiliary mechanisms including electrostatic attraction and K⁺/Mg²⁺ ion exchange. Optimal adsorption occurred at pH 6, correlating with the point of zero charge (PZC ≈ 2). This study demonstrates that co-pyrolysis of agricultural and organic solid wastes offers a cost-effective, high-performance biochar for heavy metal remediation, aligning with circular economy principles.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3950-x
Photocatalytic oxygen reduction reaction (ORR) for hydrogen peroxide (H2O2) production via the two-electron pathway offers an environmentally friendly oxidant and a clean fuel. However, challenges exist in optimal oxygen (O2) adsorption capacities and maintaining O–O bond during O2 activation. Herein, we present a zinc single-atom catalyst (Zn/VN-CN) incorporating nitrogen vacancies (VN), designed to modulate the electronic structure of the photocatalyst, leading to optimized O2 adsorption energy and a remarkable enhancement in H2O2 yield. Benefiting from the synergistic effect between nitrogen vacancies and Zn single atoms, the optimized Zn/VN-CN catalyst exhibits a photocatalytic H2O2 production rate of 2.399 mmol g−1 h−1 under visible-light irradiation, representing a 12-fold enhancement compared to pristine g-C3N4 (CN), along with a high H2O2 selectivity of 87.4%. Combined experimental and theoretical studies indicate that the Zn-N3 sites act as highly active reaction centers, while nitrogen vacancies increase the charge density and downshift the d-band center of the Zn sites, thereby moderating O2 adsorption strength, lowering the activation energy barrier for the formation of *H2O2, and further converting it to H2O2. This work proposes an effective strategy for tuning O2 adsorption behavior to achieve highly selective and active photocatalytic H2O2 production.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4076-x
The transition from laboratory-scale to industrial hydrogen peroxide (H2O2) production hinges on achieving ultra-high photocatalytic efficiency. Herein, we demonstrate a nitrogen-substitution engineering strategy for photocatalysts by replacing partial carbon atoms in benzene-1,3,5-triamine with nitrogen atoms, showing dual synergistic effects: (1) electronic structure modification upon electronegativity and dipole moment of the building blocks, creating built-in electric fields that promote charge separation and interfacial electron transfer; (2) enhancement in adsorption of reaction intermediates significantly boosting oxygen reduction reaction (ORR) and water oxidation reaction (WOR) kinetics. This dual-modification system exhibits broadband light absorption extending to 700 nm (near-infrared), enabling outstanding performance under ambient conditions with a H2O2 production rate of 12099 μmol g−1 h−1 from water and O2 without any sacrificial agent, an apparent quantum efficiency (AQE) of 19% at 500 nm, and a solar-to-chemical energy (SCC) efficiency of 1.38%. This work establishes atom-engineered nitrogen substitution as a general approach for designing high-performance photocatalysts, offering a viable pathway for large-scale H2O2 production with solar-driven chemical synthesis paradigm.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-4006-4
Hydrogels, despite their potential in flexible electronics and wearable sensors, often suffer from inadequate mechanical robustness under sustained loading. This study aims to overcome this limitation by developing a novel nanocomposite hydrogel system through the integration of calcium-polyoxometalate sub-nanometer wires (Ca-POM SNWs) into a polyvinyl alcohol (PVA) matrix. Utilizing a H2O/ethylene glycol (EG) binary solvent, the hydrogel achieves uniform dispersion of Ca-POM SNWs, which enhances mechanical properties through dual reinforcement mechanisms: stress dissipation via polymer-mimetic flexibility and crystallinity improvement via hydrophobic ligand-induced chain alignment. The resulting PVA/Ca-POM hydrogel exhibits exceptional performance, including a 2.4-fold increase in fracture stress (0.85 MPa), 3.8-fold toughness enhancement (2.76 MJ m−3), and high ionic conductivity (3.6 S m−1). As