SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4435-9
Organic room-temperature phosphorescent (RTP) materials exhibit large Stokes shifts, high signal-to-noise ratios, and long emission lifetimes, positioning them as promising candidates for advanced anti-counterfeiting, bioimaging, sensing, and display technologies. Despite significant progress in molecular design—including radical-based systems, crystal engineering, host-guest doping, polymer matrix confinement, and supramolecular assembly—the integration of these materials with 3D printing remains in its infancy. This review critically examines the design strategies and research advances in 3D-printed organic RTP materials, focusing on the fundamental photophysical processes of intersystem crossing and suppression of non-radiative transitions. We analyze how printing parameters, matrix rheology, and layer-by-layer deposition influence phosphorescence quantum yields and lifetimes. Key challenges such as oxygen quenching, thermal degradation during extrusion, and poor interlayer adhesion are discussed with quantitative benchmarks. The review highlights that current 3D-printed RTP systems achieve lifetimes up to 1.2 s and quantum yields of 12% under ambient conditions, but scalability beyond 100 cm² remains limited by nozzle clogging and slow curing kinetics. By mapping material formulation to printability, we identify operational windows for extrusion-based and vat photopolymerization techniques. This work provides a roadmap for engineers to transition RTP materials from laboratory-scale demonstrations to industrial fabrication of complex 3D architectures with persistent luminescence.
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/s40843-026-4505-9
Transition metal hydroxides are promising oxygen evolution reaction (OER) catalysts for alkaline water electrolysis. This study reports Ce-doped Co(OH)2 electrocatalysts synthesized via one-step electrodeposition, where the Ce3+/Ce4+ ratio is precisely controlled by deposition temperature. The optimized Ce-Co(OH)2 catalyst, obtained at 40°C, exhibits an overpotential of 236 mV at 10 mA cm-2 and maintains stability for 200 h. In an anion-exchange membrane water electrolyzer (AEMWE), the Ce-Co(OH)2 anode achieves a cell voltage of 2.04 V at 1 A cm-2 and operates for over 500 h at 500 mA cm-2. Mechanistic analysis reveals that Ce3+/Ce4+ dynamic electron buffering regulates surface reconstruction: during OER, electron transfer direction reverses (Ce → O → Co), with Ce donating electrons to Co sites to prevent over-oxidation and structural collapse. This work establishes a versatile strategy for balancing surface reconstruction and structural stability in Co-based OER catalysts, providing a foundation for designing high-performance, durable alkaline water oxidation electrocatalysts.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4248-2
Marine biofouling imposes substantial operational penalties on maritime assets, yet commercial silicone foul-release coatings rely on static, non-adaptive networks that cannot be reprocessed or repaired. This work introduces selenonium-salt-catalyzed dynamic siloxane exchange as a route to polydimethylsiloxane (PDMS) vitrimer coatings. The authors incorporate A16Se+ organoselenium catalysts into PDMS networks at loadings designated A16Se+xPDMS, enabling thermally activated siloxane bond exchange that confers vitrimeric stress relaxation, reprocessability, and high-temperature self-healing. Antibiofouling performance is benchmarked against pristine PDMS using colony morphology assays for Staphylococcus aureus, Escherichia coli, and Pseudomonas aeruginosa, SEM imaging of bacterial adhesion after 3 h, Chlorella fluorescence adhesion quantification, zeta potential measurements, and 3-month seawater immersion panels. Reviewer 1 questioned the direct relevance of recyclability and high-temperature self-healing to marine antifouling and requested that surface elastic modulus and Pseudomonas antibacterial data be elevated to the main text. In response, the authors relocated scratch and self-healing results from Figure 5 to Supporting Information Figures S12 and S13, condensed the main-text discussion, and integrated surface elastic modulus data into Figure 4G and Pseudomonas antibacterial results into Figure 6A. The revised manuscript positions dynamic exchange as supporting evidence of network dynamics rather than as a primary antifouling metric, while foregrounding modulus and antibacterial performance as the application-relevant properties.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4267-y
The synthesis of two-dimensional MBenes from MAB-phase ceramics is impeded by uncontrolled etching kinetics that compromise structural integrity and yield. This study introduces a vacuum molten salt strategy to regulate space-charge accumulation during the selective removal of Al from Mo2AlB2, producing honeycomb-like architectures. The vacuum environment suppresses oxidative side reactions and modulates ionic transport, enabling precise control over etching depth and morphology. The resulting Mo2AlB2 exhibits exceptional electromagnetic wave absorption, with a minimum reflection loss of -56.3 dB at 2.4 mm and an effective absorption bandwidth of 6.8 GHz. These metrics surpass conventional etching-derived MBenes by a factor of 2.5 in attenuation capacity. The space-charge-regulated mechanism is elucidated through in situ spectroscopic and computational analyses, revealing that vacancy-induced charge redistribution governs the etching front propagation. This work establishes a scalable route for high-purity MBenes with tailored porosity, addressing critical bottlenecks in energy absorption and catalytic applications. The vacuum molten salt approach eliminates the need for hazardous HF, offering a safer and more environmentally benign pathway for industrial translation.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4466-3
Conventional surface coating technologies for 45 steel are constrained by high processing temperatures, limited material compatibility, and insufficient interfacial bonding. This study introduces ultrasonic vibration-assisted mechanical coating (UVAMC) as a low-temperature deposition route that mitigates these limitations. The process yields a chromium coating on 45 steel with a nanoscale elemental interdiffusion transition layer at the interface, achieving a bonding strength of 66.0 MPa. The coating delivers improved corrosion resistance in aggressive environments while preserving the substrate's original compressive and tensile strength. The method also demonstrates broad process adaptability, successfully depositing copper, aluminum, and 316 stainless steel powders, and forming complex shapes such as the "SZU" pattern. These results establish UVAMC as a viable surface functionalization strategy for metallic materials, combining efficient deposition with operational flexibility.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4493-8
Metal halide perovskite photovoltaics have achieved power conversion efficiencies rivaling crystalline silicon, yet their transition from laboratory-scale devices to commercial deployment requires a paradigm shift toward application-specific engineering and macroscopic system integration. This review systematically evaluates the customized deployment of perovskite solar cells (PSCs) across diverse operational theaters, including building-integrated photovoltaics (BIPV), portable Internet of Things (IoT) systems, agricultural photovoltaics (Agri-PV), vehicle-integrated photovoltaics (VIPV), utility-scale tandems, and extreme space environments. Despite these opportunities, critical challenges persist in translating laboratory achievements into industrial-scale production. We critically evaluate primary bottlenecks hindering gigawatt-scale commercialization, focusing on the performance gap inherent in large-area manufacturing. Additionally, we analyze intrinsic material instabilities driven by dynamic ion migration and multi-scale lattice strain under realistic outdoor conditions. To conclude, we outline a strategic roadmap for overcoming these barriers, emphasizing lattice strain regulation, rigorous dynamic environmental testing protocols, and comprehensive sustainable lifecycle management. By synergizing mechanistic insights with scalable manufacturing and ecological assessments, this review provides a holistic framework to accelerate the ubiquitous commercialization of customizable, stable, and high-efficiency perovskite energy systems.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4323-8
Sulfur-based batteries are promising for next-generation energy storage due to high theoretical capacity, natural abundance, and low cost of sulfur cathodes. However, practical implementation is impeded by sluggish sulfur redox kinetics, dissolution and migration of intermediate polysulfides, and formation of insulating discharge products. Conventional catalyst design focuses on charge distribution, adsorption energetics, and structural confinement, yet these approaches incompletely describe the complex electronic processes governing sulfur conversion. Electron spin, an intrinsic quantum degree of freedom, offers an additional dimension for modulating catalytic behavior via its influence on electronic structure and orbital interactions at catalytic interfaces. In spin-polarized systems, changes in occupation and splitting of transition-metal d orbitals can regulate d-p hybridization with sulfur species, affecting interfacial charge transfer and energetics of sulfur redox reactions. This review summarizes recent progress in elucidating and manipulating electron spin in sulfur-based battery systems. Fundamental principles connecting spin states with electronic structure and catalytic behavior are outlined, followed by experimental approaches for probing spin-related electronic properties using spectroscopic and magnetic characterization techniques. Emerging strategies for spin regulation are highlighted, including heteroatom doping, defect engineering, coordination environment modulation, chirality-induced spin selectivity, and external magnetic-field control. Remaining challenges in identifying spin effects under realistic electrochemical conditions are addressed, along with opportunities for integrating spin-related descriptors into catalyst design. Establishing quantitative relationships between spin polarization, orbital hybridization, and sulfur reaction pathways may provide new perspectives for high-performance sulfur-based batteries.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4202-3
Carbon dots (CDs) with absorption in the second near-infrared window (NIR-II, 900-1700 nm) hold promise for tumor theranostics, yet existing synthesis methods often involve complex procedures, harsh conditions, or lack precise control. Here we report a 'self-photooxidation-restructuring' strategy that enables structural reorganization of the carbon core in CDs, achieving a significant redshift of absorption into the NIR-II region. Under ultraviolet (UV) light irradiation, the precursor (B-CDs, absorption in UV region) generates singlet oxygen, which self-oxidizes aldehyde groups and the carbon skeleton of B-CDs to stronger electron-withdrawing carboxyl groups and carbon radicals, respectively. These processes facilitate the formation of new C=C bonds between isolated aromatic domains, thereby transforming B-CDs into novel CDs (N-CDs) characterized by enhanced donor-acceptor interactions and a redshift in absorption toward the NIR-II window. Various experimental data, including high-resolution XPS, FTIR, NMR, EPR, have proved the proposed formation mechanism. The novel N-CDs afforded a high photothermal conversion efficiency of up to 71.33%, which enabled 1064 nm laser-activated photoacoustic imaging (PAI)-guided photothermal therapy (PTT) in tumors. This work opens a new avenue for the synthesis and modulation of CDs in the NIR-II region.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4359-0
Organic solar cells (OSCs) require cathode interlayers (CILs) that combine high charge transport, defect passivation, and thickness insensitivity for scalable manufacturing. Here, we report the synthesis of a novel A-D-A-A'-type polymer, PDPP2F-NDI-N, via the green and efficient direct arylation polymerization (DArP) method. The multiple electron-deficient units in the backbone confer strong electron-withdrawing character, effective work function modulation, enhanced built-in potential, high crystallinity, and ordered molecular packing. PDPP2F-NDI-N exhibits a high electron mobility of 1.01 × 10⁻³ cm² V⁻¹ s⁻¹ and electrical conductivity of 3.13 × 10⁻³ S m⁻¹, facilitating efficient charge extraction and transport. Its interfacial modification capability suppresses interfacial defects and reduces non-radiative recombination losses. In ternary OSCs, PDPP2F-NDI-N achieves a high power conversion efficiency (PCE) of 20.44%, with outstanding thickness insensitivity retaining 92.8% of peak PCE at a 30 nm CIL thickness, and a T80 lifetime exceeding 1700 hours under photo-thermal aging. This work demonstrates that poly(A-D-A-alt-A') backbone design combined with DArP synthesis provides an effective strategy for developing high-performance, thickness-insensitive, and stable polymeric CILs, advancing efficient, stable, and scalable OSC applications.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4237-x
Silicon-based (Si-based) anodes are core candidates for next-generation high-energy solid-state batteries (SSBs) due to their high theoretical capacity (~4200 mAh g−1). However, their practical application is constrained by the 'size effect', which influences mechanical integrity and electrochemical performance. This review systematically examines the failure mechanisms of nano-silicon (nSi) and micro-silicon (mSi) anodes when paired with sulfide and organic-inorganic composite solid-state electrolytes (SSEs). Key functional parameters of these SSEs are discussed, along with strategies to mitigate interfacial impedance and accommodate volume changes. Recent progress in structural and interface modifications is highlighted, including the use of hard-carbon-stabilized Li–Si anodes (achieving stable cycling) and pressure-free operation. The review identifies core challenges, such as achieving intimate solid–solid contact and managing mechanical stress, and outlines future directions for 'size effect' regulation to accelerate commercialization of high-energy Si-based SSBs.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4192-y
