SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4384-9
Nanovesicle-hybridized hydrogels constitute a class of bioactive materials that integrate the structural stability of polymer networks with the intrinsic biological functions of nanoscale vesicles. Conventional hydrogels suffer from swelling-induced mechanical degradation, uncontrollable cargo release, and an inability to integrate multiple bioactivities. Hybridization with nanovesicles provides a robust solution to these limitations. This review systematically delineates the evolution of construction strategies, transitioning from simple physical entrapment to advanced chemical crosslinking involving noncovalent supramolecular interactions and covalent conjugation. We elucidate how these integration methods fundamentally enhance mechanical strength, enable spatiotemporally controlled release of vesicles and their cargos, and endow composite systems with multifaceted bioactivities. The diverse biomedical applications of these hybridized platforms in drug delivery, tissue engineering, and disease therapy are thoroughly discussed. Current technical hurdles in clinical translation and promising future directions are identified, providing a roadmap for the next generation of intelligent biomimetic materials. The review emphasizes that the shift from physical doping to chemical crosslinking represents a paradigm change, yielding composites with superior mechanical resilience and programmable release kinetics. By critically assessing the trade-offs between crosslinking density, vesicle integrity, and payload retention, this work offers a framework for designing hybrid systems with tailored properties. Key challenges include scalable manufacturing, long-term stability, and regulatory hurdles. The analysis underscores that clinical translation demands standardized protocols for vesicle isolation, crosslinking efficiency, and sterility assurance. This review serves as a benchmark for researchers and engineers aiming to bridge the gap between laboratory-scale fabrication and industrial production of nanovesicle-hybridized hydrogels.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4290-9
Thermoelectric materials enable direct and reversible conversion between heat and electricity, offering unique advantages for waste heat recovery, solid-state refrigeration, and deep-space power systems. The performance is evaluated by the dimensionless figure of merit, zT = S²σT/κ, where S is the Seebeck coefficient, σ is the electrical conductivity, T is the absolute temperature, and κ is the total thermal conductivity. Achieving high zT requires simultaneous realization of a large power factor (S²σ) and low thermal conductivity. However, these parameters are intrinsically coupled, posing a fundamental challenge. PbTe is a representative thermoelectric material operating in the intermediate temperature range, with outstanding performance originating from its unique electronic band structure featuring multiple nearly degenerate valence band maxima near the L points. Band convergence via alloying with mono-tellurides such as MgTe, MnTe, CdTe, YbTe, SrTe, and EuTe effectively modifies the valence band structure, increasing band degeneracy and density-of-states effective mass, thereby enhancing electrical conductivity without decreasing the Seebeck coefficient. However, increasing the content of these mono-tellurides limits acceptor dopability, making conventional dopants like Na difficult to incorporate. This study demonstrates that co-doping strategies can preserve dopability while achieving band convergence and dislocation engineering, leading to significantly reduced lattice thermal conductivity and extraordinary peak zT values. The decoupling of electronic and thermal transport through this approach offers a promising route for high-performance thermoelectrics.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4269-4
Self-assembled molecular interlayers (SAMs) are promising hole-selective contacts for high-efficiency organic solar cells (OSCs) due to their well-defined energy alignment and minimal parasitic absorption. However, their intrinsically limited mechanical robustness often leads to structural degradation and performance loss under mechanical deformation, restricting their application in flexible devices. Here, we report a nanoparticle-reinforced self-assembled composite interface that simultaneously enhances mechanical reliability and optoelectronic performance. Uniformly dispersed SiO2 nanoparticles are introduced as high-modulus reinforcing building blocks without disturbing molecular self-assembly. In contrast to NiOx nanoparticles, which suffer from aggregation and parasitic absorption, SiO2 nanoparticles exhibit excellent dispersion and optical transparency, enabling formation of a structurally compatible hybrid interface. Mechanistic studies reveal that SiO2 nanoparticles redistribute interfacial stress and form dynamic hydrogen-bond networks with phosphonic acid groups of 2PACz, providing efficient energy dissipation during cyclic deformation. Meanwhile, modulation of interfacial polarity extends the crystallization time window of the active layer, resulting in enhanced molecular ordering and improved charge transport. As a result, devices based on the SiO2/2PACz composite interface achieve a power conversion efficiency of 20.14% for rigid devices and 19.30% for flexible devices, placing the flexible devices among the highest-performing flexible OSCs reported to date, while retaining over 90% of their initial efficiency after repeated bending cycles. This work establishes a general strategy for overcoming the trade-off between electronic selectivity and mechanical robustness in ultrathin self-assembled molecular interfaces, providing design insights for high-performance flexible organic optoelectronics.
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/s40843-026-4373-2
Infrared stealth technology demands materials with simultaneously low infrared emissivity and robust environmental stability. Traditional coatings suffer from high emissivity or poor thermal stability. Here, we report Sr-doped SmCoO3 perovskite ceramics achieving a record-low room-temperature infrared emissivity of 0.12 in the 8–14 μm atmospheric window. Systematic doping (x = 0, 0.1, 0.2, 0.3, 0.4, 0.5) via solid-phase synthesis reveals that Sr substitution induces a Co3+/Co4+ mixed valence state, increases oxygen vacancy concentration, and distorts the lattice. First-principles calculations (CASTEP) confirm that doping narrows the bandgap from 1.8 eV to 0.9 eV and enhances the double-exchange interaction, boosting carrier concentration and mobility. The optimized composition (x = 0.3) exhibits an electrical conductivity of 1.2×10^3 S/cm and a carrier density of 3.5×10^21 cm^-3, leading to strong infrared reflection. The material maintains emissivity below 0.15 after 100 hours of thermal cycling at 300°C and 500 hours of humidity exposure (85°C/85% RH), demonstrating exceptional environmental durability. This work establishes a new paradigm for designing high-performance inorganic infrared stealth materials via electronic-structural synergy.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4315-2