a strain sensor, it achieves a gauge factor of 2.56 with rapid response, enabling precise detection of both large joint movements and subtle physiological vibrations. A prototype Morse code communication system further demonstrates its potential in assistive healthcare technologies, facilitating barrier-free, real-time communication between disabled patients and clinicians. This work highlights a breakthrough in inorganic-organic interface compatibility, offering a versatile platform for next-generation wearable technologies and extreme-environment applications. The innovative design principles and multifunctional performance underscore its significance in advancing soft material engineering.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3979-3
The escalating prevalence of multidrug-resistant Pseudomonas aeruginosa (P. aeruginosa) infections necessitates novel antibacterial strategies. Here, we engineered lectin B (LecB)-targeted glyco-dots (TFP2F) via self-assembly of a photosensitizer (TFP2) possessing aggregation-induced reactive oxygen species (ROS) generation capability with fucose-modified tetraphenylethene glycoclusters (TPE-Fuc4), enabling P. aeruginosa-targeted antimicrobial photodynamic therapy and wound healing promotion. Three photosensitizers (TFP0–2) featuring an “A-D-A” electronic structure were synthesized, exhibiting broad absorption bands and near-infrared (NIR) fluorescence. Among these, TFP2 demonstrated superior Type-I/II ROS production (including ·OH, ·O2−, and 1O2), achieving potent phototoxicity against P. aeruginosa (MIC80 = 7.5 μM). Self-assembly with TPE-Fuc4 yielded glyco-dots TFP2F that facilitated LecB-mediated bacterial targeting, enhanced bacterial uptake, and significantly reduced the MIC80 to 2.5 μM against drug-resistant P. aeruginosa under light irradiation. In a murine P. aeruginosa-infected wound model, TFP2F treatment combined with light irradiation accelerated wound closure to <20% of the initial area by day 8 (vs. >40% in controls) and eliminated >95% of bacteria by day 2. This work presents a convenient strategy for constructing glyco-dots as a potent functionalized platform for precision, lectin-targeted antimicrobial photodynamic therapy.
Journal of Fuel Chemistry and Technology•2026•DOI: 10.1016/S1872-5813(26)60762-1
The CO2 dry reforming of methane (DRM) is pivotal for CO2 utilization within the dual-carbon framework, offering advantages in carbon reduction and value-added chemical production. However, shaped catalysts suitable for industrial-scale DRM remain limited. This work constructs a monolithic catalyst using honeycomb cordierite as the structural support, systematically investigating the effects of organic and inorganic binders on coating structure and catalytic performance. Comparative studies reveal that the active coating fabricated with inorganic aluminum sol exhibits a continuous uniform morphology and excellent adhesion strength. During high-temperature calcination, elemental diffusion within Al2O3 networks bridges the cordierite surface with active catalyst particles, forming a (Ni-Mg)AlxO4 composite structure. This creates robust metal-support interactions between active sites and the residual alumina matrix. The interconnected mesoporous framework provides superior pore confinement, contributing to strong coating adhesion, enhanced activity, and improved resistance to carbon deposition in the monolithic m-NCM-Al-sol catalyst. In contrast, coatings derived from inorganic silica sol suffer from detachment and activity loss due to heterogeneous surface structures and poor adhesion. Organic binders demonstrate inferior performance in macroscopic coating uniformity, adhesion strength, mesoporous confinement, and localized electronic effects, resulting in the poorest catalytic performance. By optimizing aluminum sol coating parameters—binder content, active component dosage, and coating cycles—a synergistic balance between coating thickness and mass transfer is achieved. The optimized catalyst demonstrates excellent DRM performance, providing insights for constructing high-performance shaped catalysts with cordierite coatings.