Electrochemical water splitting is pivotal for scalable green hydrogen production, yet its practical deployment hinges on cost-effective electrocatalysts with high activity and durability. This study introduces a low-cost, three-dimensional (3D) nanoporous ZrVFeCoNi material fabricated via chemical dealloying, at merely 0.16% of the cost of Pt. The structure-activity relationship between its microstructure and hydrogen evolution reaction (HER) performance was systematically explored. Lattice defect effects from multiphase intermetallic compounds, combined with multi-metal synergy, optimize H+ adsorption energy and electron transfer kinetics. The 3D nanoporous architecture provides a high electrochemical surface area with abundant active sites, enhancing electrolyte penetration and reducing interfacial mass transfer resistance. Consequently, the ZrVFeCoNi electrode exhibits outstanding HER performance, requiring only a 38 mV overpotential to reach 10 mA cm−2 and maintaining stable operation for 1000 h at 500 mA cm−2. Integrated into a full water electrolyzer (ZrVFeCoNi || IrO2/Ni), the system achieves a cell voltage of 1.60 V at a current density of 400 mA cm−2. Advanced characterization and density functional theory (DFT) calculations reveal that interfacial interactions and charge transfer at heterointerfaces drive catalytic activity, showcasing the potential of 3D nano-structured multiphase intermetallic compounds as high-performance electrocatalysts for green hydrogen systems.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4232-1
Polyanionic cathode materials are widely considered as potential cathode materials for sodium-ion batteries due to their strong three-dimensional framework and intrinsic thermal safety. Nevertheless, the limitation of the specific capacity and energy density hindered their application, which can be ascribed to the common reliance of single-electron redox reaction of the transition metal. By realizing the reversible double redox reaction of vanadium-based and manganese-based polyanion cathodes, researchers have successfully opened up a new way to break through the long-term performance limitations. Recent studies disclose that vanadium and manganese-based polyanionic cathodes exhibit the possibility of realizing a reversible double-redox reaction, which opened up new avenues to overcome the capacity dilemma. However, many fundamental issues remain unclear, including insufficient structural stability at high operating voltages, irreversible structural evolution induced by sodium extraction, sluggish electronic and ionic transport kinetics, and Jahn–Teller distortion. Therefore, it is imperative to summarize recent work in order to clarify the pathway for future investigation. In this review, the key challenges associated with the activation of the double-redox reaction are outlined, followed by the realization and regulation of the double-redox reaction in polyanionic cathode materials. A systematic summary of recent studies is performed for both vanadium and manganese-based compounds, which could contribute to the fundamental understanding of the double-redox reaction mechanism. Combined with the modification strategy and future perspective, this review provides insights into the rational design of polyanionic cathodes with a reversible double-redox reaction. It also offers insights into the development of high-energy-density cathode materials for next-generation sodium-ion batteries.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4366-1
Perovskite solar cells (PSCs) have achieved remarkable power conversion efficiencies, yet their operational stability remains a critical bottleneck for commercialization. Strain at the buried interface, induced by thermal expansion mismatches and lattice distortions during annealing, is a major contributor to performance degradation. This work introduces a meltable additive-enabled liquid medium annealing (LMA) strategy to dynamically regulate strain in situ. By employing a liquid medium that melts at elevated temperatures, the annealing process provides a compliant environment that alleviates residual strain at the buried interface. Cross-sectional scanning electron microscopy and high-angle annular dark-field imaging reveal improved interfacial contact and reduced lattice distortion. Modulus mapping indicates enhanced mechanical uniformity, while molecular dynamics simulations corroborate the strain-relief mechanism. The d-spacing variation of the (001) facet upon heating at 85 °C is significantly suppressed, indicating superior thermal stability. Under diurnal cycling (12 h maximum power point tracking at 85 °C and 12 h dark at room temperature), the target devices exhibit enhanced stability, retaining a higher fraction of their initial performance compared to controls. This work underscores the importance of phase engineering during annealing and opens a new avenue for strain management in perovskite photovoltaics and beyond.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3629-3
Electrically pumped lasers with reduced physical dimensions are critical for future optical information processing, storage, and photonic integrated circuits. However, electrical injection in perovskite lasers faces challenges including material instability, non-radiative losses, and Joule heating. Here, we demonstrate an ultralow-threshold perovskite microlaser decorated with gold nanoparticles (AuNPs), enabling simultaneous optical pumping and current injection at ambient temperature. The lasing threshold is reduced to 8.6 μJ/cm², approximately 44% lower than that of pristine devices (15.3 μJ/cm²). The AuNPs, with optimized size, enhance both lasing performance and electrical properties, achieving a current injection density of 2.98 kA/cm². AuNPs accelerate hot-carrier cooling, reducing non-radiative recombination and mitigating Joule heating. The threshold decreases progressively with increasing electrical assist fraction. Stability tests confirm excellent resistance to aging and humidity, with stable lasing output under co-excitation in ambient air. This work underscores the feasibility of electrically driven perovskite microlasers, offering a pathway toward electrically pumped microlaser diodes.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3588-2
The rapid evolution of aerospace technology necessitates the development of multi-functional composites that combine light weight, mechanical robustness, thermal protection/insulation, and electromagnetic interference (EMI) shielding. C/SiC porous ceramic composites are promising for thermal protection in hypersonic vehicles. Here, we report a facile strategy to fabricate Cf/SiC composite polymer-derived ceramics (PDCs) via re-pyrolysis of high-energy ball-milled polycarbosilane-vinyltriethoxysilane-graphene oxide (PVG) with Cf/SiC(rGO)p blend interleaves. In-situ generated honeycomb-like cellular structures and non-directional channels reduce density and increase porosity. High-quality SiO2 joints, formed from Si-dangling bonds, strengthen interfacial bonding via a brazing effect, while in-situ SiOC nanowires (SiOCnws) create a hierarchically enhanced network, improving fracture toughness and crack resistance. Multi-scale interfacial/dipole polarization enhances EMI shielding. The optimized Cf(0.2)/SiC(rGO) composite exhibits low density (1.49 g cm−3), high fracture toughness (6.32 MPa m1/2), hardness (7.18 GPa), compressive strength (72.67 MPa), and EMI shielding effectiveness of 58.31 dB. It maintains structural stability under butane blowtorch ablation at ~1300 °C for 3600 s. Porous variants show thermal conductivity of 0.211 W m−1 K−1 with 69.74% porosity. These multi-functional composites are promising for thermal protection systems in aerospace applications.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3660-5
High-sensitivity piezoelectric ceramics with high piezoelectric constants (d33) are crucial for miniaturized, low-power, and high-efficiency transducers. However, conventional performance enhancement relies on intrinsic parameter modulation, which is limited and blind. This study introduces a performance-driven metamaterials creation model to develop structure-function-integrated piezoelectric materials. We systematically investigated the effects of metastructure design on d33 across two-dimensional straight rod (SR) structures, three-dimensional dot-matrix (Octa) structures, complex triply periodic minimal surface (TPMS) structures, and hybrid Octa&SR structures. The results demonstrate that metastructures combining high polarization charge conversion efficiency with low compression modulus (stiffness) effectively enhance d33. The SR structure exhibited optimal polarization charge conversion, the Fks-Shellular (FksS) structure within TPMS showed low stiffness, and the Octa&SR structure combined both properties. Notably, all three structures displayed exceptional piezoelectric performance. Specifically, the FksS structure achieved a substantial d33 of 194 pC/N, a 24% enhancement over conventional solid BaTiO3, while maintaining isotropic and stress-insensitive properties. This work elucidates the mechanism for designing piezoelectric metastructures, offering a novel pathway for developing high-performance, high-failure-strength piezoelectric materials.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3715-5
A new generation of porphyrin-based photosensitizers (PoTA1–PoTA3) was developed for photocatalytic hydrogen evolution (PHE). Each photosensitizer features dual anchoring groups—4-ethynylbenzoic acid, 3-ethynylbenzoic acid, or 5-ethynylthiophene-2-carboxylic acid—at the meso-position of the porphyrin macrocycle, along with long-chain alkyloxy substituents. This dual-modification strategy suppresses charge recombination and reduces aggregation on TiO2 surfaces. PoTA3, containing the 5-ethynylthiophene-2-carboxylic acid moiety, exhibits a redshifted and broadened absorption profile, enhancing solar spectrum utilization. Under blue light irradiation, the PoTA3-based system achieves an apparent quantum yield (AQY) of 8.3%, an initial hydrogen evolution rate of 485 mmol g−1 h−1, and a turnover number (TON) of 27,858 in aqueous media, substantially outperforming PoTA1 and PoTA2. Under white light, PoTA1 and PoTA3 achieve AQY values of 5.5% and 6.8%, respectively, surpassing the benchmark YD2-o-C8 (AQY = 4.07%). The synergistic effects of enhanced light harvesting, minimized aggregation, and optimized HOMO/LUMO electron density distributions contribute to high efficiency and robust operational stability. These findings establish a flexible molecular engineering platform for next-generation solar-to-hydrogen conversion systems.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3744-9
The high-value utilization of industrial wastes is critically important for environmental protection and sustainable development. In this work, amorphous NaFeP2O7 (NFPO) and NaFeP2O7/rGO (NFPO/rGO) composite are synthesized via a selective chemical precipitation approach, utilizing industrial jarosite residue as the iron source. The sodium storage performance and mechanism of this amorphous NFPO/rGO composite as a novel cathode material for sodium-ion batteries (SIBs) are explored for the first time. The as-synthesized amorphous NFPO/rGO composite exhibits outstanding long-term cycling performance of 79.1 mAh g−1 after 1000 cycles at 0.1 A g−1, while the crystalline NFPO/rGO composite does not work. Galvanostatic intermittent titration technique and in-situ electrochemical impedance spectroscopy analysis demonstrate that the amorphous NFPO/rGO composite has high Na+ diffusivity and fast kinetics. In-situ X-ray diffraction analysis reveals the structure change from amorphous NaFeP2O7 to triclinic Na2FeP2O7 during the first discharge process and then evolves to a highly disordered structure in the subsequent charge/discharge cycles. The present work not only provides an avenue for the high-value utilization of jarosite residue but also offers theoretical guidance for the structural design and development of NaFeP2O7-based cathode materials for SIBs.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3695-8
Sulfur-based lithium-ion batteries, particularly those employing sulfurized poly(acrylonitrile) (SPAN) cathodes and graphite (Gr) anodes, offer high theoretical capacity and low cost but suffer from temperature-dependent capacity decay. This study systematically investigates the electrochemical dynamics and capacity decay mechanism of SPAN||Gr pouch cells cycled at 25–55 °C. Multiscale analyses reveal that capacity fade arises from active lithium loss and increased resistance, both accelerated by higher temperatures. Active lithium loss is primarily attributed to dead lithium formation and thickening of the solid electrolyte interphase (SEI) and cathode electrolyte interphase (CEI), while resistance increase is predominantly due to SEI/CEI thickening. As temperature rises, active lithium loss becomes the dominant decay factor. Leveraging the consistent decay mechanism across temperatures, an accelerated aging model based on the Arrhenius equation is developed: y = 0.9x + a. This model accurately predicts cycling parameters at specific temperatures and reduces testing time by 50% when extrapolating from 55 °C to 25 °C. These insights provide critical guidance for developing long-life sulfur-based batteries for practical energy storage applications.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3586-7
Ischemic stroke is a leading cause of mortality and long-term disability worldwide, with endovascular stent intervention emerging as a key therapeutic strategy. Biodegradable Mg-Zn-Y-Nd alloy (ZE21B) offers promising mechanical properties and biocompatibility for vascular scaffolds, yet suffers from inadequate corrosion resistance, insufficient endothelialization, and impaired blood-brain barrier remodeling. This study develops a composite coating comprising barnacle cement protein cp19k and sulfonated hyaluronic acid nanoparticles (NP@S-HA) applied via electrostatic spraying onto ZE21B. The cp19k/NP@S-HA coating enhances corrosion resistance by approximately 40.6% relative to uncoated ZE21B, as determined by electrochemical and static immersion tests. In vitro blood and cellular assays demonstrate that the coating promotes endothelial cell proliferation and migration, inhibits smooth muscle cell proliferation while regulating contractile phenotype, suppresses macrophage adherence and induces M2 polarization, reduces TNF-α expression, and mitigates fibroplasia. These findings indicate that the cp19k/NP@S-HA composite coating provides an effective surface modification strategy for biodegradable magnesium alloys in cerebrovascular applications, potentially improving stent performance and patient outcomes.