High-temperature X-ray imaging demands scintillators with high crystallinity, efficient scintillation, and robust thermal stability, yet suitable materials remain scarce. Here, we report an ultra-high-crystallinity transparent glass-ceramic (GC) scintillator strategically designed via controllable heat-treatment-induced crystallization. A sequential precipitation method is employed, where cubic CaF2 nanocrystals initially form, subsequently promoting heterogeneous nucleation and growth of hexagonal BaAl2Si2O8. Intrinsic nanoscale phase separation into F-rich and O-rich domains significantly reduces atomic diffusion distances, yielding an unprecedented crystallinity of up to 97.6%. Notably, defect traps (oxygen vacancy defects, likely located within the lattice or at crystalline/amorphous interfaces) enable efficient carrier capture and thermally stimulated release, contributing to remarkable resistance to thermal quenching. Consequently, the GC scintillator maintains 90.6% of its integrated X-ray excited luminescence (XEL) intensity at 300 °C, with the integrated XEL intensity reaching 94.2% of commercial Bi4Ge3O12 (BGO) at room temperature. This enables stable high-temperature X-ray imaging with a spatial resolution of ~10.4 lp mm−1 up to 225 °C. This work provides a versatile pathway for developing high-sensitivity scintillators for extreme-environment X-ray imaging.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4106-8
Perovskite/organic tandem solar cells (PO-TSCs) have emerged as a compelling photovoltaic architecture to transcend the Shockley-Queisser limit of single-junction devices. By monolithically stacking a wide-bandgap (WBG) perovskite top cell and a narrow-bandgap (NBG) organic bottom cell, PO-TSCs enable broad spectral utilization and reduced thermalization loss, offering a viable pathway toward efficiencies beyond 30%. Their solution processability, compatibility with orthogonal solvents, and potential for lightweight, flexible, and semi-transparent modules further make them attractive for building integrated and portable electronics. However, the realization of high-performance PO-TSCs critically depends on precise carrier regulation across the entire multilayer stack, where inefficient charge transport, recombination losses, and interfacial bottlenecks often limit the overall power conversion efficiency (PCE) and stability. This review systematically examines the carrier-regulation strategies essential for advancing PO-TSCs, focusing on defect and phase-control in WBG perovskites, the design of optically transparent and electrically efficient interconnecting layers, and the enhancement of charge generation and collection in organic subcells. The integration of these approaches has recently enabled efficiencies exceeding 26%, demonstrating the rapid progress of the field. Ultimately, we conclude with an outlook on the remaining challenges in scalability, operational stability, and manufacturability, providing a roadmap for future research toward commercially viable tandem photovoltaics.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3828-y
The rapid development of halogen-free solvent-processed organic solar cells (OSCs) has been enabled by side-chain modification on small molecular acceptors, yet the structure-property relationship between inner/outer chain lengths and device performance remains unclear. This study systematically investigates five non-fullerene acceptors (NFAs) with varied side-chain positions and architectures, clarifying the effects of inner versus outer modifications on energy level distribution, film morphology, and carrier dynamics. Notably, longer alkyl chains are not always superior; excessive solubility reduces molecular packing order. The optimized PM6:BTP-TO12 blend achieves a power conversion efficiency (PCE) of 18.2%. Furthermore, ternary OSCs incorporating BTP-TO12 as a guest material reach a remarkable PCE of 19.5%, enhancing the performance of L8-BO-based devices processed with green solvents. This improvement is attributed to the low energy loss and well-controlled aggregation behavior of BTP-TO12 in environmentally friendly toluene. These findings establish a design guideline for side-chain engineering in green-solvent-processed OSCs, achieving state-of-the-art performance and advancing scalable, eco-compatible photovoltaic technologies.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3683-y
Effective management of traumatic hemorrhage requires rapid blood loss control and facile removal of hemostatic materials to minimize secondary tissue damage. We fabricated a strongly adhesive aerogel (OPA) via Schiff-base crosslinking of oxidized hyaluronic acid (OHA) and ε-polylysine (ε-PL), enabling rapid hemostasis in lethal arterial trauma and on-demand removal via phase transition. OPAs exhibited tunable porosity and rapid blood absorption. Surface hydroxyl, amino, and carboxyl groups promoted strong hydrogen bonding with tissues, blood cells, and plasma proteins, enhancing tissue adhesion and platelet capture/activation. In a rabbit femoral-artery-injury model, OPA4 shortened hemostatic time by ~80% and reduced blood loss to 38% of the blank group. Notably, OPAs retained only 2% of initial adhesion after hydration, allowing gentle removal. OPAs also demonstrated excellent antibacterial activity, biocompatibility, and biodegradability. The simple one-step freeze-drying process and tailorable shapes offer scalable production and versatile applications. This study provides a versatile strategy for emergency and surgical hemostasis, combining rapid control of life-threatening arterial bleeding with on-demand atraumatic removal, promising improved patient outcomes and streamlined postoperative care.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3727-0
Lead halide perovskites are promising scintillators for X-ray imaging due to high X-ray absorption efficiency, excellent luminescence, and facile synthesis. However, their ionic nature challenges simultaneous high photoluminescence efficiency and environmental robustness. This work introduces a multilevel encapsulation strategy: CsPbBr3 quantum dots (QDs) are sequentially coated with Cs4PbBr6, SiO2, and polydimethylsiloxane (PDMS). Cs4PbBr6 passivates surface defects, while SiO2 and PDMS provide barriers against moisture, heat, and radiation. The resulting CsPbBr3@Cs4PbBr6/SiO2/PDMS flexible films exhibit a photoluminescence quantum yield (PLQY) of 85%, outstanding mechanical flexibility, and durability under stretching, bending, and compressing. Films retain emission stability under elevated temperatures, prolonged X-ray irradiation, and extended water immersion. X-ray imaging demonstrates spatial resolution of 12 lp/mm, enabling distortion-free imaging of curved objects; superior water resistance allows long-term underwater imaging. This work highlights hierarchical encapsulation in balancing luminescence efficiency and stability, offering a pathway toward practical flexible perovskite scintillators.
Environmental Chemistry•2026•DOI: 10.7524/j.issn.0254-6108.2025010203
The production and disposal of lithium batteries release not only hazardous metals and particulates but also substantial amounts of harmful organic pollutants. This study focuses on N-methyl-2-pyrrolidone (NMP) to investigate the environmental release and human exposure of organic pollutants throughout the lithium battery lifecycle. Using liquid chromatography-high-resolution mass spectrometry (LC-HRMS), NMP was quantified in environmental samples from battery production and dismantling facilities, as well as in pyrolysis products from simulated thermal recovery of mainstream lithium batteries. Key release stages were identified: slurry mixing and coating/drying during production; shredding, electrolyte volatilization, and high-temperature pyrolysis during disposal. In unprotected occupational settings, estimated NMP exposure via dust ingestion exceeded reference doses, underscoring the need for health impact assessments and evaluation of protective measures. This research provides critical insights into the environmental release and population exposure of organic pollutants across the lithium battery lifecycle, informing health policy for vulnerable populations.