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/s40843-025-4032-x
This study introduces a dual-compatibility third component as an interfacial modifier to precisely regulate the active layer morphology of bulk heterojunction organic solar cells (BHJ-OSCs). This approach successfully suppresses excessive phase separation, significantly enhancing the performance of thick-film devices. The interface-styling strategy enhances donor–acceptor interactions, optimizes vertical phase separation morphology, extends exciton diffusion length, improves exciton dissociation efficiency, facilitates efficient charge transport, and effectively suppresses trap-assisted recombination. The ternary device based on PM6:PCN3:PY-IT achieved a power conversion efficiency (PCE) of 19.41%, which was much higher than that of the PM6:PY-IT binary system (18.67%). The device maintains excellent performance at an active layer thickness of 200 nm, achieving a high PCE of 18.25%. This study demonstrates the significance of using dually compatible molecules for interface modification in all-polymer solar cells (all-PSCs), providing theoretical guidance for the fabrication of high-performance thick-film devices.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-4100-9
Shape memory droplet manipulation platforms have attracted significant attention due to their programmable droplet control capabilities. Current research primarily focuses on superhydrophobic surfaces and slippery lubricant-infused porous surfaces (SLIPS); however, these approaches suffer from vulnerable surface micro/nanostructures and loss of lubricant oils. Here, we report a shape memory quasi-liquid polydimethylsiloxane (PDMS) brush surface that overcomes these limitations. The surface is fabricated by introducing a SiO2 layer as a 'bridge' on a shape memory epoxy substrate, providing abundant functional groups for grafting PDMS brushes. By precisely controlling the SiO2 layer thickness and grafting conditions, the surface exhibits good shape memory properties and low adhesion to diverse liquids with varying surface tensions. Reversible anisotropic/isotropic droplet sliding control for both water and organic droplets is demonstrated through dynamic introduction/removal of groove structures, proving excellent droplet manipulation based on the combination of shape memory and low adhesion of PDMS brushes. Furthermore, the material can be applied as a functional coating on diverse substrates to impart anti-fouling and self-cleaning properties. This work introduces a nanoscale SiO2 layer as a 'bridge', offering a strategy to graft PDMS brushes onto polymer surfaces. Given the advantages of quasi-liquid PDMS brushes and programmable controllability of shape memory polymers, this work provides fresh ideas for developing droplet manipulation platforms.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3998-8
Constitutional isomerism in covalent organic frameworks (COFs) has emerged as a powerful strategy to tailor material properties for photocatalytic applications. Here, we report the design and synthesis of two isomeric multicomponent COFs (MC-COFs) via Schiff-base condensation followed by Povarov reaction, converting imine linkages into quinoline structures. These isomeric MC-COFs exhibit opposing C=N bond orientations and distinct phenyl group alignments within the COF pores, leading to different torsion angles in the COF layers. Structural analyses reveal that enhanced planarity promotes π-π stacking and electron delocalization, resulting in favorable band structures and reduced exciton binding energies. Consequently, the optimized COF achieves a superior hydrogen peroxide (H2O2) production rate of 3128 μmol g−1 h−1 under visible light irradiation. This work underscores the critical influence of structural isomerism on the photocatalytic efficiency of MC-COFs and provides insights for rational design of high-performance COF-based photocatalysts.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-4045-x
The release of radioactive iodine from nuclear accidents and nuclear medicine poses significant environmental and health risks. Here, we report the design and synthesis of two cross-linked macrocycle-based porous organic polymers (P1 and P2) with different functionalities for efficient and rapid capture of radioactive iodine. P1 achieves complete iodine adsorption within 5 minutes, with an exceptional adsorption rate constant (k_obs) of 18.92 g g−1 min−1 (8.24 g g−1 min−1 for P2), representing a record-high iodine removal rate among state-of-the-art porous organic polymers. P1 demonstrates superior iodine adsorption efficacy in dynamic flow-through experiments, achieving a remarkable efficiency of 96.4% for radioactive 131I removal, greatly minimizing radiation contamination. Experimental and modelling techniques reveal that the superior iodine adsorption performance originates from electron-rich functional groups, hydrophobic surface, and porous structure of P1, thus exhibiting remarkable iodine capture capabilities through charge transfer, halogen bonding, and hydrophobic effects. The adsorbents show excellent stability and performance under complex and harsh conditions (pH 2–10) and can be easily regenerated, confirming their excellent reusability and potential for practical applications.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-4081-y
The evolution of precision medicine has propelled multimodal imaging-guided phototheranostics to the forefront for precise tumor diagnosis and therapy. Low-temperature photothermal therapy (PTT) offers a promising approach for the treatment of melanoma due to its non-invasiveness and minimal damage to normal tissues. However, its efficacy is limited by cancer cell thermal tolerance. To address this, a new type of multifunctional energy disruptor (CAMeO-Q NPs) is developed featuring homologous targeting and mitochondria targeting, and synergistically enhancing low-temperature PTT in melanoma by reversing heat shock protein 90 (Hsp90)-mediated thermal tolerance and blocking mitochondrial adenosine triphosphate (ATP) biosynthesis. The multifunctional energy disruptor enables precise trimodal imaging (fluorescence imaging/FLI, photoacoustic imaging/PAI, and photothermal imaging/PTI) guidance for low-temperature PTT. Comprising a mitochondria-targeting photothermal agent and an Hsp90 inhibitor, CAMeO-Q NPs induce selective mitochondrial damage under 660 nm laser irradiation and downregulate cellular HSP expression by ATP inhibition and Hsp90 inhibitor. This multifunctional energy disruptor provides a novel strategy for enhancing multimodal imaging-guided low-temperature photothermal therapy through combined homologous targeting, mitochondria-targeting, and Hsp90 inhibition.
