SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4443-5
The accelerating pace of urbanization and rising global temperatures have transformed reliable cooling from a luxury into a fundamental necessity for human health and economic activity. With urban populations projected to reach 66% of the global total by 2050, the energy demand for air conditioning is expected to increase by 750%. Conventional vapor-compression cooling is highly energy-intensive, accounting for approximately 17% of global electricity consumption while contributing to carbon emissions, refrigerant-related environmental concerns, and urban heat accumulation. Passive radiative cooling has emerged as a promising alternative because it dissipates heat to outer space through the atmospheric window (8–13 μm) without electricity or moving parts, offering an energy-efficient and environmentally sustainable cooling strategy. Despite its promise, effective daytime radiative cooling requires maximizing solar reflectance to minimize heat gain from solar absorption. Consequently, most radiative cooling materials appear white or silver. In recent years, researchers have proposed several strategies to overcome this aesthetic limitation. The most straightforward approach is to incorporate dyes or fluorescent pigments. Both mechanisms inevitably rely on optical absorption, resulting in parasitic heat generation that compromises cooling performance. In contrast, structural colors arise from wavelength-selective light interference or scattering by micro- or nanostructures with feature sizes comparable to the wavelength of visible light, enabling vivid coloration with minimal intrinsic absorption. Representative mechanisms include thin-film interference, diffraction gratings, and photonic crystals. Nevertheless, existing structurally colored radiative cooling materials usually require multi-step fabrication processes and specialized instruments, making large-scale production costly and time-consuming. Recently, Liu et al. reported a bilayer, colored ethyl cellulose (BCEC) coating produced in a single casting step, which significantly simplifies the fabrication process and presents a viable strategy for the practical deployment of this technology. The fabrication of BCEC involves the drying of an ethyl cellulose (EC)/N,N-dimethylformamide (DMF) solution in a water vapor environment. This induces non-solvent-induced phase separation (NIPS), driven by interactions between solute and solvent molecules. The bilayer structure forms spontaneously in a single step during the drying process: a relatively dense top surface is generated first as the DMF evaporates, after which water vapor diffuses slowly across this skin layer, initiating the NIPS process and producing the porous bottom layer. The dense top layer has a thickness of several hundred nanometers—an ideal scale for generating colors through thin-film interference. More importantly, this thickness can be conveniently and precisely tuned by adjusting the concentration of the precursor solution, making it possible to create various structural colors, including blue, yellow, red, pink, and green. In addition to thickness-dependent color tuning, the BCEC coating also exhibits angle-dependent coloration (iridescence), an intrinsic characteristic of thin-film interference, whereby the reflected peak wavelength shifts with the viewing or illumination angle. The highly porous bottom layer is responsible for the high solar reflectance, resulting from the strong scattering of light by the abundant micro- and nano-pores. The solar reflectance varies slightly with the thickness of the BCEC film; the thickest film (BCEC-5, green film) exhibits the highest solar reflectance of 0.97. Simultaneously, the intrinsic absorption derived from molecular bond vibrations, especially the C–O bond, contributes to the high the
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3711-8
Mechanoluminescent (ML) materials that emit light under mechanical stress are attracting growing attention for their potential in next-generation sensing, display, and energy-harvesting technologies. Among these, Mn/Cu-doped zinc sulfide (ZnS) has emerged as a leading candidate due to its bright emission, low activation threshold, and remarkable self-recovery over thousands of cycles. Despite these advantages, the fundamental mechanisms governing ML remain unresolved, with ongoing debate between two primary models: the piezoelectric effect and the triboelectric effect. The piezoelectric effect is generally associated with scenarios where ML materials emit light directly under external pressure and exhibit self-recoverable performance, whereas the triboelectric effect dominates when emission occurs at the interface of layered materials. Previous research on ZnS-based ML systems has focused on phase transitions from the sphalerite phase to the wurtzite phase, as the latter is widely recognized as critical for ML activity. A recent study published in Advanced Materials introduces a transformative approach that not only enhances ML performance but also provides new insights into its underlying mechanism. The authors demonstrate that controllable phase transitions can be used to tune and optimize ML properties in ZnS. For the first time, they report a gradual and reversible transition between hexagonal wurtzite (wt-ZnS) and cubic sphalerite (sp-ZnS) phases at room temperature using low uniaxial pressure in the range of 0–30 MPa, a striking departure from the extreme conditions traditionally required for such transformations. Applying modest pressure with a standard tableting machine converts wt-ZnS into sp-ZnS without the need for high-temperature or high-pressure environments, while subsequent thermal annealing reverses the process, enabling reversible structural cycling. High-resolution transmission electron microscopy reveals that this phase transition is mediated by dislocations: a 1/3⟨1120⟩ screw dislocation decomposes into two 30° Shockley partial dislocations, 1/3⟨1010⟩ and 1/3⟨0110⟩, whose glide converts portions of the wt-ZnS lattice into the sp-ZnS structure. These dislocation-driven rearrangements introduce stacking faults and localized lattice distortions that exert a profound influence on luminescence behavior. Under dynamic loading, charged dislocations facilitate carrier transport toward Mn2+ luminescent centers by altering the energy transfer pathways. Regions undergoing phase transition exhibit stronger mechanoluminescence due to an enhanced local piezoelectric field compared to areas without phase transition. The study further uncovers strikingly different responses for Mn and Cu dopants under pressure. For Mn-doped ZnS, ML intensity increases by up to 2.7 times at moderate pressures around 10 MPa, an enhancement attributed to stronger local piezoelectric fields and more efficient carrier transport. In contrast, Cu-doped ZnS exhibits pronounced ML quenching under similar conditions, underscoring the fundamentally different energy transfer pathways associated with these dopants. Pressure-thermal cycling enables tunable ML and photoluminescence (PL) properties, opening new opportunities for adaptive optical devices. The manuscript also reports on the ML behavior of Mn, Cu co-doped ZnS, which exhibits similar pressure-responsive characteristics to Cu-doped ZnS, but with the emission predominantly originating from Mn2+ centers. The authors propose a dislocation-mediated ML mechanism in which charged dislocations generate local electric fields that alter carrier migration and complexation. Under dynamic loading, the piezoelectric field in ZnS separates carriers, which become trapped at defect levels and subsequently recombine at luminescent centers, leading to light emission.