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/s40843-025-3919-0
Nuclear energy is critical for sustainable economic development and achieving carbon neutrality. With only about 6.14 million tons of terrestrial uranium, sufficient for ~70 years of global nuclear power plant operation, the recovery of uranium from seawater and spent fuel is essential for long-term nuclear fuel supply. The ocean contains approximately 4.5 billion tons of uranium, which could sustain nuclear power for ~2000 years if efficiently extracted. However, seawater uranium extraction faces significant challenges due to the extremely low uranium concentration (~3.3 ppb), high concentrations of competing ions, natural organic matter, and marine biofouling. This perspective reviews representative laboratory advances, including sulfonated covalent organic frameworks (S-COF) achieving a sorption capacity of 31.5 mg/(g·day) with high selectivity, amidoxime-based organic cages with a capacity of 11.97 mg/g over 30 days, and a micro-redox reactor strategy that continuously regenerates binding sites. Electrochemical methods have also shown promise for converting soluble U(VI) to insoluble U(IV) oxides. Despite these advances, the transition from laboratory powders to durable marine materials remains problematic. Key gaps include the need for antibacterial properties, mechanical stability under wave action, cost competitiveness with terrestrial mining, and environmental safety of nanomaterials. Artificial intelligence (AI) is proposed to accelerate the design of high-performance, stable materials. This perspective emphasizes the necessity for interdisciplinary research to bridge the gap between bench-scale innovations and practical ocean deployment.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3748-9
Direct regeneration is a sustainable solution for recycling spent lithium-ion batteries (LIBs), yet the irregular strains induced by the irreversible FePO4 phase after cycling hinder Li+ replenishment in spent LiFePO4 cathodes. This study proposes a lattice stress modulation strategy that reduces FePO4 to Fe2P2O7, reducing unit cell volume from 271.7 to 122.6 Å3, releasing residual stress and reconstructing continuous Li+ transport channels. The phase transformation reconstructs FeO6 octahedra, lowering the migration energy barrier for ions. This synergistically weakens steric effects, facilitating Li+ replenishment and eliminating Li-Fe anti-site defects. Regenerated LiFePO4 cathodes achieve 80.2% capacity retention after 1000 cycles at 2C, outperforming commercial cathodes. The work establishes fundamental principles for the pre-treatment stage of direct regeneration and provides a paradigm-shifting solution for sustainable LIB recycling.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3815-0
The development of bifunctional electrocatalysts capable of integrating biomass-derived platform molecule oxidation with organic reduction offers a promising strategy for simultaneously enhancing energy efficiency and generating high-value chemicals. However, designing catalysts that exhibit both high activity and stability in integrated systems remains a significant challenge. Herein, we report a self-supported electrode composed of nitrogen-doped carbonized wood (NCW) supported NiCo nanosheets (NiCo 0.3/NCW) that enables the electrocatalytic 5-hydroxymethylfurfural oxidation to produce 2,5-furandicarboxylic acid (FDCA) and the nitrobenzene reduction to yield aniline in an integrated electrochemical cell. The NiCo 0.3/NCW electrode achieves the production of FDCA and aniline at a low cell voltage of 1.7 V, with ~99% anodic and ~92% cathodic Faradaic efficiencies, respectively. Experimental characterizations disclose that the hierarchical porous NCW architecture promotes the dispersion of active sites, while nitrogen doping strengthens metal–support interactions. In-situ spectroscopic experiments combined with density functional theory (DFT) calculations reveal that cobalt incorporation tunes the electronic structure of nickel, thus optimizing substrate and intermediate adsorption, and lowering energy barriers. These effects ultimately enhance the performance of the natural wood-derived catalyst in integrated biomass valorization and selective organic electrosynthesis.
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.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3773-7
Kesterite Cu2ZnSn(S,Se)4 (CZTSSe) solar cells suffer from significant open-circuit voltage (VOC) deficits due to severe interfacial and bulk recombination, restricting their power conversion efficiency (PCE) far below the Shockley-Queisser limit. This work proposes a low-temperature annealing strategy during ITO sputtering (SA) to synergistically address these challenges. The temperature applied during ITO sputtering not only improves the crystallinity, carrier concentration, and optical transmittance of the ITO layer but also promotes the diffusion of In from ITO into both CdS and CZTSSe layers. Consequently, lattice matching at the CZTSSe/CdS interface is optimized, enabling epitaxial growth. And a favorable ITO/In:CdS/In&Cd:CZTSSe structure with optimal band alignment is obtained. As a result, a champion device with a PCE of 14.29% was achieved. The SA-treating also enabled the CZTSSe solar cells to achieve the highest VOC reported to date, exceeding 590 mV. This underscores the essential role of SA processing in optimizing interface engineering and suppressing defects, thus promoting the development of low-cost, high-performance kesterite photovoltaics.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3730-3
Water scarcity, exacerbated by organic micropollutant contamination and climate change, necessitates energy-efficient, eco-friendly purification technologies. Membrane separation has emerged as a transformative solution, outperforming energy-intensive processes such as distillation. Traditional chemical separations, dominated by distillation, consume 10%–15% of global energy, whereas advanced membrane technologies can reduce energy use by up to 90%. However, membrane separation is hampered by reliance on toxic petrochemical feedstocks and persistent microplastic pollution from nonbiodegradable end-of-life membranes. Shao's group addresses both gaps with a sustainable nanofiltration membrane (SNFM) crafted entirely from low-hazard, renewable components. The substrate polylactic acid (PLA), a biodegradable polyester derived from corn starch, is processed via modified nonsolvent-induced phase separation (NIPS) to form a porous yet strong support. For the selective layer, toxic aromatic monomers are replaced with xylitol (a plant sugar alcohol) and dopamine (DA, a biogenic amine), and green solvents such as dimethyl sulfoxide are used to avoid volatile organic compound emissions. Compared with commercial alternatives, this design yields a membrane with exceptional dual functionality: it maintains high separation performance (928% greater permeance, 92% bisphenol A rejection, and 89% Na2SO4 rejection) and low fouling (protein adsorption ≤12 μg cm−2) over 30 days. A life cycle assessment reveals a 62% reduction in carbon footprint compared with petrochemical-based membranes, whereas soil biodegradation tests confirm 90% breakdown within 6 months, driven by Delftia and Tissierella microbes. By eliminating microplastic waste and toxic inputs, this SNFM bridges the divide between performance and environmental responsibility, offering a scalable blueprint for next-generation green membranes in water treatment and beyond.
Chinese Journal of Environmental Engineering•2026•DOI: 10.12030/j.cjee.202506081
Advanced oxidation processes (AOPs) are promising for degrading organic pollutants in water treatment. Heterogeneous catalytic ozonation (HCO) has gained attention due to its high oxidation efficiency, strong interference resistance, and low secondary pollution. In this study, a series of trimetallic-carbon composite ozone catalysts were prepared via an organic precursor calcination method using γ-Al2O3 as support. This method enhanced catalytic activity and mechanical strength while overcoming the limitations of carbon materials (low mechanical strength) and metal-based materials (poor mass transfer). The optimized catalyst, CA-FeCoCu, comprising Fe, Co, Cu, carbon, and alumina, exhibited excellent performance in phenol degradation and real industrial wastewater treatment. Characterization revealed that the synergistic effect of trimetals and the introduction of multiple carbon types increased specific surface area and hydroxyl radical (·OH) generation. In a pilot-scale fixed-bed reactor, the CA-FeCoCu/O3 system reduced COD from 120 mg·L−1 to below 40 mg·L−1, with an O3 consumption ratio (O/C) of less than 1, effectively lowering operational costs. This work provides a new strategy for developing efficient and stable heterogeneous O3 catalysts and offers a reference for the practical application of HCO in industrial wastewater treatment.
Chinese Journal of Environmental Engineering•2026•DOI: 10.12030/j.cjee.202508004
Industrial processes generate substantial low-grade waste heat and cold, which can be harnessed via thermoelectric generators (TEGs) based on the Seebeck effect. However, the low-voltage output of TEGs poses application challenges. This study investigates a TEG-driven electrodeposition system for efficient treatment of low-concentration copper-containing wastewater from electroplating, integrated circuit, and energy industries. The TEG system, comprising two series-connected semiconductor modules, achieved a maximum power of 0.36 W at a temperature difference (ΔT) of 130 °C. Optimal operating parameters for the coupled system were determined: ΔT = 90 °C, counter-current flow (two-side inlet), flow rate of 20 mL·min⁻¹, initial Cu²⁺ concentration of 500 mg·L⁻¹, and electrode gap of 0.7 cm. Under these conditions, after 60 min of electrodeposition, copper removal efficiency reached 99.42%, current efficiency was 67.93%, and the energy conversion efficiency of the TEG-electrodeposition system was 36.96%. The system also treated real copper-containing wastewater, achieving 95.83% removal within 100 min. Characterization via SEM, XRD, and XPS revealed that the electrodeposited product consisted of metallic copper and cuprous oxide, with metallic copper accounting for approximately 60%. This work provides a promising approach for utilizing industrial waste heat and cold to achieve low-energy, high-efficiency treatment of heavy metal wastewater.
Chinese Journal of Environmental Engineering•2026•DOI: 10.12030/j.cjee.202507051
This study investigated the dynamic characteristics and recovery of ammonia emissions from a growing-finishing pig house in Yanshi District, Luoyang City, Henan Province, China. High-sensitivity electrochemical sensors and an ammonia absorption recovery device were employed for continuous monitoring and treatment of exhaust air. The results revealed periodic fluctuations in ammonia emission concentrations, strongly correlated with indoor temperature and humidity. Over the entire monitoring period, the average daily ammonia concentration in exhaust air was 9.852 mg·m−3, below the national emission limit of 25 mg·m−3. However, during high-temperature periods (>30 °C), localized concentrations reached 38.36 mg·m−3. Humidity, particularly from spray cooling, temporarily suppressed ammonia volatilization, but its effect was modulated by temperature. Total ammonia emitted during the study was 1380.4 kg, with an average per-pig emission rate of 0.034 kg·d−1. After treatment with the exhaust gas absorption device, the average daily ammonia concentration dropped to 0.437 mg·m−3, achieving a mean recovery efficiency of 93.5%. These findings demonstrate that controlling environmental factors and employing external air absorption devices can significantly reduce ammonia emissions, offering a viable pathway for mitigating nitrogen pollution from livestock operations and promoting resource recovery.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-4028-5
The escalating thermal management demands of modern electronics necessitate materials with superior thermal conductivity and matched thermal expansion. Cu/Diamond composites are promising, yet their fabrication typically requires extreme conditions (high temperature/pressure) or complex coating processes. This work introduces a one-step, heat-source-free cold manufacturing method using ultrasonic vibration to consolidate Cu/Diamond composites at room temperature and a low pressure of ~16 MPa within seconds. The applied pressure is reduced by 200–500 times, and the required temperature is only 20% of that used in conventional high-temperature high-pressure sintering. Direct metallurgical bonding at Cu-Cu interfaces and solid embedding of diamond particles in the Cu matrix are achieved, yielding a composite with a high yield strength of 150 MPa. The method enables a maximum diamond proportion of ~60%, resulting in a thermal conductivity exceeding 1043 W/(m·K) and a coefficient of thermal expansion below 10×10⁻⁶ K⁻¹. Complex shapes are readily fabricated, and heat dissipation tests demonstrate superior performance compared to commercial Al₂O₃ and AlN substrates. The loose preparation conditions and rapid processing confer significant industrial production potential.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3781-8
The 2xxx (Al-Cu-Mg) alloy is widely used in transportation fields due to its excellent strength-to-weight ratio. However, conventional heat treatments such as peak aging (PA) often result in a pronounced strength-ductility trade-off and limited fatigue resistance. To address these limitations, this work presents a comprehensive study on the mechanical properties and fatigue behavior of Al-Cu-Mg alloy subjected to a cyclic plasticity treatment. The cyclic strengthened (CS) samples exhibit a well-balanced combination of strength and ductility due to the formation of nanoscale solute clusters. A systematic and quantitative analysis of the strengthening mechanisms is performed to evaluate the contributions of key microstructural features to the mechanical response. Moreover, the CS samples also demonstrate a significantly higher fatigue ratio and fatigue strength compared to the PA sample, despite exhibiting comparable tensile strength. These improvements are attributed to the absence of weak precipitate-free zones (PFZs) induced as a result of cyclic plasticity, which completely eliminates the pronounced strength differential between the grain interiors and the PFZs observed in the PA state. This microstructural uniformity effect effectively suppresses strain localization under cyclic loading, promotes a more homogeneous strain partitioning, and consequently delays fatigue crack initiation. These findings highlight cyclic plasticity treatment as a promising microstructure design strategy for simultaneously enhancing the mechanical and fatigue properties of high-strength Al alloys.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3464-4
Photocatalytic conversion of atmospheric CO2 (0.03%) into multi-carbon fuels remains a grand challenge due to the high energy barrier of C–C coupling and the low concentration of CO2. Here, we report the construction of multiple metal pair sites on metal oxide nanosheets to steer C–C coupling, enabling efficient photoreduction of air-concentration CO2 to ethane (C2H6). As a prototype, Au nanoparticles were anchored on Bi4Ti3O12 nanosheets (Au-Bi4Ti3O12). High-resolution transmission electron microscopy and X-ray photoelectron spectroscopy confirmed the formation of Au-Ti metal pair sites at the interface. In situ Fourier transform infrared spectroscopy revealed the presence of *OCCOH intermediate on Au-Bi4Ti3O12 during CO2 photoreduction, which was absent on pristine Bi4Ti3O12. Density functional theory calculations showed that the Gibbs free energy for *CO–COH formation on Au-Bi4Ti3O12 is 2.23 eV, significantly lower than that on Bi4Ti3O12 (3.59 eV), indicating facilitated C–C coupling. Consequently, Au-Bi4Ti3O12 exhibited a C2H6 evolution rate of 2.58 μmol g−1 h−1 under 0.03% CO2, whereas Bi4Ti3O12 produced only C1 products (CO and CH4). This work demonstrates the first single-catalyst photoreduction of atmospheric CO2 to C2H6, highlighting the effectiveness of engineered multiple active sites in overcoming the C–C coupling bottleneck.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3407-0
Grain boundary (GB) engineering has emerged as a promising strategy to enhance the near-room-temperature performance of Mg3(Sb,Bi)2-based thermoelectric materials, yet effective control of Mg distribution at GBs remains a significant challenge. Here, we report a novel approach to achieve targeted Mg segregation at GBs through strategic Ag incorporation in Mg3.3Sb0.5Bi1.497Te0.003. Through comprehensive microstructural characterization and first-principles calculations, we demonstrate that Ag preferentially segregates at GBs, forming Mg-rich MgAg alloy phases while maintaining limited solid solubility within the matrix. This unique GB architecture simultaneously optimizes multiple thermoelectric parameters: the Mg-rich GB regions significantly provide efficient carrier transport channels and enhance carrier mobility, while the MgAg phases and lattice disorders effectively scatter phonons without disrupting electron transport. Consequently, the optimized composition (x = 0.01) exhibits a remarkable enhancement in power factor at 300 K and maintains an average ZT of ~1.0 across 300–400 K. The material also demonstrates excellent mechanical properties and thermal stability, making it particularly suitable for near-room-temperature applications. Our findings not only establish an effective strategy for GB engineering in Mg3(Sb,Bi)2 systems but also provide valuable insights into the rational design of high-performance thermoelectric materials through interface modification.