Journal of Fuel Chemistry and Technology•2026•DOI: 10.1016/S1872-5813(26)60685-8
Steam reforming of biomass-derived alcohols (ethanol, ethylene glycol, glycerol, etc.) represents a critical pathway for sustainable hydrogen energy systems. This review systematically examines recent advances in heterogeneous catalysis, elucidating structure-performance correlations between alcohol molecular structures and catalyst requirements. Ethanol is prone to dehydration and methanation side reactions, while ethylene glycol leverages its dihydroxy structure to enhance dehydrogenation and C–C cleavage, improving H2 selectivity. In contrast, glycerol suffers from intensified reaction network complexity and carbon-induced deactivation due to its trihydroxy configuration. The unified catalyst design strategy involves precisely modulating metal electronic structures (e.g., alloying/atomic-level dispersion) and support oxygen mobility (e.g., rare-earth modification) to synergistically optimize dehydrogenation and carbon resistance. Ni-based catalysts dominate owing to low cost and high C–C bond activation capability, yet their stability requires synergistic enhancement via alloying (Fe, Co, Cu, etc.) or rare-earth modification (Ce, Pr, La, etc.). Noble metal systems (Pt, Rh, Ir, etc.) exhibit low-temperature activity advantages, but are transitioning strategically toward single-atom catalysis and high-entropy-oxide-based multicomponent architectures under cost constraints. Future efforts are suggested to integrate in situ/operando characterization with theoretical modeling to uncover dynamic structure-activity relationships, establish elementary reaction databases for data-driven rational catalyst design, and achieve cross-scale catalyst-reactor synergy, thereby providing a scientific foundation for efficient sustainable hydrogen production.
Journal of Fuel Chemistry and Technology•2026•DOI: 10.1016/S1872-5813(26)60686-X
This study reports a streamlined route for synthesizing plate-like α-Al2O3 via co-combustion activation of coal gangue and corn stalk, enabling high-value utilization of solid wastes. The introduction of corn stalk significantly reduces the apparent activation energy of coal gangue combustion and increases the acid leaching yield of aluminum to 81.9%. Mechanism analysis reveals that titanium and iron ions in the co-combustion ash leachate act as natural morphology regulators, facilitating the formation of a plate-like structure in the alumina product, with titanium exhibiting leaching behavior consistent with that of aluminum. Furthermore, a high content of AlO6 structural units in the precursor effectively promotes the direct conversion into dense α-Al2O3 crystals during thermal treatment, thereby enhancing product density. Under optimized conditions (800 °C, 1 h), the as-prepared α-Al2O3 exhibits a plate-like morphology, with a median particle size (d50) of 5.70 μm and a density of 4.94 g/cm3. This work provides a new approach for the synergistic resource utilization of coal gangue and biomass waste.