Chinese Journal of Environmental Engineering•2026•DOI: 10.12030/j.cjee.202507027
Ammonia nitrogen (NH3-N) is a common water pollutant that can induce eutrophication and threaten aquatic ecosystems and human health. Accurate monitoring is essential for water safety. This study applied a self-developed gas-permeable membrane-based conductivity sensor (GPMCS) for real-time in-situ monitoring of NH3-N in two water bodies. In the Qunying River (surface river water), GPMCS captured concentration fluctuations linked to pump operations and sewage intrusion, with mean inlet and outlet concentrations of 4.67 and 3.42 mg/L, respectively. In Swan Lake (landscape aquaculture water), concentrations reached up to 11.16 mg/L, with site means of 6.42 and 7.04 mg/L, influenced by aquaculture activities, weather, and location. GPMCS results correlated strongly with national standard methods (r1=0.8132, r2=0.7483), confirming accuracy and reliability. Compared to existing techniques, GPMCS offers high selectivity, strong anti-interference, portability, no sample pretreatment, low cost, and environmental friendliness, making it suitable for long-term in-situ monitoring. This technology provides robust support for sustainable water environment management.
Chinese Journal of Environmental Engineering•2026•DOI: 10.12030/j.cjee.202506053
Red mud, a highly alkaline industrial solid waste from alumina production, poses severe environmental risks due to its high alkalinity, low organic matter content, and poor aggregation, which critically impede its soil reconstruction and ecological utilization. This study proposes a novel approach of low-temperature micro-oxidation to drive the synergistic soil reconstruction of red mud and coal. By constructing a low-temperature micro-oxidation atmosphere, the soil properties of the reaction products were investigated, the decomposition and reconstruction of alkaline minerals and alkali release were analyzed, and the oxidation of carbon-based minerals and organic matter transformation in coal were examined. The mechanism of the synergistic reaction between red mud and coal under low-temperature micro-oxidation was elucidated. Results showed that at 250 °C under micro-oxidation, the pH of the product decreased to 8.47, organic matter content increased to 12.98%, and the proportion of aggregates >0.250 mm increased. Alkaline minerals such as cancrinite and grossular in red mud underwent decomposition and reconstruction in the low-temperature hydrothermal environment, releasing substantial free alkali. The condensed aromatic rings of carbon-based minerals in coal were oxidized by free radicals, leading to ring-opening and bond cleavage, producing small-molecule organic acids and macromolecular humic acids. The continuous oxidation of carbon-based minerals in coal generated acids, which neutralized the alkali released from red mud, driving sustained dealkalization. The inorganic particles of red mud flocculated with macromolecular humic acids, forming micro-aggregates and significantly improving soil properties. This research provides technical support for the rapid ecological utilization of red mud at industrial scale.