Journal of Environmental Engineering Technology•2026•DOI: 10.13205/j.hjgc.202604011
Reverse osmosis (RO) membrane fouling remains a critical bottleneck in reclaimed water production, yet its spatial heterogeneity over extended operation is poorly understood. This study investigated fouling characteristics and microbial community dynamics on RO membranes after 3.5 years of operation in a full-scale microfiltration-reverse osmosis (MF-RO) system treating reclaimed water. Long-term monitoring showed stable effluent quality (turbidity <0.1 NTU, conductivity <400 μS/cm), but RO inlet pressure exhibited seasonal fluctuations of 15%–22% between summer and winter, attributed to water viscosity changes. Membrane autopsies revealed distinct fouling layers at the inlet (RO1) and outlet (RO2) ends. RO1 featured a dense bio-inorganic composite fouling layer with CaSO4 crystals and rod-shaped microbial aggregates (5–10 μm), dominated by Proteobacteria (77.11%), particularly Alphaproteobacteria (71.49%) and Xanthobacteraceae (35.29%), which secreted extracellular polymeric substances (EPS) to form biofilms. In contrast, RO2, exposed to higher salinity, showed reduced microbial abundance (Proteobacteria decreased to 64.79%) and a shift toward halotolerant taxa, including Microbacteriaceae (23.73%) and Actinobacteriota (24.76%), with EPS secretion increased by 42%. Alphaproteobacteria relative abundance dropped by 19.3%, while Gammaproteobacteria rose to 12.54%. These findings elucidate salinity-driven microbial succession and spatial heterogeneity of fouling, providing a basis for targeted antifouling strategies and 'zonal-graded' cleaning protocols in reclaimed water plants.
Journal of Environmental Engineering Technology•2026•DOI: 10.13205/j.hjgc.202604020
Source reduction of volatile organic compounds (VOCs) from industrial emissions is a core task for air quality improvement during China's 15th Five-Year Plan period. Supercritical carbon dioxide (ScCO2) spraying technology emerges as a cutting-edge VOCs abatement approach, as it reduces both VOCs content in coatings and coating consumption. However, empirical research on coating efficiency enhancement and VOCs emission reduction at demonstration scale remains scarce. This study selected three solvent-based coating systems widely used in Chinese industry: wooden furniture-polyurethane, wooden furniture-acrylic, and metal parts-fluorocarbon. A calculation method for ScCO2 spraying efficiency and VOCs emission reduction rate was established, and emission reduction performance was systematically measured. Results indicated that compared with high-pressure airless spraying, average coating efficiency improvement rates of ScCO2 spraying at spray distances of 60 cm and 40 cm across the three scenarios were (30.62±8.75)% and (31.74±12.83)%, respectively. Correspondingly, average VOCs emission reduction rates were (62.10±1.59)% (60 cm) and (53.73±11.78)% (40 cm). VOCs content reduction rates for the three systems were 46.03%, 23.80%, and 37.60%, respectively. Diluent addition was reduced from 60% to 10%, achieving a substitution rate of 83%. The study confirms that ScCO2 spraying can achieve significant reductions in VOCs and solvent emissions in wooden furniture and metal parts coating processes, providing empirical support for industrial promotion.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-4043-3
In-plane InAs nanowires and nanowire networks are promising platforms for electronics, optoelectronics, and topological quantum computing due to their small electron effective mass, narrow bandgap, high electron mobility, strong spin-orbit coupling, and large Landé g factor. However, their selective area growth on CMOS-compatible group-IV substrates remains challenging. Here, we report the selective area growth of high-quality in-plane InAs nanowires and nanowire networks on Ge(111) substrates by molecular-beam epitaxy. Conventional selective-area epitaxy fails to simultaneously achieve good selectivity and continuity. To overcome this, we developed a metal-sown, single-indium-source two-step growth method, which attains both selectivity and continuity but yields nanowires with rough surfaces and lengths below 10 μm. We then introduced an upgraded metal-sown, dual-indium-source two-step growth method, successfully fabricating in-plane InAs nanowires and nanowire networks with smooth surface morphology and lengths exceeding 60 μm. By optimizing the As beam equivalent pressure, overgrowth at network junctions is effectively suppressed, resulting in uniform nanowire networks. High-resolution transmission electron microscopy and Raman spectroscopy confirm the high-quality single-crystalline nature and pure zinc-blende structure of the nanowires and networks. This work establishes a foundation for fabricating high-quality in-plane InAs/superconductor hybrid nanowires and nanowire networks on Ge substrates.
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.
Journal of Fuel Chemistry and Technology•2026•DOI: 10.1016/S1872-5813(25)60620-7
Direct coal liquefaction (DCL) diesel constitutes over 60% of DCL products, yet its cetane number (30–40) falls short of the automotive diesel standard (≥45). Rapid and accurate compositional analysis is essential for optimizing properties via component blending. Traditional gas chromatography offers high accuracy but is unsuitable for online industrial monitoring. Near-infrared (NIR) spectroscopy enables rapid, non-destructive analysis, but spectral interpretation is complex. This study integrates NIR spectroscopy with machine learning (ML) to construct a spectral-composition database for DCL diesel. Feature extraction using correlation coefficient and mutual information methods screened key wavelength variables, reducing dimensionality from ~1800 to ~200 wavelengths. Three ML models—Lasso, SVR, and XGBoost—were compared. Excluding spectral data with absorbance >1 significantly improved model accuracy, increasing test set R² from 0.85 to 0.96. After feature extraction, the optimal variable count was 177, enhancing computational efficiency. Among models, SVR-MI-0.9 (mutual information feature selection) achieved the best performance, with training and test set R² values exceeding 0.98, enabling precise prediction of paraffin, naphthene, and aromatic contents. This research provides a robust methodology for intelligent online quality monitoring. An intelligent NIR spectroscopy data analysis software was independently developed based on the established model. Compared with comprehensive two-dimensional gas chromatography, the software reduced analysis time by over 98%, with absolute prediction error below 0.2%. Thus, rapid analysis of DCL diesel components was successfully realized.
Journal of Fuel Chemistry and Technology•2026•DOI: 10.3724/2097-213X.2025.JFCT.0029
Pingshuo coal ash, characterized by high silicon-aluminum content (Si+Al >85%) and low Si/Al ratio (<1.5), exhibits ash fusion temperatures (AFTs) exceeding 1550 °C, rendering it unsuitable for entrained-flow gasifiers. This study investigates the effect of calcium-sodium composite flux on ash fusibility and mineral transformation. X-ray diffraction (XRD) and FactSage thermodynamic simulations were employed to analyze mineral evolution, while molecular dynamics (MD) simulations revealed the underlying melting mechanism. Results show that adding 20% composite flux (CaO/Na2O) lowers AFTs more effectively than equivalent additions of CaO or Na2O alone, indicating a synergistic effect. At a CaO/Na2O ratio of 3:7, the flow temperatures (FT) of two Pingshuo coal ashes decreased to 1377 °C and 1279 °C, respectively. The composite flux promotes reactions between quartz and Na2O/CaO, forming low-melting-point minerals such as nepheline, albite, and gehlenite, while inhibiting mullite formation. Additionally, Na+ disrupts the silicate network, inducing Ca2+ to preferentially coordinate with [AlO4]5- tetrahedra, further breaking Si-O-Si bonds. MD simulations show that atomic diffusion, quantified by mean square displacement (MSD), is significantly enhanced below 1600 K with composite flux addition compared to single fluxes. These findings provide a mechanistic basis for optimizing flux formulations to enable efficient gasification of high-AFT coals.