Chinese Journal of Environmental Engineering•2026•DOI: 10.12030/j.cjee.202508013
The Sanshenggong section of the Yellow River is a critical hydrological monitoring and control point, whose water quality directly affects the ecological safety and sustainable water resource utilization of the middle and lower reaches. This study analyzed water quality monitoring data from 2011 to 2024 using the Mann-Kendall test to identify abrupt change years, combined with single-factor evaluation and a fuzzy comprehensive evaluation method improved by CRITIC-entropy weight combination to systematically assess water quality evolution. The Mann-Kendall test identified 2013 and 2019 as abrupt change points, with non-significant improvement from 2013 to 2015 and significant improvement after 2016. Single-factor evaluation indicated that total phosphorus (TP) was the primary exceeding factor in 2011–2012, and its declining concentration drove the water quality upgrade from Class III to Class II in 2013. The CRITIC-entropy weight combination assigned the highest weight (28.96%) to permanganate index, whose decline was the core driver of water quality improvement. The improved fuzzy evaluation showed that the membership degree of Class III water dropped to zero in 2013, indicating stable improvement, but periodic rebounds in Class II membership suggested potential degradation risks. This study provides scientific evidence for ecological protection and high-quality development of the Yellow River Basin.
Chinese Journal of Environmental Engineering•2026•DOI: 10.12030/j.cjee.202510089
Microplastics (MPs) are frequently detected in various water bodies, posing increasing environmental risks. This study synthesized magnetic Fe3O4@MIL-100(Fe) microspheres via an in-situ one-step hydrothermal method and investigated their adsorption removal mechanisms for polystyrene (PS) and polylactic acid (PLA) microplastics. The composite exhibited a core-shell structure with a high specific surface area of 848.6 m2·g−1. Adsorption kinetics showed that PLA followed a pseudo-second-order model, while PS fitted both pseudo-first-order and pseudo-second-order models. Equilibrium data for both MPs were well described by the Freundlich isotherm. Removal efficiencies for PLA and PS increased from 58.18% and 49.66% to 98.90% and 98.58%, respectively, as pH decreased, and from 64.24% and 21.58% to 97.05% and 94.63% with increasing ionic strength. The removal mechanism involved synergistic physical-chemical interactions: hydrogen bonding dominated for PLA, with some complexation, while π–π interactions and hydrogen bonding were primary for PS. The material demonstrated excellent reusability over multiple cycles. These findings highlight the potential of Fe3O4@MIL-100(Fe) for efficient removal of MPs from water, offering a novel approach for controlling emerging contaminants.
Chinese Journal of Environmental Engineering•2026•DOI: 10.12030/j.cjee.202410085
Surface runoff pollution has become a significant source of water contamination. This study constructed an integrated composite bioretention system comprising straw, aquatic plant, and biochar zones for purifying urban surface runoff, aiming to meet the standards for reuse as landscaping water. The system's performance in removing conventional pollutants and polycyclic aromatic hydrocarbons (PAHs) was investigated, along with microbial community structure analysis. Results showed removal efficiencies of 81.1% for COD, 98.1% for TN, 79.1% for TP, and 90.3% for TSS, with effluent meeting the 'Water Quality for Scenic and Recreational Use' (GB/T 18921-2019) standard. The system exhibited robust resistance to pollutant and hydraulic loading. The alkali-modified straw zone was the primary pollutant removal region, facilitating physical adsorption and capture of suspended solids, while released carbon sources enhanced total nitrogen removal. This zone exhibited the highest microbial richness, with relative abundances of Proteobacteria and Firmicutes at 54.3% and 21.9%, respectively. The system effectively removed all 16 priority PAHs, reducing effluent toxicity equivalent by 86.5%. The straw zone completely removed four high-molecular-weight PAHs (BaP, DahA, BghiP, IcdP), while aquatic plants and biochar effectively removed medium- and low-molecular-weight PAHs.
Chinese Journal of Environmental Engineering•2026•DOI: 10.12030/j.cjee.202510028
This study investigates the aging mechanism of polystyrene microplastics (PS MPs) induced by ultraviolet (UV)-activated potassium persulfate (KPS) and its influence on the adsorption of norfloxacin (NOR). Results show that aged PS exhibited yellowing, increased surface roughness and specific surface area, enhanced oxygen-containing functional groups, and elevated negative surface charge, along with the generation of environmentally persistent free radicals (EPFRs). Compared with UV alone, UV+KPS induced more pronounced aging due to the generation of reactive oxygen species (ROS) including hydroxyl radicals (·OH) and superoxide radicals (O2·−). Adsorption kinetics and isotherm data revealed that UV+KPS-aged PS significantly enhanced NOR adsorption, with a maximum adsorption capacity of (2.539±0.032) mg·g−1, which was 4.20 times higher than that of pristine PS. The adsorption mechanism was governed by hydrogen bonding, electrostatic interactions, and pore filling. Solution pH modulated the electrostatic interactions by affecting NOR speciation and PS surface charge, thereby influencing NOR adsorption. This study systematically reveals the accelerated aging of coexisting MPs and EPFRs generation during UV+KPS treatment, contributing to a comprehensive understanding of MPs environmental behavior and potential ecological risks.
Environmental Chemistry•2026•DOI: 10.7524/j.issn.0254-6108.2026020803
The governance of new pollutants is a major strategic deployment made by China after fully building a moderately prosperous society and embarking on a new journey to comprehensively build a modern socialist country. Guided by the new development philosophy, it adheres to high-quality development, promotes economic structural transformation, and safeguards people's livelihood. This paper divides China's new pollutant governance process from the beginning of the 21st century to 2035 into four progressive stages: compliance-driven local exploration, systematic construction of strategic transformation, comprehensive implementation and in-depth layout, and long-term control and modernization improvement. It systematically reviews the development of management systems, technical standards, and basic research in each stage, clarifying the strategic position of new pollutant governance in coordinating development and security. At the critical transition between the 14th and 15th Five-Year Plans, the paper summarizes achievements and shortcomings based on the implementation of the Action Plan for the Governance of New Pollutants, proposing optimization paths for the 15th Five-Year Plan period. Key recommendations include establishing a national data sharing platform to integrate monitoring, toxicological, and governance data, implementing a diversified evaluation system to distinguish basic research from management support research, and guiding differentiated local implementation to avoid a one-size-fits-all approach. The paper emphasizes the need for international promotion to enhance China's discourse power in global environmental governance, and suggests building a multi-dimensional international communication system. These measures aim to improve the quality and efficiency of new pollutant governance, providing theoretical and practical guidance for building a Beautiful China.
Environmental Chemistry•2026•DOI: 10.7524/j.issn.0254-6108.2025020901
The intensification of environmental pollution necessitates the development of efficient and sustainable remediation technologies. Piezoelectric-coupled photoelectrocatalysis and piezoelectric-coupled electrocatalysis, which convert mechanical energy into electrical energy and integrate with photoelectrocatalytic or electrocatalytic processes, have demonstrated significant potential for environmental remediation. By combining the piezoelectric effect of piezoelectric materials with photocatalysis or electrocatalysis, these technologies markedly improve the separation efficiency of photogenerated or electrogenerated electron-hole pairs, thereby enhancing pollutant degradation. This review explores the working principles of piezoelectric-coupled photoelectrocatalysis and electrocatalysis, highlighting their latest advancements in environmental remediation, including the degradation of organic pollutants and value-added conversions. It also addresses the challenges currently faced in applying these technologies, such as limitations in light transmittance, restricted light absorption ranges, rapid carrier recombination, and the short lifespan of electrodes in electrochemical systems. Finally, potential future research directions are discussed, emphasizing the need for improved material stability, scalable synthesis methods, and a deeper mechanistic understanding to bridge the gap between laboratory research and practical applications.
Environmental Chemistry•2026•DOI: 10.7524/j.issn.0254-6108.2025091205
This study analyzes the spatiotemporal variation characteristics and driving mechanisms of PM2.5, PM10, SO2, NO2, O3, and CO in the Kuytun-Dushanzi-Wusu (Kui-Du-Wu) region of Xinjiang, based on monitoring data from 2018 to 2024. Results indicate that urban sites (e.g., Kuytun Laoganju Station) are influenced by traffic emissions, leading to elevated PM2.5 and NO2 concentrations. Dushanzi District, with petrochemical industry emissions, exhibits notable SO2 and O3 pollution. Agricultural areas (e.g., Kuytun Huaxin Tomato Company) show significant PM10 and CO levels affected by dust and diesel machinery. Over the study period, PM2.5, PM10, NO2, and CO concentrations generally declined at annual rates of 1.5–4.0 μg·m−3·a−1, reflecting the effectiveness of coal substitution, industrial upgrades, and vehicle emission controls. Conversely, O3 concentrations increased consistently at rates of 1.3–3.2 μg·m−3·a−1, highlighting shortcomings in volatile organic compound (VOCs) control. Seasonal patterns show PM and CO peaking in winter due to heating combustion and temperature inversions, and reaching minima in summer due to enhanced diffusion and precipitation. O3 peaks in summer driven by photochemical reactions, contrasting with NO2 winter highs from heating and industrial activities. The findings underscore the need for coordinated control of VOCs and NOx, optimized dust management, and differentiated emission controls for industrial, traffic, and agricultural sources.