Journal of Fuel Chemistry and Technology•2026•DOI: 10.3724/2097-213X.2026.JFCT.0006
The oxygen reduction reaction (ORR) is a critical cathode reaction in fuel cells and metal-air batteries, yet its sluggish kinetics and high overpotential severely limit device performance. Conventional platinum-based catalysts suffer from prohibitive cost (accounting for up to 40% of total fuel cell system cost), scarce reserves, and poor tolerance to methanol and carbon monoxide, impeding large-scale commercialization. This review systematically summarizes recent advances in biomass/coal-based carbon materials as ORR electrocatalysts, focusing on raw material characteristics, preparation methods, structural regulation, and performance evaluation. Biomass and coal precursors offer advantages of low cost, abundant availability, and natural heteroatom doping (N, P, S), enabling the design of high-performance, metal-free catalysts. Key challenges include ensuring raw material homogeneity, precise control of active sites, and scalable synthesis. Future research directions emphasize optimizing pore structure and surface chemistry to enhance four-electron selectivity and stability. The review provides theoretical guidance for developing cost-effective ORR catalysts to replace platinum, thereby accelerating the deployment of clean energy technologies.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4109-2
The fabrication of high-efficiency organic solar cells (OSCs) under ambient conditions remains a formidable challenge due to the sensitivity of active layer morphology to environmental factors. We propose an innovative approach for air-processed devices that combines spontaneous water-spreading film formation with layer-by-layer (LBL) deposition. This method enables the fabrication of donor- and acceptor-dominant bulk heterojunction blend films near the anode and cathode interfacial layers, respectively, optimizing vertical phase separation and enhancing charge transfer efficiency. In the D18:L8-BO system, the device achieves a power conversion efficiency (PCE) of 19.02% with an exceptionally narrow efficiency distribution. Even for devices with an area of 1 cm2, a PCE of 16.56% is attained. After a 1000-hour decay test, the efficiency retains 84.1%. This novel method offers a promising pathway for advancing the industrial application of large-area, highly stable devices with narrow efficiency distribution under ambient conditions.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4123-0
Aqueous aluminum-ion batteries (AAIBs) are promising for large-scale energy storage due to safety, sustainability, and theoretical high capacity. However, sluggish electron/ion transport in conventional cathodes limits rate capability. Here, we first propose high-entropy engineering of metal oxides (HEOs) as cathodes in AAIBs, leveraging the 'cocktail effect' and abundant electron transport pathways to enhance rate-capacity. Atomic-level interactions between different metal atoms broaden the d-band with reduced electronic level degeneracy, facilitating rapid electron transport, achieving one of the best rate capabilities (119.4 mAh g−1 at 10.0 A g−1) among metal-oxide cathodes. The disordered layered oxides formed with a high-entropy framework alleviate electrostatic repulsion between aluminum ions and the fixed lattice, mitigating structural degradation and imparting excellent cycling stability (over 95.1 mAh g−1 after 500 cycles at 2.0 A g−1). The optimized HEO-Cr cathode (Fe0.6Co0.6Ni0.6Mn0.6Cr0.6O4) exhibits outstanding rate performance and cycling stability. DFT simulations and electrochemical tests reveal that multi-transition metal incorporation, bandgap narrowing, and unique lattice structure drastically enhance electron transport efficiency. The layered phase formed after cycling, based on a high-entropy framework, overcomes challenges from high charge density aluminum ions, significantly enhancing cycling stability. This work paves the way for high-performance AAIBs and other aqueous multivalent metal ion batteries by rationally designing high-entropy engineering.
SCIENCE CHINA Materials•2025•DOI: 10.1007/s40843-025-3631-1
Anion exchange membrane water electrolysis (AEMWE) offers cost and dynamic-response advantages over proton exchange membrane systems, yet commercial deployment is constrained by the alkaline stability of anion exchange membranes (AEMs) and the sluggish kinetics of non-precious metal catalysts. This work reports a series of poly(terphenyl-diphenylmethane piperidinium) (QPDPMTP) membranes synthesized with varied diphenylmethane (DPM) content. The alkyl chain of DPM induces pronounced microphase separation and elevates free volume fraction, yielding an OH− conductivity of 152 mS cm−1 at 80 °C for QPDPMTP-10. After 1032 h immersion in 6 M NaOH at 80 °C, the membrane retains 90.7% of its initial conductivity. An AEMWE cell integrating QPDPMTP-10 with a non-precious NiFeCo LDH/NiS/NF anode achieves 3.11 A cm−2 at 2 V in 1 M KOH at 80 °C and sustains 1 A cm−2 for 1800 h under gradient KOH concentration. These results establish a viable pathway for durable, low-cost AEMWE systems.