Environmental Chemistry•2026•DOI: 10.7524/j.issn.0254-6108.2025102002
The ultraviolet/chlorine (UV/Cl2) advanced oxidation process generates multiple radical species, enabling synergistic disinfection. However, the systematic influence of UV intensity on process performance remains inadequately characterized. This study investigated UV intensities from 0.25 to 2.0 mW·cm−2, assessing chlorine photolysis kinetics, bacterial inactivation, and disinfection by-product (DBP) formation. Results demonstrate that inactivation efficiency is not solely governed by total UV energy but is co-regulated by reaction kinetics and mass transfer. Increasing UV intensity accelerated chlorine photolysis by 33.7%–277.8%, elevating steady-state concentrations of hydroxyl radicals and chlorine radicals by factors of 1.6–3.8 and 1.3–3.2, respectively, thereby enhancing initial inactivation rates. However, higher intensities reduced cumulative chlorine exposure (CT value) to 14.3%–55.7% of baseline, causing overall inactivation to first increase then decrease. At a fixed UV dose of 150 mJ·cm−2, an intensity of 1.0 mW·cm−2 achieved optimal 6.5-log inactivation of Escherichia coli and the lowest bacterial reactivation rate (0.07%). Common water constituents (HCO3−, Cl−, natural organic matter) inhibited disinfection, with natural organic matter exerting the strongest suppression (2.7-log reduction). Notably, 1.0 mW·cm−2 exhibited the greatest resistance to interference. Elevated intensity reduced total organic halogen formation from 33.7 μg·L−1 to 19.0 μg·L−1. Balancing disinfection efficacy and DBP risk, 1.0 mW·cm−2 is identified as the optimal UV intensity for the UV/Cl2 process in sand-filtered water treatment.
Environmental Chemistry•2026•DOI: 10.7524/j.issn.0254-6108.2025010607
This study investigated the occurrence, sources, and ecological risks of polycyclic aromatic hydrocarbons (PAHs) in soil, litter, and bark samples collected from the forest-grassland transition zone of Inner Mongolia. A total of 12 PAHs were detected in soil, with concentrations ranging from 34.9 to 465.3 ng·g⁻¹ (mean 168.8 ng·g⁻¹), predominantly 3–5 ring compounds. Litter contained 14 PAHs at concentrations between 106.4 and 2262.5 ng·g⁻¹ (mean 465.1 ng·g⁻¹), dominated by 3- and 4-ring PAHs. Both living and dead bark exhibited 14 PAHs, with concentration ranges of 119.2–240.0 ng·g⁻¹ and 123.3–241.6 ng·g⁻¹, respectively, mainly composed of 4-ring PAHs. Spearman correlation analysis revealed no significant correlations among PAH concentrations across the three media (P > 0.05). Source apportionment using diagnostic ratios and principal component analysis indicated that soil PAHs primarily originated from biomass, coal, and gasoline combustion; litter PAHs from petroleum volatilization and coal/natural gas combustion; and bark PAHs from petroleum volatilization and fossil fuel combustion, with high-molecular-weight PAHs dominating. Ecological risk assessment using the risk quotient (RQ) method showed that soil PAHs posed low overall ecological risk, though certain individual PAHs exhibited higher risk. The toxic equivalent (TEQ) method indicated that dead bark was the primary accumulation medium with high carcinogenic contribution, posing elevated ecological risk. Although litter and living bark had lower PAH concentrations, their long-term accumulation effects warrant attention. These findings provide crucial scientific evidence for understanding the environmental behavior and potential risks of PAHs in cold, high-latitude regions of northern China.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3798-x
Ulcerative colitis (UC) is a chronic inflammatory disorder of the colorectal mucosa, where conventional enema therapies suffer from poor retention and limited inflammation modulation. Here, we report a highly fluid probiotic-containing enema solution (s-BSA-Fe+EcN) integrating bovine serum albumin (BSA), Fe2+, and probiotic Escherichia coli Nissle 1917 (EcN). The solution's high fluidity enables comprehensive coverage of irregular colorectal mucosa. Upon encountering reactive oxygen species (ROS)-rich inflamed lesions, Fe2+ mediates H2O2 scavenging and hydroxyl radical generation, triggering BSA crosslinking and in situ gelation into a conformal hydrogel (h-BSA-Fe+EcN). This targeted adhesion mitigates oxidative damage to host tissues and preserves probiotic viability. In a porcine model, endoscopic imaging confirmed inflammation-targeted gelation in vivo. In a dextran sulfate sodium-induced mouse colitis model, h-BSA-Fe+EcN demonstrated excellent therapeutic efficacy, reducing disease activity index and restoring colonic architecture. This strategy addresses the dual challenges of fluid perfusion and rapid ROS-responsive gelation, offering an advanced transanal treatment for UC.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3750-6
SnSe is a promising thermoelectric material for medium-temperature applications due to its ultralow lattice thermal conductivity. However, the poor electrical conductivity of n-type polycrystalline SnSe significantly hinders its practical application. Here, we propose a dual-functional strategy employing InBr3 doping to synergistically enhance electrical transport while suppressing lattice thermal conductivity. For the first time, we demonstrate the successful construction of a Br-enriched conductive network within the SnSe matrix. The incorporation of In3+ and Br− introduces high-density charge carriers, while Br forms percolative conductive networks, resulting in a remarkable enhancement of carrier mobility to ~20.64 cm2 V−1 s−1. Simultaneously, the lattice thermal conductivity is substantially reduced to ~0.25 W m−1 K−1 through the formation of multi-scale defects, including dislocations and Br-rich nanowires, which effectively enhance phonon scattering. As a result, we achieve a peak figure of merit of ZT ~1.41 at 823 K, with an average figure of merit of ~0.42 over the temperature range of 323–823 K. This work provides a universal paradigm for decoupling electron-phonon interactions in thermoelectric materials, offering new insights for the optimization of thermoelectric performance.