Journal of Environmental Engineering Technology•2026•DOI: 10.13205/j.hjgc.202605007
Reservoirs are significant sources of nitrous oxide (N2O), a potent greenhouse gas. The nosZ-type denitrifying bacteria, which reduce N2O to inert N2, play a critical role in mitigating emissions. This study investigated the community structure, diversity, and abundance of nosZ-type denitrifiers in surface sediments (0-15 cm) from 18 reservoirs in the northeastern Qinghai-Tibet Plateau, including 10 in the Yellow River mainstem and 8 in the Huangshui River basin. Sampling occurred during dry (May 2023) and wet (August 2023) seasons. High-throughput sequencing of the nosZ gene and quantitative PCR were employed. Results showed that Proteobacteria dominated (78.91%). Paracoccus and Halomonas were biomarkers in the Yellow River mainstem. Diversity was significantly higher in the Huangshui basin (P<0.05), with no temporal difference. Gene abundance was higher in the Huangshui basin (165.24×10^5 copies/g) than in the Yellow River mainstem (34.43×10^5 copies/g), and higher in wet season (128.55×10^5 copies/g) than dry season (61.27×10^5 copies/g) (P<0.05). Redundancy analysis and hierarchical partitioning identified sediment temperature, pH, total phosphorus, and water total nitrogen as key drivers, explaining 17.14%, 16.89%, 13.83%, and 11.23% of community variation, respectively. These findings reveal significant spatiotemporal heterogeneity and provide a scientific basis for N2O mitigation in plateau reservoirs.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-4046-6
The deliberate control of framework dimensionality represents a powerful yet underexplored strategy for tailoring the functionality of homochiral metal-organic frameworks (HMOFs). Herein, we report a logical dimensional evolution from 1D and 2D to 3D HMOFs, achieved by tuning the connectivity of the auxiliary ligand. Employing a planar, three-connected ligand, 2,4,6-tri(pyridin-4-yl)-1,3,5-triazine (Tpt), together with enantiopure tetracarboxylate of cyclohexane diamide linkers ((1R,2R/1S,2S)-cyclohexane-1,2-dicarbonyl bis(azanediyl)diisophthalate) (R,R/S,S-CHCAIP) and Zn2+ salts, a pair of 3D porous HMOFs (P/M-HMOF-5) was successfully constructed. The 3D framework features unique heart-shaped channels and a novel 4-(3,3,3,6)-connected topology. Structural analyses reveal trinuclear Zn3(μ3-O) clusters that, upon activation, generate open metal sites. These Lewis acid sites, synergizing with Lewis basic sites from the framework, confer efficient acid-base bifunctional heterogeneous catalysis for the synthesis of 2,3-dihydroquinazolinones in excellent yields (90%–98%). Furthermore, P/M-HMOF-5 serve as highly sensitive and enantioselective fluorescent sensors for amino acids and α-hydroxy carboxylic acids, with the highest discrimination observed for phenylalanine (KBH(D-Phe)/KBH(L-Phe) = 5.85 for M-HMOF-5). This work demonstrates how rational ligand connectivity steers dimensional evolution, enabling the integration of distinct catalytic and sensing functions within a single chiral platform, thereby providing a blueprint for the design of advanced multifunctional materials.
Chinese Journal of Environmental Engineering•2026•DOI: 10.12030/j.cjee.202506064
To address the challenges of high salinity, recalcitrance, limited mass transfer, and coating detachment in traditional anodes for textile wastewater treatment, a porous RuO2@r-TiO2 nanotube array (NTA) anode was fabricated via anodic oxidation, electrochemical reduction, and thermal decomposition. A flow-through electrochemical oxidation system was constructed using this anode and a graphite felt cathode. The material's morphology and physicochemical properties were characterized by SEM, XRD, and XPS. Congo red (CR) was used as a model pollutant to evaluate degradation performance under various conditions. Optimal conditions were identified as current density 5 mA·cm−2, permeate flux 480 L·(m2·h)−1, initial CR concentration 0.15 mmol·L−1, and NaCl concentration 75 mmol·L−1. Under these conditions, the system achieved 91% decolorization within 20 min and 82% mineralization within 60 min. Mass transfer tests showed a rate constant of 2.23×10−4 m·s−1 in flow-through mode, three times higher than conventional mode, with active chlorine and H2O2 production increased by 32.8% and 66.7%, respectively. Radical quenching experiments indicated that singlet oxygen (1O2) was the primary reactive species. The degradation mechanism was proposed based on quenching and UV spectral analysis. The system achieved >90% decolorization for five typical dye pollutants with an energy consumption of only 0.16 kWh·m−3. Cyclic voltammetry confirmed long-term stability. These findings provide theoretical support for applying electrochemical advanced oxidation to high-salinity textile wastewater.
Chinese Journal of Environmental Engineering•2026•DOI: 10.12030/j.cjee.202509124
To reveal the spatiotemporal evolution and driving mechanisms of water quality in the Hanjiang River Basin, this study utilized monthly water quality monitoring data from 54 sections from January 2021 to April 2024. Methods including single-factor index, comprehensive water quality index (WQI), principal component analysis (PCA), and optimal parameters-based geographical detector (OPGD) were employed. Results indicated significant spatiotemporal differences, with total nitrogen (TN), chemical oxygen demand (COD), and permanganate index (CODMn) as major pollutants, TN being the most critical. Temporally, agricultural non-point source organic pollution dominated in wet season, while comprehensive organic pollution with industrial point source characteristics prevailed in dry season. Spatially, water quality deteriorated along the main stream, with tributary downstream areas showing severe pollution, forming a pattern of 'mountainous areas good, plains poor'. OPGD revealed combined effects of natural conditions and human activities, proposing a 'zonal control and targeted treatment' strategy.
Environmental Chemistry•2026•DOI: 10.7524/j.issn.0254-6108.2025021401
This study investigated the occurrence, distribution, sources, and ecological risks of 19 organophosphate triesters (OPEs) and 8 diesters (di-OPEs) in surface water and sediments from the Hangzhou section of the Qiantang River. Samples were analyzed using liquid chromatography-high resolution mass spectrometry. Concentrations of ΣOPEs in water ranged from 31.5 to 98.9 ng/L, and in sediments from 10.8 to 341 ng/g dry weight (dw). Σdi-OPEs ranged from 2.19 to 104 ng/L in water and 0.437 to 106 ng/g dw in sediments, indicating moderate to low contamination. TCIPP and TCEP dominated OPEs in water, while TEHP was the predominant OPE in sediments. DBP was the major di-OPE in water, and DPHP in sediments. Source apportionment via correlation and principal component analysis identified industrial production and human activities, including household, tire, plastic manufacturing, and agricultural practices, as primary sources. Ecological risk assessment revealed negligible risks for most OPEs in water, but notable risks in sediments: TEHP and EHDPP posed risks to crustaceans, and TPHP to algae. Moreover, combined toxicity at multiple sediment sampling sites raised concern, warranting further attention.
Environmental Chemistry•2026•DOI: 10.7524/j.issn.0254-6108.2025120801
The interaction between microplastic-derived dissolved organic matter (PSDOM) and iron oxides in soil environments can modulate its photosensitization effects, yet the underlying mechanisms remain elusive. This study investigated the influence of hematite with distinct morphologies—flake-shaped (HNPs) and cubic (HNCs)—on the photosensitization of polystyrene-derived dissolved organic matter (PSDOM). Under 500 W mercury lamp irradiation, both hematite morphologies promoted PSDOM degradation, with HNCs exhibiting superior performance: total organic carbon (TOC) decreased from 18.4 mg·L−1 to 12.3 mg·L−1 within 90 min, compared to 13.3 mg·L−1 for HNPs. Three-dimensional fluorescence spectroscopy indicated that hematite alters the humification process, thereby modifying photosensitization. Electron paramagnetic resonance (EPR) spectroscopy identified the generation of singlet oxygen (1O2), hydroxyl radicals (·OH), and carbon-centered radicals (CH3C(=O)OO·). HNCs significantly enhanced 1O2 production, while HNPs favored ·OH generation; both inhibited CH3C(=O)OO· formation. Quantitative analysis via high-performance liquid chromatography revealed that the steady-state concentration of 1O2 was highest with HNCs, reaching 2.80 times that of the PSDOM control, whereas ·OH concentration peaked with HNPs at 1.98 times the control. Notably, the steady-state concentration of 1O2 was approximately three orders of magnitude higher than that of ·OH. These findings elucidate the morphology-dependent role of hematite in PSDOM photosensitization, providing mechanistic insights into the environmental fate of microplastic-derived organic matter in complex soil systems.
Environmental Chemistry•2026•DOI: 10.7524/j.issn.0254-6108.2025021602
Iron-based catalysts are widely used in water pollution treatment due to their high stability and redox capabilities. However, conventional single-component iron-based catalytic systems face challenges such as slow reaction kinetics and low efficiency in generating reactive oxygen species (ROS) during organic pollutant degradation. In this study, three electroactive bacteria (Bacillus megaterium, Lactococcus lactis, and Shewanella putrefaciens) were selected to interact with nano-Fe3O4 to construct bacterial/Fe3O4 hybrid materials, accelerating the degradation of gallic acid. The results showed that bacterial interaction with Fe3O4 facilitated rapid electron transfer, enhancing gallic acid degradation. The bacterial/Fe3O4 hybrid materials exhibited significantly higher gallic acid degradation rates compared to Fe3O4 alone. This improvement was mainly attributed to the ability of electroactive bacteria to promote the formation of oxygen vacancies (OVs) on the Fe3O4 surface, accelerating electron transfer and subsequently enhancing the generation of ROS, including hydroxyl radicals, superoxide radicals, and singlet oxygen. Correlation analysis demonstrated a significant positive relationship between OVs and ROS generation, with hydroxyl radicals showing the highest correlation with the gallic acid degradation rate constant (r = 0.98), indicating its dominant role in gallic acid degradation; the hydroxyl radicals quenching experiment also verified its dominant role. Additionally, due to the temperature sensitivity of bacteria, the degradation rate of gallic acid reached its peak in the temperature range of 30–40 °C. This study reveals the mechanism by which electroactive bacteria enhance the catalytic activity of Fe3O4, providing a new strategy for its application in advanced oxidation technology for water pollution treatment.
Environmental Chemistry•2026•DOI: 10.7524/j.issn.0254-6108.2025022502
The design of stable and efficient O3 catalysts is critical for advancing heterogeneous catalytic ozonation (HCO) in industrial wastewater treatment. In this study, various iron-based bimetallic oxides were synthesized, and Fe-Co bimetallic oxide (FeCo-O) was identified as the optimal catalyst through degradation experiments and structural characterization. FeCo-O exhibits a single spinel structure with abundant metal valence states and synergistic effects between Fe and Co. Compared to conventional O3 oxidation, the FeCo-O/O3 system enhanced organic pollutant degradation by 2–3 times, demonstrating broad applicability under neutral or weakly acidic/alkaline conditions. Characterization revealed that FeCo-O promotes O3 activation via enhanced inter-metal electron transfer on the catalyst surface, increasing the generation of highly oxidative free radicals (·OH, ·O2−) and thereby improving pollutant degradation efficiency. In treating real industrial wastewater, the FeCo-O/O3 system achieved excellent COD removal, indicating its potential for both pre-treatment and advanced treatment applications. This study provides theoretical and practical guidance for designing efficient catalytic ozonation catalysts.