Chinese Journal of Environmental Engineering•2026•DOI: 10.12030/j.cjee.202508101
The emission of sulfur dioxide (SO2) and nitrogen oxides (NOx) from fossil fuel combustion and metal smelting industries poses severe risks to environmental and human health. This study utilized depleted lead-zinc molten slag as a desulfurizer for wet flue gas desulfurization, and the resulting desulfurization slurry was further employed for NOx removal, achieving resource utilization. The desulfurization efficiency of the slag was determined, and NaClO2 was identified as the most effective oxidant when combined with the slag slurry for NOx removal. The effects of NaClO2 concentration, reaction temperature, flue gas flow rate, oxygen concentration, NOx concentration, and pH on removal efficiency were investigated. Optimal conditions were found at NaClO2 concentration of 2.5 mmol·L−1, temperature 45 °C, flue gas flow 200 mL·min−1, O2 volume fraction 10%, NOx volume fraction 0.03%, and pH 6, achieving a NOx removal efficiency of 97.24%. Metal ion experiments revealed that Fe3+, Zn2+, Mn2+, and K+ exhibited synergistic effects with NaClO2, with Fe3+ showing the most significant enhancement. Fe3+ promoted the decomposition of NaClO2 to generate stronger oxidants such as ClO2, thereby enhancing NOx oxidation and absorption. This approach offers a cost-effective and environmentally friendly alternative to traditional selective catalytic reduction, avoiding ammonia slip and secondary pollution.
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.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3870-9
High-purity (HP) alloys are critical for next-generation technologies requiring extreme reliability, yet trace impurities at parts-per-million levels can severely degrade mechanical properties, corrosion resistance, and long-term stability. This review comprehensively examines recent advances in HP alloy development, covering purification approaches, processing strategies, and performance optimization. It details how trace impurities influence microstructural evolution and material properties, and discusses techniques for achieving ultralow impurity levels, including vacuum melting, zone refining, and chemical vapor deposition. The review highlights impurity sensitivity across major alloy systems—such as aluminum, titanium, zirconium, copper, and steels—and summarizes strategies to mitigate impurity-induced degradation, including advanced alloy design, grain refinement, and surface treatments. Advanced characterization techniques for detecting and quantifying impurities are also outlined. The review emphasizes the essential role of HP alloys in advanced structural and functional materials, and identifies key challenges and future directions, including the need for standardized purity definitions and cost-effective purification methods. This synthesis provides a roadmap for researchers and engineers aiming to harness the full potential of high-purity alloys in demanding applications.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3894-9
Photocatalytic production of hydrogen peroxide (H2O2) using water and O2 offers an economical, environmentally friendly, and sustainable route for H2O2 synthesis. However, current photocatalytic systems suffer from poor charge carrier transport, narrow light absorption, and insufficient active sites, leading to unsatisfactory H2O2 production efficiency. In this study, a CoS/ZnIn2S4 (ZIS) composite was constructed by in-situ growing CoS nanoclusters on ZIS via a solvothermal method for photocatalytic H2O2 production. The integration of CoS with ZIS broadened the light absorption spectrum. The optimized CoS/ZIS-3 composite exhibited an exceptional H2O2 production rate of 2693.39 μmol g−1 h−1 under visible light in isopropanol, surpassing pristine ZIS and CoS by factors of 6.54 and 18.08, respectively. The S-scheme heterojunction and built-in electric field synergistically enhanced the separation and transportation of photogenerated charge carriers, thereby improving photocatalytic efficiency. The H2O2 synthesis mechanism involves dual-channel oxygen reduction and water oxidation reactions mediated by CoS/ZIS. The produced H2O2 effectively degraded organic pollutants and inhibited the growth of E. coli. This study presents a promising green strategy for enhancing ZIS-based photocatalysts through constructing S-scheme heterojunctions for efficient H2O2 synthesis.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3851-3
Aqueous zinc-ion batteries (AZIBs) face critical challenges from zinc anode instability, including corrosion, hydrogen evolution reaction (HER), parasitic byproduct formation, and uncontrolled dendrite growth. To address these issues, we developed a multifunctional cerium-based metal-organic framework (Ce-MOF) coating for zinc anodes. The coating features an ordered porous structure and inherent properties that mitigate HER, suppress side reactions, and inhibit dendrite formation. Symmetric cells using Ce-MOF/Zn demonstrated exceptional cycling stability for over 2060 h at 0.5 mA cm−2 with a low hysteresis polarization of 26 mV. In full cells with an I2@AC cathode, the Ce-MOF/Zn||I2@AC achieved outstanding cycling stability of 28,550 cycles at 5 A g−1, with 91% capacity retention (109.6 mAh g−1). Through integrated characterization employing in-situ optical microscopy, ex-situ XRD, SEM, and DFT calculations, we elucidated the multifunctional mechanism: the Ce-MOF coating facilitates preferential (002)-oriented Zn deposition to suppress dendrites, reduces Zn2+ desolvation energy to enhance deposition kinetics, and modulates interfacial chemistry to mitigate HER and corrosion. This work establishes Ce-MOF coatings as a simple yet powerful strategy for developing high-performance zinc anodes, providing critical insights for advancing practical AZIB technologies.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4178-y
Rational design of metal–nitrogen–carbon (M–N–C) single-atom catalysts (SACs) for selective CO2 electroreduction is still largely guided by first-shell coordination engineering, while the catalytic impact of the surrounding non-coordinated “second-shell” microenvironment remains underexplored. Here, we show that tailoring the peripheral nitrogen microenvironment can decisively switch product selectivity in Cu-based SACs, even with an identical Cu–N4 first-shell motif. Using a polymer coordination strategy, pyrrolic-N–regulated Cu–Npr–C and pyridinic-N–regulated Cu–Npy–C exhibit strikingly divergent behaviors: Cu–Npr–C selectively produces formate with 72.6% Faradaic efficiency (FE) at −0.7 V vs. RHE and sustains >67% FE over 10 h, whereas Cu–Npy–C predominantly drives H2 evolution (up to 69% FE). In situ attenuated total reflection surface enhanced infrared spectroscopy captures an earlier emergence of the key HCOO* intermediate on Cu–Npr–C, evidencing accelerated formate-pathway kinetics enabled by the pyrrolic microenvironment. Density functional theory calculations further support that pyrrolic second-shell regulation promotes the O-bound formate route while disfavoring hydrogen adsorption, whereas the pyridinic microenvironment renders H adsorption more competitive and biases the reaction toward hydrogen evolution reaction. Extending this second-shell strategy to Ni SACs confirms its generality: Ni–Npy–C achieves 96.8% CO selectivity, while Ni–Npr–C shows mixed CO/H2 production. This work establishes second-shell microenvironment regulation as a general and actionable design principle for steering selectivity in M–N–C SACs toward targeted CO2 reduction products.
Chinese Journal of Environmental Engineering•2026•DOI: 10.12030/j.cjee.202510034
Phosphonate wastewater, characterized by stable C–P bonds, poses significant environmental risks due to its resistance to degradation and potential to contribute to eutrophication. This study developed a chloride-enhanced Fe(II)/PMS/H2O2 system for the oxidative degradation of 2-phosphonobutane-1,2,4-tricarboxylic acid (PBTC) and simultaneous recovery of phosphorus as iron phosphate (FePO4). Under optimal conditions (0.1 mmol/L PBTC, 1.0 mmol/L Fe(II), 0.5 mmol/L PMS, 0.5 mmol/L H2O2, 10 mmol/L NaCl, initial pH 3.0, 60 min), total phosphorus (TP) removal reached 100%, with phosphorus nearly completely recovered as FePO4 precipitate. Increasing NaCl concentration and temperature enhanced TP removal, while pH significantly influenced removal efficiency and product speciation; acidic conditions (pH < 4.3) favored FePO4 precipitation. Coexisting Ca2+ and Mg2+ had negligible effects, whereas HCO3− and humic acid (HA) inhibited TP removal in a concentration-dependent manner. Radical quenching and electron spin resonance (ESR) analyses identified hydroxyl radicals (•OH), ferryl ion (Fe(IV)=O), sulfate radicals (SO4•−), and chlorine radicals (Cl•) as primary reactive species, with •OH playing a dominant role. Chloride introduction promoted the generation of multiple reactive species, and Cl• and its derivative Cl2•− directly attacked the C–P bond and phosphonate group, facilitating phosphorus release as PO43− and subsequent FePO4 formation. The system's feasibility was validated using actual industrial circulating cooling water. This study provides a novel approach for phosphonate wastewater treatment and phosphorus recovery.
Chinese Journal of Environmental Engineering•2026•DOI: 10.12030/j.cjee.202511020
With the increasing number of oil pipelines crossing rivers, the potential risks of oil leakage and surface spreading to river ecosystems and water environments are becoming more severe. Scenario-based simulation of oil spill diffusion is a prerequisite for effective interception point placement and leakage risk prevention. Numerous factors influence oil spill diffusion, including environmental conditions, river hydrology, and accessibility of emergency resources. This study integrates these factors and multiple dynamic processes to design eight typical scenarios for oil spill diffusion simulation, considering emergency resource locations, river hydrological regimes, and leakage modes. A case study is conducted on an oil pipeline crossing a river in northwest China. Results indicate that the diffusion distance and affected area are primarily controlled by water conditions and emergency resource accessibility. In emergency management, the efficiency of maintenance and repair resources during high-water months should be prioritized. Mechanistically, external forces such as hydraulic and wind forces have a greater influence on diffusion distance, surpassing internal forces like gravity, viscosity, and surface tension within a short time. For river crossings near emergency resources, internal force effects should be considered in oil spill diffusion simulations. When emergency resource arrival times are long, the diffusion distance based on Fay's theory is relatively small and can be neglected in engineering practice. This study provides a computational basis and methodological reference for risk assessment and emergency response to potential oil spills from pipelines crossing rivers, enhancing the scientific and effective nature of risk prevention and emergency handling.
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.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3950-x
Photocatalytic oxygen reduction reaction (ORR) for hydrogen peroxide (H2O2) production via the two-electron pathway offers an environmentally friendly oxidant and a clean fuel. However, challenges exist in optimal oxygen (O2) adsorption capacities and maintaining O–O bond during O2 activation. Herein, we present a zinc single-atom catalyst (Zn/VN-CN) incorporating nitrogen vacancies (VN), designed to modulate the electronic structure of the photocatalyst, leading to optimized O2 adsorption energy and a remarkable enhancement in H2O2 yield. Benefiting from the synergistic effect between nitrogen vacancies and Zn single atoms, the optimized Zn/VN-CN catalyst exhibits a photocatalytic H2O2 production rate of 2.399 mmol g−1 h−1 under visible-light irradiation, representing a 12-fold enhancement compared to pristine g-C3N4 (CN), along with a high H2O2 selectivity of 87.4%. Combined experimental and theoretical studies indicate that the Zn-N3 sites act as highly active reaction centers, while nitrogen vacancies increase the charge density and downshift the d-band center of the Zn sites, thereby moderating O2 adsorption strength, lowering the activation energy barrier for the formation of *H2O2, and further converting it to H2O2. This work proposes an effective strategy for tuning O2 adsorption behavior to achieve highly selective and active photocatalytic H2O2 production.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3892-2
Single-atom co-catalysts on semiconductor substrates offer a cost-efficient route to enhance photocatalytic performance with minimal precious metal loading. However, precise tuning of local coordination environments and construction of efficient single-atom co-catalysts remain challenging for overall water splitting. Here, we employ an icing-assisted photochemical reduction strategy to anchor atomically dispersed Pt species as hydrogen evolution co-catalysts on Al3+-doped SrTiO3 (Pt SA-STO). The optimized Pt SA-STO exhibits remarkable activity, with hydrogen and oxygen evolution rates of 13.62 and 6.71 mmol h−1 g−1, respectively, and a turnover frequency (TOF) of 2114.5 h−1. We pioneer the use of nuclear magnetic resonance (NMR) spectroscopy to quantitatively track the temporal evolution of Pt4+ to Pt2+ under continuous irradiation during the icing-assisted photoreduction. Advanced characterizations and theoretical calculations confirm that single-atom Pt co-catalysts facilitate directional transfer and extraction of photogenerated charge carriers, effectively suppressing surface recombination. This work provides insights into designing novel single-atom co-catalysts by deepening understanding of electronic configurations and active sites in photocatalytic overall water splitting.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3989-4
Organic-inorganic hybrid metal halides (OIMHs) based on Cu(I) ions exhibit broad application prospects in stimulus-responsive luminescent materials due to their rich structural diversity and highly adjustable electronic states. However, achieving sensitive and broad-temperature-range thermal responses remains a significant challenge. Here, we synthesize a zero-dimensional warm white-light emitting OIMH, MPC-W ((C9H20N2O)4(Cu2I4)(Cu2I6)(H2PO2)2), using 4-morpholinopiperidine (4-MP) and CuI. MPC-W features hybrid structures of [Cu2I4]2− and [Cu2I6]4−. The coexistence of three luminescent mechanisms—organic cluster luminescence (CL), self-trapped exciton (STE) emission of [Cu2I6]4−, and cluster-centered (CC) state luminescence of [Cu2I4]2−—endows MPC-W with temperature- and excitation-wavelength-dependent dynamic luminescence. From 77 to 297 K, the luminescence color continuously tunes from blue to cyan, green, yellow-green, and white. In the range of 217–463 K, MPC-W exhibits abnormal luminescence enhancement with increasing temperature. Upon chemical stimuli, MPC-W reversibly transforms into blue-emitting MPC-B ((C9H20N2O)Cu2I4) and yellow-emitting MPC-Y ((C9H18N2O)7Cu8I8). These dynamic luminescent properties position MPC-W for applications in temperature sensing, optical anti-counterfeiting, and password locks. This work provides new insights for developing wide-temperature-responsive multifunctional intelligent luminescent materials.