Journal of Environmental Engineering Technology•2026•DOI: 10.13205/j.hjgc.202606012
River and lake sediments, as both sources and sinks of water pollutants, significantly impact overlying water quality and aquatic ecosystems. In pollution treatment and ecological restoration, managing contaminated sediments is critical. Remediation technologies are categorized into ex-situ and in-situ methods; in-situ techniques have gained prominence due to lower costs and minimal environmental disturbance. This review summarizes sediment pollution status, comprehensively examines physical, chemical, biological, and combined in-situ remediation technologies, and discusses their mechanisms, applications, and future research needs. It proposes optimization strategies for emerging technologies, material improvements, and pathways for sustainable development, emphasizing interdisciplinary integration to enhance remediation efficacy. Key pollutants include heavy metals (e.g., Cd, Hg), persistent organic pollutants (POPs), and emerging contaminants like antibiotics and microplastics. In-situ methods such as capping, chemical oxidation, and bioremediation show promise but face challenges in long-term stability and scalability. The paper underscores the need for sustainable, cost-effective solutions and highlights recent advances in combined technologies, offering a reference for future research and engineering applications.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3774-3
Lithium-air capacitor batteries (LACBs) integrate the rapid charge-discharge capability of supercapacitors into conventional lithium-oxygen batteries, significantly enhancing power density. However, their cycling stability remains unsatisfactory. In this study, we incorporated redox mediators (RMs) into an LACB featuring a dual-cathode configuration. This design facilitates sustained electron transfer between the electrode and Li2O2/Oxygen, thereby delaying RM deactivation caused by electrode passivation and improving overall electrochemical performance. The RM-enhanced battery achieved over 250 cycles at 2 mA cm−2 with a limited capacity of 0.5 mAh cm−2, while exhibiting a 0.54 V reduction in charging voltage at 0.1 mA cm−2 compared to the RM-free system. Furthermore, application of an aluminum foil sealing technique enabled a power density of 13.8 mW cm−2 at 6 mA cm−2, overcoming mass transport limitations inherent in open-cell configurations. We also investigated the influence of oxygen barrier films with varying barrier capabilities on LACB performance. Results indicate that films with superior oxygen resistance better maintain a clean capacitor electrode surface, thereby providing more stable electron supply to the RMs and enhancing rate capability and cycling performance. These findings underscore the potential of redox mediators in improving the performance and longevity of LACBs, offering a promising strategy for their future development.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3863-x
Lead-free double perovskites are promising for optoelectronic applications due to their tunable optical properties, stability, and non-toxicity. However, achieving efficient ultrabroadband near-infrared (NIR) emission and X-ray radioluminescence (RL) simultaneously remains challenging. Here, we report a Mo4+-doped Cs2(Na0.4Ag0.6)InCl6 double perovskite that exhibits efficient blue-light-excitable NIR emission with a near-unity photoluminescence quantum yield. The emitter demonstrates robust thermal stability, retaining 84% of its initial emission intensity at 420 K relative to 300 K. Under X-ray irradiation, the material shows bright NIR RL with a high light yield of 39,400 ± 1100 photons/MeV. A flexible film of Mo4+-doped Cs2(Na0.4Ag0.6)InCl6/polydimethylsiloxane (PDMS) was fabricated and applied as an NIR light source and X-ray scintillator. A dual-functional platform for cooperative NIR and X-ray imaging was established using a bullfrog palm as the target, achieving pixel-level fusion of NIR and X-ray images without spatial mismatch or complex image processing. The fused image simultaneously visualizes blood vessels and skeleton textures under the skin tissue. This work provides a viable strategy for lead-free double perovskites in advanced optoelectronic devices, particularly for multispectral imaging.
Chinese Journal of Environmental Engineering•2026•DOI: 10.12030/j.cjee.202511004
To address nitrate nitrogen accumulation in aquaculture tailwater, a core-shell encapsulated immobilized denitrifying bacterial capsule containing lychee seed powder and denitrifying activated sludge was developed. The capsule's micro-morphology, bacterial activity recovery, growth, community structure changes, and diffusion coefficient dynamics during acclimation were investigated. The capsule shell exhibited a honeycomb porous structure with an average pore size of (0.25 ± 0.063) μm. Denitrifying bacterial activity recovered rapidly, with nitrate nitrogen removal efficiency stabilizing at 83.61% by day 21. Biomass within the capsules increased progressively, reaching (21.96 ± 0.28) mg·(g-pellet)−1 on day 30. The effective diffusion coefficient decreased with biomass growth, dropping to 0.232 × 10−9 m²·s−1 by day 30. Organic carbon source and encapsulation acclimation environment altered the microbial community structure; after acclimation, dominant genera were Methylobacterium (22.8%), Brevibacillus (18.1%), and Azospirillum (17.3%). Denitrifying bacteria containing nirS- and nirK- genes predominantly belonged to Proteobacteria (>99%). Genera involved in organic carbon metabolism and denitrification, including Bosea, Bradyrhizobium, Rhizobacter, and Alicycliphilus, increased in abundance. The encapsulated denitrifying bacteria exhibited short activity recovery time and excellent denitrification performance, making them suitable for denitrification of aquaculture tailwater or other low C/N ratio wastewater.
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.202510081
Electrochemical two-electron oxygen reduction (2e−ORR) for hydrogen peroxide (H2O2) synthesis faces challenges of low cathodic catalytic efficiency and complex catalyst preparation. This study prepared nitrogen-vacancy (Nv) rich carbon nitride via one-step pyrolysis, composited with carbon nanotubes (CNT), and loaded onto graphite felt (GF) to fabricate a non-precious metal gas diffusion electrode Nv-C3N4-CNT/GF. The electrode exhibited a three-dimensional fibrous skeleton with interconnected micro-nano hierarchical pores, facilitating efficient electron transport. Electrochemical impedance spectroscopy revealed a low charge transfer resistance of 13.26 Ω, indicating superior electrocatalytic activity and charge transfer efficiency. Single-factor experiments and response surface methodology (RSM) optimization determined optimal conditions: calcination temperature 300 °C, catalyst mass ratio 3:1, Nv-C3N4-CNT loading 0.1 g, current density 40 mA·cm−2, pH 7, and aeration rate 0.1 L·min−1. Under these conditions, H2O2 accumulation reached 1622.73 mg·L−1 after 90 min, which was 1.3 and 1.5 times higher than g-C3N4-CNT/GF and CNT/GF electrodes, respectively. Stability tests showed that after 6 cycles, H2O2 production remained at 1400.52 mg·L−1, and within 960 min, the maximum production reached 2014.04 mg·L−1 with a highest Faradaic efficiency of 54.86%. These results demonstrate the electrode's potential for cyclic use. This study provides a new approach for developing efficient, low-cost electrodes for electrosynthesis of H2O2, offering a reference for green H2O2 production.
Chinese Journal of Environmental Engineering•2026•DOI: 10.12030/j.cjee.202511076
This study investigated the altitudinal distribution and enrichment characteristics of heavy metals in the soil-plant system of the northern and southern mountains of Lhasa on the Tibetan Plateau. Soil and dominant plant samples were collected from three sites along an elevation gradient from 3,650 to 4,150 m, and concentrations of Cr, Cd, Cu, Zn, Ni, As, and Pb were analyzed. Soil heavy metal concentrations ranged from 0.06 to 184.4 mg·kg−1, with all elements except Cd and Pb exceeding local background values. Plant heavy metal concentrations were within normal ranges, indicating no obvious stress. Correlation analysis revealed significant positive correlations between soil Zn and Cd, Cr and Ni, and plant Zn and Cu. Except for Cr, Cu, and Cd, plant and soil concentrations of the same element were significantly correlated. Bioconcentration factor (BCF) analysis showed that most plants had weak enrichment capacity (BCF < 1), but five species, including Ephedra sinica and Rheum likiangense, exhibited BCF > 1 for Cd, with R. likiangense showing the highest BCF of 4.01. The enrichment capacity varied with altitude and species. Potential ecological risk assessment indicated that Cd posed a relatively high risk in plants, warranting attention. This study fills a gap in understanding the spatial distribution and enrichment of heavy metals in this region, providing a scientific basis for ecological management and environmental protection.
Environmental Chemistry•2026•DOI: 10.7524/j.issn.0254-6108.2026020207
Although the production and use of hexabromocyclododecanes (HBCDs) have been completely banned in China since December 2021, historical production activities may still leave high-concentration residual contamination in localized areas. This study investigated a typical legacy site of historical HBCDs production in eastern China. Surface and core soil samples were systematically collected both inside and outside the former plant area to characterize the occurrence, spatial distribution, and environmental burden of HBCDs, and to evaluate associated human health risks. Results showed that HBCD concentrations in soils outside the plant area ranged from below detection limit to 6.90×10² ng·g⁻¹ dw, while those inside the plant area were substantially higher, reaching up to 1.18×10⁶ ng·g⁻¹ dw. γ-HBCD was the dominant isomer; however, its relative abundance was lower than that reported in commercial HBCD mixtures and in previous studies conducted near production facilities. Outside the plant, HBCDs concentrations in soil generally decreased with increasing distance from the site, yet remained detectable at a distance of approximately 10 km (15.2 ng·g⁻¹ dw). Within the plant area, HBCDs concentrations in soil cores decreased with depth, declining from 1.08×10⁴–1.18×10⁶ ng·g⁻¹ dw in surface soils to 1.05–93.5 ng·g⁻¹ dw at depths of about 4 m. Analysis of the relative cumulative environmental burden indicated that although HBCDs loads were highest in the near-source area, they gradually accumulated over a broader spatial scale. Approximately 23.7%, 40.1%, 60.0%, and 87.1% of the total estimated burden accumulated within 2 km, 2.81 km, 4 km, and 6 km from the site, respectively. Health risk assessment indicated that oral ingestion of soil was the primary exposure pathway for different populations. Localized high-contamination zones within the plant area contributed significantly to non-carcinogenic risks, while overall risks for children outside the plant area were at acceptable levels.
Environmental Chemistry•2026•DOI: 10.7524/j.issn.0254-6108.2025040102
Calcium peroxide (CaO2) with a rich porous structure was synthesized via chemical precipitation for efficient fluoride removal from aqueous solutions. The adsorbent was characterized by SEM, BET, LPSA, and XRD, revealing a mesoporous material with a total pore volume of 0.51 cm3·g−1. Batch experiments investigated the effects of adsorbent dosage, initial fluoride concentration, reaction time, pH, and coexisting anions. Adsorption kinetics followed a fractal-like pseudo-first-order model, with intraparticle diffusion as the rate-limiting step. Equilibrium data were well described by the Sips isotherm, predicting a maximum adsorption capacity of 479.8 mg·g−1. Site energy distribution analysis indicated a normal distribution with an average energy of 13.36 kJ·mol−1. Mechanistic studies using FTIR and XPS revealed that fluoride removal proceeds via surface precipitation, ligand exchange, and electrostatic attraction. The high density of active sites contributes to the exceptional defluoridation performance, positioning CaO2 as a promising adsorbent for fluoride-contaminated water treatment.
Journal of Environmental Engineering Technology•2026•DOI: 10.13205/j.hjgc.202607019
This study investigated the effects of biochar on volatile fatty acids (VFAs) production, biogas composition, physicochemical properties of the fermentation broth, and microbial community structure through batch anaerobic fermentation experiments using food waste as the substrate. The results demonstrated that the addition of biochar (1 g/L) significantly enhanced VFAs production, with the total VFAs concentration reaching 2150 mg/L in the biochar group, which was 30.2% higher than that of the control group (1651 mg/L). Acetic acid, propionic acid, and butyric acid were identified as the primary VFAs components. In the fermentation system, biochar exhibited a notable pH-buffering effect, stabilizing the fermentation environment. Additionally, its porous structure adsorbed ions during the fermentation process, resulting in a slightly lower electrical conductivity compared to the control group. Microbial community analysis revealed that biochar addition enriched key acidogenic bacteria, such as Defluviitoga and norank_f__Family_XI, optimizing the microbial community structure, and thereby facilitating organic acid production. In summary, biochar effectively promoted the efficient accumulation of VFAs during anaerobic fermentation of food waste by improving the fermentation microenvironment, enhancing system buffering capacity, and regulating microbial community composition. These findings provide theoretical support for sustainable enhancement of resource utilization of food waste.
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.
Chinese Journal of Environmental Engineering•2026•DOI: 10.12030/j.cjee.202510042
Given China's escalating municipal solid waste (MSW) generation and the limitations of current classification schemes, this study proposes a novel waste classification model centered on mid-end intelligent sorting technology. The approach integrates targeted pretreatment with multimodal visual recognition and robotic grasping to efficiently sort complex household waste, while compact equipment innovations adapt to the low-value characteristics of recyclables. An engineering demonstration case shows that the technology can effectively recover low-value recyclables comprising 15%–30% of mixed MSW. If applied at 5% of a case city's waste transfer stations, approximately 5×10^4 t of recyclables could be sorted annually. Preliminary estimates indicate a 20% return on investment for operators at an 80 t·d−1 scale. The study demonstrates that mid-end intelligent sorting offers a technically feasible and economically sustainable solution to reduce fiscal expenditure on waste classification while improving efficiency.
Chinese Journal of Environmental Engineering•2026•DOI: 10.12030/j.cjee.202512025
Persulfate (PS) is a common oxidant in in-situ chemical oxidation (ISCO) for groundwater organic contamination, but its vertical concentration stratification may lead to inefficient remediation of light non-aqueous phase liquids (LNAPLs). To investigate the vertical stratification characteristics of PS in porous aquifers and its impact on LNAPLs remediation, static water column experiments and flowing water sand tank experiments were conducted. The migration behavior of PS under non-slow-release and slow-release conditions was compared, with Br− as a reference tracer and benzene, toluene, and xylene (BTX) as LNAPLs contaminants. Results showed that in static water columns, Br− exhibited weak vertical migration, short migration distance, and a low decay rate (0.009 d−1), consistent with a stable tracer. In contrast, PS showed strong vertical migration, with concentrations increasing with depth; under slow-release conditions, the concentration difference between the top and bottom of the column could reach two orders of magnitude. Br− migration was dominated by molecular diffusion (effective diffusion coefficient 2.2×10−9 m2·s−1), while PS migration was driven by both diffusion and density. Under slow-release conditions, the average PS decay rate was 0.072 d−1, slightly higher than the non-slow-release rate (0.059 d−1). In both column and sand tank experiments, BTX exhibited a distinct shallow-layer distribution, contrasting with PS. When the aquifer thickness is large, PS stratification limits its contact with LNAPLs contaminants, increasing remediation cost and difficulty. These findings provide theoretical reference for PS-based ISCO remediation of LNAPLs in porous aquifers.