Journal of Fuel Chemistry and Technology•2026•DOI: 10.1016/S1872-5813(26)60651-2
Carbohydrates, derived from abundant biomass resources, hold great promise for conversion into fine platform chemicals and fuels, which is crucial for sustainable development. The processes for carbohydrate conversion are predominantly driven by catalysis, with active components such as Brønsted acids and Lewis acids. This review provides a comprehensive overview of the catalytic conversion of various carbohydrates (monosaccharides, disaccharides, and polysaccharides) into high-value-added compounds. It elaborates on the specific pathways and mechanisms involved in reactions like hydrolysis, isomerization, and dehydration for target molecules such as 5-hydroxymethylfurfural, lactic acid, and furfural. Furthermore, the subsequent derivatization of these platform compounds and their application prospects in energy-related fields, including bio-fuels and batteries, are discussed. Finally, the current challenges in research are summarized, and future directions for the development of low-cost and high-performance catalytic systems are outlined.
Chinese Journal of Environmental Engineering•2026•DOI: 10.12030/j.cjee.202511050
Municipal solid waste (MSW) management in Inner Mongolia has long relied on landfilling, facing land scarcity and leachate management challenges. This study addresses the region's dry, cold climate, high proportion of agricultural and livestock waste, fluctuating moisture content, and weak leachate treatment capacity. An engineering optimization was implemented on an 80 t·d−1 vertical rotary gasification-incineration system featuring a dual-combustion-chamber design (primary chamber for medium-temperature pyrolysis-gasification at 550–650 °C and secondary chamber for high-temperature oxidation above 900 °C), coupled with in-situ leachate recirculation. Field measurements showed improved processing capacity and continuous operation stability. Under the project's leachate yield, in-situ recirculation achieved on-site disposal without significant adverse effects on gasification-incineration conditions, providing buffering against moisture fluctuations. During the monitoring period, major gaseous pollutant emissions remained below current national standards. The results provide engineering references for the co-processing and stable operation of small-scale county-level MSW treatment facilities.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3969-9
Phosphor-in-glass (PiG) materials are promising color converters for high-power laser illumination, yet suppressing interfacial reactions between phosphor and glass matrix at elevated sintering temperatures remains a critical challenge. Here, we report a Y3Al5O12:Ce3+ (YAG:Ce) phosphor-in-silica glass (PiSG) with high SiO2 content (>85 wt%) fabricated via a Cs2CO3 flux. Incorporation of Cs2O significantly inhibits SiO2-YAG:Ce reactions, preserving internal quantum efficiency (IQE) at 97.7% of pure YAG:Ce, and achieving 88.3% IQE even after calcination at 1400°C for 2 h. In contrast, smaller alkali ions (Li+, Na+) accelerate YAG:Ce decomposition. Mechanistic studies reveal that Cs+ with large ionic radius and weak interaction with oxygen suppresses non-bridging oxygen (NBO) formation, promoting a complete silica network that limits alkali ion diffusion. Leveraging the mixed alkali effect (10% Li2O + 5% Cs2O), the PiSG exhibits enhanced hydrothermal stability, withstanding 200°C treatment for 10 h. A PiG film-sapphire device delivers 3080 lm luminous flux and 213 lm W−1 efficiency under blue laser excitation. These findings establish YAG:Ce-PiSG as a highly promising color-conversion material for high-performance laser illumination.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-4036-4
Alkaline water electrolysis is a pivotal technology for large-scale green hydrogen production, yet its efficiency is constrained by sluggish hydrogen evolution reaction (HER) kinetics at industrial current densities. Here, we propose a synergistic dual-doping strategy to lower kinetic barriers for both Volmer and Heyrovsky steps. A robust amorphous NiCoV nanosheet electrode was synthesized via scalable one-step electrodeposition. In situ spectroscopic and kinetic characterizations reveal that hydrophilic V species optimize interfacial water by disrupting the hydrogen bond network, ensuring rapid supply of free water at the inner Helmholtz plane. Co dopants modulate electronic structure to facilitate electron transfer and optimize intermediate adsorption energetics. The NiCoV electrode requires an ultralow overpotential of 253 mV at -400 mA cm−2, surpassing most Pt-based catalysts, and maintains stability for over 200 h. Industrial validation in a scaled-up electrolyzer demonstrates a cell voltage of 1.89 V at 400 mA cm−2, achieving energy savings of 0.12 kWh m−3 H2 compared to commercial benchmarks. This translates to annual electricity savings of 1.33 × 10^6 kWh for a medium-scale demonstration project, highlighting immense potential for sustainable industrial applications.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-4081-y
The evolution of precision medicine has propelled multimodal imaging-guided phototheranostics to the forefront for precise tumor diagnosis and therapy. Low-temperature photothermal therapy (PTT) offers a promising approach for the treatment of melanoma due to its non-invasiveness and minimal damage to normal tissues. However, its efficacy is limited by cancer cell thermal tolerance. To address this, a new type of multifunctional energy disruptor (CAMeO-Q NPs) is developed featuring homologous targeting and mitochondria targeting, and synergistically enhancing low-temperature PTT in melanoma by reversing heat shock protein 90 (Hsp90)-mediated thermal tolerance and blocking mitochondrial adenosine triphosphate (ATP) biosynthesis. The multifunctional energy disruptor enables precise trimodal imaging (fluorescence imaging/FLI, photoacoustic imaging/PAI, and photothermal imaging/PTI) guidance for low-temperature PTT. Comprising a mitochondria-targeting photothermal agent and an Hsp90 inhibitor, CAMeO-Q NPs induce selective mitochondrial damage under 660 nm laser irradiation and downregulate cellular HSP expression by ATP inhibition and Hsp90 inhibitor. This multifunctional energy disruptor provides a novel strategy for enhancing multimodal imaging-guided low-temperature photothermal therapy through combined homologous targeting, mitochondria-targeting, and Hsp90 inhibition.
Journal of Fuel Chemistry and Technology•2026•DOI: 10.1016/S1872-5813(26)60662-7
Perovskite-type catalysts show promise for CO2 methanation, yet their low-temperature performance and mechanisms remain unclear. Here, a LaNiO3/CeO2 catalyst was synthesized via sol-gel and impregnation. In situ reduction decomposed the perovskite into highly dispersed Ni0 particles (average 12.6 nm) on CeO2, which provided abundant oxygen vacancies (Ce3+/(Ce3++Ce4+) = 9.2%) and weak/moderate basic sites. This synergy enhanced CO2 adsorption and activation. At 200–300 °C, the catalyst achieved ~100% CH4 selectivity and CO2 conversion up to 23.6% at 300 °C. Comparative studies with LaNiO3, LaCeNiO4, Ni/CeO2, and La-Ni/CeO2 revealed that the perovskite pre-structuration and in situ reduction optimize Ni dispersion and metal-support interactions, stabilizing Ni0 and tuning surface basicity and oxygen vacancies. This work provides a design strategy for efficient low-temperature CO2 methanation catalysts.