Chinese Journal of Environmental Engineering•2026•DOI: 10.12030/j.cjee.202512066
This study addresses the removal of ammonia nitrogen (NH4+-N) and chemical oxygen demand (COD) from real coal chemical wastewater via electrochemical chlorine evolution. A nanorod-structured ruthenium dioxide catalyst (N-RuO2) was synthesized by modifying ruthenium trichloride precursor with ammonium chloride. Compared with unmodified RuO2, commercial DSA, and commercial RuO2 (Com-RuO2), N-RuO2 exhibited significantly enhanced electrochemical performance: Faradaic efficiency for chlorine evolution increased by 12.9%, 18.5%, and 25.6%, respectively; accelerated lifetime improved by 1.7, 1.9, and 2.9 times, respectively. In treating real coal chemical wastewater, N-RuO2 reduced NH4+-N to 86.4 mg·L−1 and COD to 72 mg·L−1, with degradation rate constants approximately 2.08 and 1.46 times higher than Com-RuO2, while energy consumption decreased by 17.7 Wh·g−1 and 1.5 Wh·g−1, respectively. Further studies showed that increasing chloride ion concentration enhanced removal rates and reduced energy consumption; higher current density accelerated removal but increased energy use; alkaline conditions favored NH4+-N removal, while neutral conditions favored COD removal. The excellent electrochemical performance of RuO2 nanorods indicates broad application prospects in practical water treatment.
Chinese Journal of Environmental Engineering•2026•DOI: 10.12030/j.cjee.202408057
Urban waterlogging, exacerbated by climate change and rapid urbanization, poses increasing risks, particularly in coastal low-lying areas with dense river networks. This study simulated waterlogging in the Shajing River drainage area of the Maozhou River basin, Shenzhen, using the SOBEK hydrodynamic model. Under a 5-year return period rainfall, 47 manholes overflowed and 31.29% of stormwater pipes operated at full capacity. Twelve waterlogging-prone points were identified: eight due to insufficient drainage capacity and five due to river backflow from low elevation. Two optimization schemes were compared: enlarging pipe diameters and implementing Low Impact Development (LID) measures. Pipe enlargement reduced overflowing manholes by 32 and full-flow pipe length by 20%, effectively decreasing surface ponding. LID measures reduced overflowing manholes by only 4 and full-flow pipe length by 1.5%, but decreased maximum flooding depth by nearly 1 m, alleviating drainage system burden. The study highlights the complex causes of coastal urban waterlogging, especially river backflow under tidal influence, and recommends considering sea-level rise and storm surge in drainage design. The findings provide valuable references for attributing waterlogging causes and planning drainage network upgrades in coastal cities.
Chinese Journal of Environmental Engineering•2026•DOI: 10.12030/j.cjee.202511062
Sediment microbial fuel cells (SMFCs) are a green technology for simultaneous polluted sediment remediation and energy recovery, yet their performance is constrained by insufficient anodic microbial activity and low electron transfer efficiency. This study employed lactate addition combined with composite engineered microbial immobilization to synergistically optimize SMFC performance by enhancing microbial stability and carbon source supply. Results showed that lactate, as an easily utilized electron donor, promoted electrochemical activity, achieving a maximum power density of 22.06 mW·m−2 at 6 mmol·L−1, a 194% improvement over the blank group. Immobilization further enhanced electron transfer efficiency, with the highest output voltage (88.75 mV) being 2.09 times that of the non-immobilized group. For pollutant degradation, the 6 mmol·L−1 lactate group achieved TOC and TN removal rates of 29.02% and 28.4%, respectively, outperforming the control (22.41% and 21.42%). However, high lactate concentrations inhibited microbial metabolism, leading to TOC accumulation. 16S rRNA analysis revealed that the anodic microbial community was dominated by Bacillota and Pseudomonadota, both possessing electroactive and pollutant-degrading capabilities, indicating that lactate and immobilization exert a synergistic effect in SMFCs, simultaneously enhancing electricity generation and pollutant removal efficiency.
Environmental Chemistry•2026•DOI: 10.7524/j.issn.0254-6108.2026021203
Neonicotinoid insecticides (NEOs) are widely used pesticides with residues entering the human body via multiple routes, posing potential health risks. Pregnant women are a sensitive population requiring investigation into NEO exposure effects. Based on the Jiashan Birth Cohort, this study measured 12 NEOs (9 parent compounds and 3 metabolites) and three oxidative stress biomarkers (8-iso-prostaglandin F2α, 8-iso-15(R)-prostaglandin F2α, and 8-hydroxy-deoxyguanosine) in urine from 917 pregnant women using liquid chromatography-triple quadrupole mass spectrometry. Demographic data were integrated to analyze exposure patterns and associations. Results showed at least one NEO detected in all samples; seven NEOs had detection rates >50%. Median creatinine-adjusted total concentration was 5.613 μg·g−1. Acetamiprid-N-desmethyl (N-dm-ACE) had the highest detection rate (98.59%) and largest concentration proportion (64.2%). Spearman correlation, multiple linear regression, and Bayesian kernel machine regression revealed positive associations between oxidative stress markers and NEO exposure. Specifically, 8-PGF and 15-PGF correlated positively with thiacloprid-amide (THI-amid) and dinotefuran (DIN); 8-OHdG correlated positively with thiamethoxam (THM) and sulfoxaflor (SFX). Health risk assessment indicated hazard quotients below 1 for all NEOs, suggesting low health risks. This study provides evidence linking NEO exposure to oxidative stress damage in pregnant women, informing risk assessment for sensitive populations.
Environmental Chemistry•2026•DOI: 10.7524/j.issn.0254-6108.2026031103
Sintering ash washing wastewater from steel plants is characterized by high salinity, high chloride content, high thallium load, and coexistence of multiple metals, posing significant treatment challenges. This study employed thermodynamic simulation to elucidate the speciation and transformation of thallium in such wastewater, and systematically investigated a combined process of sulfide precipitation coupled with coagulation-flocculation. The results showed that at pH 9–10, thallium predominantly existed as Tl+. Under oxidizing conditions, the stable complex anion [TlCl4]− dominated at pH < 8.1, while at pH > 8.1, a mixed system of solid Tl2O3 and dissolved TlClO3 coexisted. Under optimized conditions (pH 12, 2.0% thallium removal agent, 1.0% multi-effect auxiliary agent), the thallium concentration in the wastewater decreased from an initial 9.58 mg·L−1 to 4.31 μg·L−1, meeting the stringent discharge limit of ≤5 μg·L−1. Concurrent removal of Cu, Zn, and Cd was achieved. The primary removal mechanism was sulfide precipitation, with lattice substitution between Tl+ and K+ serving as an auxiliary pathway. This study provides a practicable technical route for advanced treatment of high-chloride, high-thallium industrial wastewater.
Journal of Environmental Engineering Technology•2026•DOI: 10.13205/j.hjgc.202608018
Chlorinated volatile organic compounds (CVOCs) are volatile, difficult to degrade, and highly toxic, posing serious threats to the atmospheric environment and human health. Catalytic oxidation is currently one of the mainstream methods for CVOCs abatement, owing to its high efficiency, safety, and economic feasibility, and its key aspect lies in the design and development of high-performance catalysts. In the catalytic oxidation of CVOCs, the poisoning effect of chlorine species on catalysts severely restricts catalytic performance. Ru-based catalysts, which exhibit excellent catalytic oxidation activity toward CVOCs and favorable chlorine-resistant performance, have been widely studied in recent years. This paper reviews the latest research progress on Ru-based catalysts for the catalytic oxidation of CVOCs. The mechanism of catalytic oxidation of CVOCs by Ru-based catalysts is elucidated through a systematic analysis of the relevant literature. Furthermore, the strategies for the design and structural regulation of Ru-based catalysts are outlined from the perspectives of active components, supports, and surface modification. Finally, novel preparation methods for Ru-based catalysts and the influence of reaction components on catalytic performance are summarized. Future research directions in this field are also prospected, aiming to provide a reference for the subsequent design and development of high-performance Ru-based catalysts suitable for complex operating conditions.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-4097-3
The on-demand patterning of two-dimensional transition metal dichalcogenides (TMDs) with tailored edges is critical for electronic and optoelectronic applications but remains technically challenging. Here, we report a stress-guided anisotropic etching strategy for producing large-area, well-ordered MoS2 nanostructures, including nano-ribbons and nano-squares, without templates. By applying uniaxial cumulative stress followed by selective thermal etching, MoS2 monolayers are statistically etched into ribbon-like structures whose width inversely correlates with applied stress magnitude. The newly etched edges are macroscopically straight or serrated, predominantly Mo-zigzag terminated, and enhance photoluminescence by a factor of ~8.0. The edge type depends on the angle between stress direction and crystallographic orientation, corroborated by theoretical calculations. Biaxial stressing generates well-defined nano-squares, offering a scalable, versatile patterning route for engineering 2D materials with tailored functional edges, promising for electrocatalytic and optoelectronic applications.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-4063-2
Quantum dot light-emitting diodes (QLEDs) are emerging as a leader in next-generation display technology. In principle, the efficiency of QLEDs is highly reliant on the radiative recombination rate of injected electrons and holes in the QD emissive layer. Within a solitary light-emitting cycle, a pre-negative-charged QD bursts into a fleeting sparkle upon encountering a hole, much like a lighted piston within a roaring engine. More pistons bring higher horsepower. The challenge of achieving highly efficient QLED lies in how to increase the number of pre-negatively charged QDs. To address these limitations, we developed a ZnO@ZnMgO core-shell nanoparticle (NP)-based electron transport layer (ETL). This design synergistically combines the high conductivity of ZnO core and the low defect density of the ZnMgO shell. Measured by electron-excited transient absorption, the average electron population (<N_e>) in the emissive layer for ZnO@ZnMgO and ZnMgO-based QLEDs was 0.61 and 0.33 at 4 V, respectively, which greatly increases the carrier recombination efficiency. As a result, green QLEDs achieve a peak EQE of 30.66%, maximum luminance of 1,615,039.85 cd/m2, and a low turn-on voltage of approximately 2 V. The T95 operational lifetime exceeded 29,000 h at 1,000 cd/m2. Currently, all parameters are at the top level within the QLED region.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-4044-3
Efficient sequestration of radioactive iodine species (I2, CH3I, I3−) is vital for nuclear safety and environmental protection. However, developing multifunctional adsorbents that remain effective under diverse conditions remains a significant challenge. Herein, we report two functionalized PD-COFs (PD-WS and PD-WY) with moderate crystallinity, outstanding thermal stability, and robust chemical resistance. They exhibit superior adsorption performance in both gas and liquid phases. Specifically, at 75°C, PD-WY achieves capacities of 4.88 g g−1 for I2, 1.55 g g−1 for CH3I, and 5.55 g g−1 for the I2/CH3I mixture, while high capacities are also retained at room temperature. In solution, PD-WY adsorbs up to 3.56 g g−1 of I3− in water and 2.00 g g−1 of iodine in cyclohexane. These COFs display rapid kinetics (K80% = 3.25 g g−1 h−1 for I2 and 7.89 g g−1 h−1 for I3−) and excellent selectivity. Mechanistic studies indicated that the excellent iodine affinity of PD-COFs arises from their rich electronic structures, abundant active sites, and charge transfer interactions. These findings position PD-COFs as highly promising adsorbents for nuclear waste treatment and environmental remediation.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3953-5
Tin-based perovskite solar cells (TPSCs) are the leading candidate for lead-free perovskite photovoltaics, yet their efficiency lags behind lead-based counterparts due to interfacial losses. This highlight analyzes a recent breakthrough by Li et al. (Nature Publishing Group, 2025) that addresses these losses via a triphenylamine-based starburst-shaped D-D-p-A self-assembled monolayer (SAM) molecule, MBP, anchored on nickel oxide (NiOx) as a buried hole-transport layer. The MBP molecule features a cyanoethyl phosphate anchoring group, enabling homogeneous adsorption on NiOx, and an expanded conjugated structure that yields a highest occupied molecular orbital (HOMO) level of -4.95 eV, closely matching the valence band maximum of tin perovskites. This alignment reduces energy mismatch, while the push-pull electron system enhances hole extraction. Time-resolved photoluminescence (TRPL) and steady-state photoluminescence (PL) measurements confirm faster hole extraction and reduced non-radiative recombination at the NiOx/MBP interface. Contact angle measurements demonstrate super-wettability of the perovskite precursor on NiOx/MBP, promoting high-quality film growth. Devices incorporating NiOx/MBP achieve a champion power conversion efficiency (PCE) of 17.6% (as reported in the original paper), with significantly improved long-term shelf stability and operational stability under illumination. This work underscores the potential of tailored SAM molecules to overcome energy-level and wettability bottlenecks, advancing TPSCs toward practical application.
Journal of Fuel Chemistry and Technology•2026•DOI: 10.1016/S1872-5813(26)60681-0
The escalation of global warming and climate change necessitates the development of clean energy carriers. Hydrogen, with a high combustion value of 120 MJ/kg and net-zero carbon emissions, is a promising alternative. Catalytic methane pyrolysis offers a route to produce high-purity hydrogen and functional carbon materials simultaneously. However, challenges persist in catalyst deactivation due to carbon deposition and the efficient separation and valorization of carbon byproducts. This review systematically examines recent progress in solid and molten-medium catalysts for methane pyrolysis. It highlights strategies to enhance catalyst stability, including precise control of active sites, alloying, support optimization, and tuning the carbon-catalyst interface. The introduction of molten media catalytic systems, which feature dynamically refreshed gas-liquid interfaces, can fundamentally mitigate deactivation and facilitate continuous carbon separation. The paper discusses reaction mechanisms, catalytic performance, and control of carbon morphology, along with strategies for efficient separation and purification of carbon products in molten media. High-value applications of the produced carbon materials are also explored. The review underscores the potential of methane pyrolysis as a low-carbon technology for hydrogen production, while identifying key research directions for industrial scalability.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-4074-6
Achieving carbon neutralization relies heavily on green hydrogen and electrochemical carbon-nitrogen cycles. However, the complexity of these systems and the cost of traditional Edisonian trial-and-error methods hinder rapid progress. Artificial intelligence (AI) has emerged as a transformative tool, enabling high-throughput data processing and dynamic adaptation. This review surveys the landscape of AI-driven electrochemistry, bridging the gap from atomic-scale design to industrial-scale implementation. Specifically, we focus on three areas: atomic structure-function decoding, fully automated “self-driving” laboratories, and macro-scale simulations for device durability. Furthermore, we elucidate the critical challenges in integrating AI with materials science. By mapping current trends and future directions, this work aims to unlock the full transformative potential of AI in next-generation energy storage and conversion.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-4334-9
Piezoelectric materials underpin modern electromechanical energy conversion, serving as critical components in sensors, actuators, and energy harvesters. Their performance is intrinsically governed by the piezoelectric coefficient, yet optimizing this property remains challenging due to the profound influence of diverse microscopic structures. This review systematically examines three fundamental crystalline architectures—perovskite, wurtzite, and fluorite—and critically analyzes performance optimization strategies tailored to each structure. We explore five principal modification approaches: defect engineering, elemental doping, heterostructure film fabrication, composite film design, and buffer layer incorporation, with emphasis on the underlying physical mechanisms that drive property enhancements. By providing a cross-structural comparison, this review establishes clear structure–property relationships, offering a foundational guide for material selection and design. Furthermore, we highlight the implications of these advanced materials for next-generation applications in energy harvesting and smart devices. Finally, we present a forward-looking roadmap, outlining emerging research directions and addressing key technical challenges to guide the development of next-generation high-performance piezoelectric materials.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4073-2
Precise control of molecular orientation in nonfullerene acceptors is crucial yet challenging for achieving both high efficiency and long-term stability in organic solar cells (OSCs). Here, we report a molecular dimerization strategy to regulate orientation and charge-transport anisotropy in ambipolar M-series acceptors. Using the edge-on-oriented small-molecule acceptor MC16 as a model, dimerization into DMC16 effectively suppresses over-aggregation and molecular diffusion while inducing a predominant face-on packing orientation. This orientation transition reverses the transport anisotropy from lateral to vertical directions, enabling balanced ambipolar charge transport and efficient carrier extraction. Consequently, DMC16-based OSCs exhibit a markedly enhanced power conversion efficiency together with outstanding thermal stability, retaining 94% of the initial efficiency after 1800 h at 85 °C and 74% after an additional 1000 h at 120 °C. When introduced as a third component in PM6:M36 ternary blends, DMC16 further optimizes blend morphology and stability, delivering an efficiency of 19.04% and over 15% in 10.15 cm2 modules. These results demonstrate that dimerization-induced molecular orientation control provides an effective pathway to simultaneously enhance efficiency, stability, and scalability in OSCs.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-4104-4
Covalent organic frameworks (COFs) are promising adsorbents for gas adsorption and separation, yet identifying optimal structures among their vast design space requires efficient high-throughput screening. Conventional machine-learning predictors rely heavily on specific gas-related features, which are time-consuming and limit scalability, leading to inefficiency and labor-intensive processes. Here, we propose COFAP, a universal COFs adsorption prediction framework that extracts multi-modal structural and chemical features via deep learning and fuses these complementary features through a cross-modal attention mechanism. Without relying on explicit gas-specific thermodynamic descriptors, COFAP achieves state-of-the-art prediction performance on the hypoCOFs dataset under the conditions investigated, outperforming existing approaches. Based on COFAP, we found that high-performing COFs for gas separation concentrate within a narrow range of pore size and surface area. A weight-adjustable prioritization scheme is also developed to enable flexible, application-specific ranking of candidate COFs. Superior efficiency and accuracy render COFAP directly deployable in crystalline porous materials.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4103-8
The industrial production of urea through the integrated Haber–Bosch and Bosch–Meiser processes involves high energy consumption and significant CO2 emissions. Given the persistent technical challenges inherent in direct electrocatalytic methods, catalytic systems that enable the thermal coupling of N2 and CO2 under mild conditions represent a promising and sustainable approach to urea synthesis. Herein, we designed MXene-based bimetallic single-cluster catalysts, M1Ru3@Mo2CO2, in which the M1Ru3 cluster is stably anchored on the Mo2CO2 support. Using density functional theory calculations, we systematically evaluated the structural stability and adsorption capabilities of 3d transition metal variants (M = Sc to Zn) toward N2, CO2, and H2. The results demonstrate that Co1Ru3@Mo2CO2 exhibits excellent thermodynamic stability and enables the synergistic activation of N2, CO2, and H2, fulfilling the prerequisite conditions for catalyzing the direct coupling of N2 and CO2 to form urea. Further analysis reveals that Co1Ru3@Mo2CO2 efficiently promotes the direct thermal coupling of N–C into urea under mild conditions via the associative pathway, with the rate-determining step corresponding to the conversion of *NHNH2 → *NH2NH2 with the low energy barrier of 1.16 eV. Under realistic conditions of 780 K and 29 bar, the calculated turnover frequency reaches 1.01 × 10−3 s−1 site−1. The high catalytic performance arises from the ability of the Co1Ru3 bimetallic cluster to precisely modulate charge transfer between support and reaction intermediates. Moreover, the in situ generated NH2 species acts as an autocatalyst for CO2 hydrogenation, while the cluster selectively enhances the electrophilicity of the *CO intermediate, thereby facilitating the nucleophilic attack by *NH2 and ensuring efficient C–N bond formation. The finding of the outstanding performance of Co1Ru3@Mo2CO2 single cluster catalysts could bypass the energy-intensive NH3 synthesis step, reduce overall energy demand, and remain compatible with existing urea production infrastructure, thereby offering significant scientific and technological significance.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4169-9
Transition metal fluorides (TMFs) are promising cathode materials for lithium-ion batteries (LIBs) due to their high theoretical capacity and energy density, yet their practical application is hindered by low utilization rates stemming from particle sizes exceeding the effective Li+ transport distance (<20 nm). This work introduces a multiphase metal fluoride composite (MMFC) synthesized via a hydrothermal method, leveraging high-entropy concepts and interface engineering to enhance electrochemical performance. The MMFC, after annealing at 400°C (MMFC-400), exhibits high specific capacity, excellent rate capability, and cycling stability. The multiphase interfaces accelerate Li+ migration kinetics and provide additional active sites, addressing the limitations of conventional TMF cathodes. This study proposes a multiphase interfacial energy storage strategy for advanced TMF cathodes, offering a pathway to high-performance LIBs.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4188-x
Sodium metal anodes, with high theoretical capacity (1166 mAh g−1) and low redox potential (−2.71 V vs. H+/H2), are promising for low-cost, high-energy sodium metal batteries (SMBs). However, uncontrolled dendrite growth and drastic volume changes cause short circuits and safety hazards. This work presents a dual-gradient engineering strategy to address these issues. A 3D self-supporting current collector (SSM-ZnS@Zn) was fabricated by laminating a stainless steel mesh (SSM) with a Zn foil decorated with pre-grown ZnS nanoparticles via a one-step rolling process. The substantial electrical conductivity difference between the bottom zinc foil (~16.6×10^6 S m−1) and the top SSM (~1.3×10^6 S m−1) establishes an electric field gradient. Simultaneously, a sodiophilicity gradient is created by electrochemically in-situ generated sodiophilic NaZn13 and Na2S on the bottom zinc foil, combined with the sodiophobic upper SSM layer. This dual-gradient synergy guides bottom-up sodium deposition, homogenizes current density and electric potential, and reinforces mechanical robustness. The framework exhibits outstanding electrochemical performance in both symmetric and full cells, outperforming most reported 3D structures. A pouch cell assembled with SSM-ZnS@Zn successfully lit an LED lamp, demonstrating practical application potential. This strategy surpasses single-gradient limitations and offers a new approach for high-performance sodium metal anode design.
SCIENCE CHINA Materials•2025•DOI: 10.1007/s40843-025-3548-9
Photodynamic therapy (PDT) is constrained by the absence of tumor selectivity in conventional photosensitizers (PSs), which produces phototoxicity in normal tissues and risks activation by ambient light. Covalent conjugation of PSs to targeting peptides improves accumulation but does not suppress off-target activation. This work reports B-HCPP-RGD, a single-molecule PS that integrates αVβ3 integrin targeting with dual responsiveness to H2O2 and cathepsin B. The hypocrellin-derived type I PS HCEA is masked by a 4-(bromomethyl)phenylboronic acid pinacol ester H2O2-responsive group and conjugated to cyclic Arg-Gly-Asp (cRGD) through a cathepsin B-cleavable Gln-Val dipeptide linker. ROS generation in solution is effectively suppressed until both H2O2 and cathepsin B are present, at which point HCEA is released. In vitro, B-HCPP-RGD shows negligible phototoxicity toward normal cells and pronounced phototoxicity toward tumor cells, including under hypoxic conditions. In vivo, the conjugate actively targets tumor tissue and achieves a high tumor inhibition rate with favorable biosafety. The results establish a modular design for dual-responsive, tumor-targeted PSs that improves the precision and safety of PDT.
SCIENCE CHINA Materials•2025•DOI: 10.1007/s40843-025-3476-4
Ammonia synthesis remains dominated by the Haber-Bosch process, which operates at 400–500 °C and 150–300 bar, consumes 1–2% of global energy, and emits ~1.4% of global CO2. Ru-based catalysts supported on carbon and promoted with basic oxides (Ba, Cs, La) exhibit high activity under mild conditions, but conventional designs suffer from a trade-off: BaO domains block Ru active sites while attempting to donate electrons. Lee et al. (Nat Catal, 2025, 8: 248–256) resolved this by using conductive carbon to bridge isolated Ru and BaO domains, enabling long-range H+/e− pair migration. Screening eleven carbon supports, they identified N-doped multi-walled carbon nanotubes (10–20 nm diameter, N-MWNT-1) with the lowest work function as optimal. At a Ba/Ru molar ratio of 0.75, the catalyst achieved an NH3 production rate 7.4 times higher than conventional BaO-promoted Ru catalysts under 573 K and 1.0 MPa, using high-purity H2 and N2 (99.999%, O2 <0.4 ppm, H2O <0.7 ppm). This design decouples proton and electron storage, preventing BaO-induced blockage of Ru surfaces and enabling superior activity and stability. The Ba-Ru/carbon catalyst offers a transformative pathway for reducing energy consumption and integrating with electrolytic hydrogen production in industrial ammonia synthesis.