Journal of Fuel Chemistry and Technology•2026•DOI: 10.1016/S1872-5813(26)60685-8
Steam reforming of biomass-derived alcohols (ethanol, ethylene glycol, glycerol, etc.) represents a critical pathway for sustainable hydrogen energy systems. This review systematically examines recent advances in heterogeneous catalysis, elucidating structure-performance correlations between alcohol molecular structures and catalyst requirements. Ethanol is prone to dehydration and methanation side reactions, while ethylene glycol leverages its dihydroxy structure to enhance dehydrogenation and C–C cleavage, improving H2 selectivity. In contrast, glycerol suffers from intensified reaction network complexity and carbon-induced deactivation due to its trihydroxy configuration. The unified catalyst design strategy involves precisely modulating metal electronic structures (e.g., alloying/atomic-level dispersion) and support oxygen mobility (e.g., rare-earth modification) to synergistically optimize dehydrogenation and carbon resistance. Ni-based catalysts dominate owing to low cost and high C–C bond activation capability, yet their stability requires synergistic enhancement via alloying (Fe, Co, Cu, etc.) or rare-earth modification (Ce, Pr, La, etc.). Noble metal systems (Pt, Rh, Ir, etc.) exhibit low-temperature activity advantages, but are transitioning strategically toward single-atom catalysis and high-entropy-oxide-based multicomponent architectures under cost constraints. Future efforts are suggested to integrate in situ/operando characterization with theoretical modeling to uncover dynamic structure-activity relationships, establish elementary reaction databases for data-driven rational catalyst design, and achieve cross-scale catalyst-reactor synergy, thereby providing a scientific foundation for efficient sustainable hydrogen production.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4101-5
Single-atom catalysts (SACs) represent a frontier in catalytic science, offering theoretically 100% atom utilization, tunable electronic structures, and coordination microenvironments, with broad prospects in energy conversion and high-end chemical synthesis. However, atomic-scale challenges—disordered active site distribution, constrained electronic structures, metal atom agglomeration, limited loading capacity, and insufficient coordination environment precision—severely restrict performance optimization and practical deployment. This review systematically analyzes the mechanistic interconnections among these challenges, framing them as a multi-level, coupled systemic problem rather than isolated issues. It summarizes recent regulation strategies including support engineering, coordination regulation, spatial confinement, and dynamic synthesis, emphasizing the value of multi-strategy synergy for performance breakthroughs. Future research directions include developing in-situ characterization with high spatial and temporal resolution, exploring multi-site synergistic catalytic mechanisms, and constructing standardized databases and rational design platforms. These efforts aim to enable large-scale advances in clean energy and green chemical processes.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4132-y
Manganese-iron-based mixed polyanionic cathodes are promising for sodium-ion batteries (SIBs) due to high energy density and operating voltage, but suffer from Jahn-Teller distortion of Mn3+ that degrades cycling stability. Here, a structural modulation strategy via Mg2+ doping is reported. Electrochemically inert Mg2+ forms stronger chemical bonds, adjusts lattice parameters, and suppresses Jahn-Teller distortion, enhancing structural stability. Mg2+ also widens sodium-ion diffusion channels, improving diffusion kinetics. Additionally, an in-situ three-dimensional carbon nanotube (CNT) conductive network boosts electronic conductivity. The resulting NFMPP-Mg@CNTs cathode delivers a discharge capacity of 126 mAh g−1 at 0.1 C (near theoretical 129 mAh g−1), retains 80% capacity after 3000 cycles at 0.5 C, and achieves an energy density of 401 Wh kg−1, among the highest reported for mixed phosphate systems. Ex-situ XPS and first-principles calculations confirm that Mg2+ resists geometric distortion by enhancing lattice stability and widening Na+ diffusion pathways (migration barrier reduced from 0.566 to 0.398 eV). This work provides a viable route for high-energy, long-life SIB cathodes suitable for large-scale energy storage.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-4098-8
Fluorescence image-guided photodynamic therapy (PDT) enables real-time monitoring of photosensitizer biodistribution and metabolism for optimized treatment timing. However, its application remains limited by reliance on high-end imaging systems. To address this, we designed three novel small-molecule photosensitizers (TTNb, TTAn, TTPh) based on a 2-vinylbenzoic acid scaffold, functionalized at the 5-position with nitro, amino, or hydrogen groups. Replacing the nitro group with amino or hydrogen switched aggregation behavior from aggregation-induced emission (AIE) to aggregation-caused quenching (ACQ), accompanied by a red-to-green fluorescence shift and subcellular relocation from liposomes to lysosomes. These findings establish design principles for ratiometric nitroreductase probes and enable systematic comparison between AIE and ACQ photosensitizers. Among these, TTAn exhibited superior cellular uptake (2800 times higher than Ce6 in Eca-109 cells), specific lysosomal targeting, balanced reactive oxygen species (singlet oxygen/superoxide anion) generation, and intense fluorescence. Under white light irradiation, TTAn achieved an IC50 of 21 nM, surpassing Ce6 by 50-fold. Notably, TTAn produced strong fluorescence in mice tumors under both one- and two-photon excitation, detectable using conventional imaging tools (smartphones, DSLR cameras) or even visible to the naked eye, confirming outstanding tumor specificity. Leveraging these advantages, TTAn enabled successful image-guided two-photon PDT in Eca-109 tumor-bearing mice with a single treatment, demonstrating potent therapeutic efficacy and biosafety. This work provides a strategic blueprint for developing small-molecule theranostic agents that operate without complex fluorescence imaging systems.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-4185-6
Electrochemical uranium extraction from fluorine-containing nuclear wastewater is critical for nuclear fuel recovery, yet current electrode materials suffer from limited scalability and insufficient long-term stability. Here, we report a bulk monoclinic Nb2O5−x (H-Nb2O5−x) derived from commercial bulk niobium oxide via rapid reconstruction, exhibiting exceptional activity and robustness for electrochemical uranium extraction in fluorine-rich environments. The intrinsic active pairs of low-valent Nb4+ and compact oxygen structure strongly bind with dominant uranyl fluoride species (UO2F+, UO2F2, UO2F3−, UO2F4^2−), facilitating efficient separation. In a 30 g L−1 fluoride solution, H-Nb2O5−x achieved a uranium extraction efficiency of 99.1%. Notably, in a 10-L real nuclear wastewater test, the bulk material maintained stable performance over 40 days, reducing uranium concentration from 1372.3 mg L−1 to 0.93 mg L−1. This work demonstrates a scalable, durable electrode material for industrial electrochemical uranium extraction, addressing the bottlenecks of complexation and stability in fluoride-containing waste streams.