Environmental Chemistry•2026•DOI: 10.7524/j.issn.0254-6108.2024112806
Microplastics (MPs) are persistent emerging contaminants ubiquitously distributed in soil-groundwater environments, where their aggregation and transport critically govern pollutant fate and ecological risks. Natural organic matter (NOM), a complex assemblage of organic compounds, interacts with MPs and porous media via hydrogen bonding, π-π interactions, hydrophobic effects, and electrostatic binding, thereby modulating MP surface properties and environmental behavior. This review systematically synthesizes the mechanisms by which NOM influences MP aggregation and transport, with emphasis on the distinct roles of humic substances, proteins, and extracellular polymeric substances (EPS), and their synergistic modulation with solution chemistry (pH, ionic strength, ion type). Additionally, NOM accelerates MP aging and alters surface characteristics, consequently impacting transport capacity. Current research limitations are identified, and future directions are proposed to inform MP pollution risk assessment and management strategies. Key findings indicate that NOM generally enhances MP stability and mobility at low ionic strengths, while high ionic strengths may induce aggregation depending on NOM type and ion valence. Humic substances predominantly increase electrostatic repulsion, whereas proteins and EPS can bridge particles, promoting aggregation. Aging processes, accelerated by NOM photochemical activity, increase surface oxygen functionality and hydrophilicity, further altering transport. The review underscores the need for systematic studies under environmentally relevant conditions to predict MP fate accurately.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3545-7
Magnetically driven hydrogel robots show promise in biomedical and underwater applications due to remote controllability, flexibility, biocompatibility, and chemical stability. However, limited functional integration restricts their adaptability. Here, a universal modular assembly strategy is introduced using a self-healing κ-carrageenan/polyacrylamide hydrogel embedded with magnetic particles, enabling free assembly of magnetic actuation modules. These modules construct soft robots with complex geometries and magnetization distributions, allowing diverse deformations under magnetic fields. The strategy further integrates photocatalysis by embedding Ru-Bi2CrO6 photocatalysts into functional modules, yielding an oxygen-generating robot. This robot exhibits flexible underwater movement via magnetically controlled oscillatory actuation, minimizing water agitation while supplying stable oxygen to specific aquatic environments. The photocatalytic oxygen evolution rate reaches 389.1 μmol g−1 h−1. The hydrogel skeleton suppresses particle aggregation and sedimentation, and facilitates magnetic recovery. This scalable and adaptable approach advances multifunctional soft robot design.
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.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3850-3
Chiral nanomaterials have attracted considerable attention for antibacterial applications due to their unique chiroptical properties. Here, we report a novel spatiotemporally precise synergistic photodynamic therapy (PDT) and photothermal therapy (PTT) strategy using circularly polarized light (CPL)-activated chiral molybdenum-doped carbon dots (L-Mo-CDs and D-Mo-CDs). These chiral carbon dots were synthesized using chiral tartaric acid as a precursor. Notably, D-Mo-CDs selectively respond to left-handed CPL (LCP), while L-Mo-CDs respond to right-handed CPL (RCP). Under CPL irradiation, D-Mo-CDs exhibit enhanced reactive oxygen species (ROS) generation and a higher photothermal conversion efficiency (PCE) compared to L-Mo-CDs. In vitro antibacterial assays demonstrate that D-Mo-CDs possess excellent bactericidal efficacy against both Gram-positive and Gram-negative bacteria. In vivo wound healing studies in a mouse model reveal remarkable therapeutic efficacy, attributed to reduced inflammation, accelerated angiogenesis, and enhanced collagen deposition. This work introduces a paradigm for utilizing chiral carbon dots in precision antibacterial therapy, addressing the limitations of conventional chiral nanomaterials such as poor biocompatibility and low photothermal conversion. The findings underscore the potential of metal-doped chiral carbon dots for advanced biomedical applications, offering a spatiotemporally controllable approach to combat bacterial infections without promoting resistance.
Journal of Fuel Chemistry and Technology•2026•DOI: 10.1016/S1872-5813(25)60618-9
Aromatic hydrocarbons, essential chemical feedstocks for fuels, synthetic fibers, and pharmaceuticals, are predominantly derived from petroleum refining. The catalytic conversion of lignin, a major lignocellulosic component, offers a renewable route to these chemicals. This review systematically examines the influence of pyrolysis methods, catalysts, and reaction conditions on the catalytic pyrolysis of lignin to aromatic hydrocarbons. Key parameters include catalyst acidity and pore structure, which govern selectivity and yield. Reaction temperature, catalyst-to-lignin ratio, and residence time critically affect product distribution. The review outlines catalytic mechanisms, such as deoxygenation, cracking, and aromatization, and highlights the role of zeolite catalysts, particularly HZSM-5, in enhancing monocyclic aromatic hydrocarbon yields. Metal modification (e.g., Fe, Ni, Ga) and pretreatment strategies (e.g., torrefaction) are discussed for improving efficiency. Challenges remain in catalyst deactivation due to coking and the complexity of lignin structure. Future research directions include developing robust catalysts, optimizing reactor designs, and integrating processes for industrial viability. This review provides theoretical and technological guidance for advancing lignin-to-aromatics conversion.
Journal of Environmental Engineering Technology•2026•DOI: 10.13205/j.hjgc.202606001
Municipal sludge anaerobic resource recovery efficiency in China lags behind developed countries. Widespread chemical phosphorus removal increases iron and aluminum salt precipitates in waste activated sludge, forming chemical-biological sludge that reduces acidogenic efficiency. This study identified key factors and developed a high-precision prediction model. Integrating literature and experimental data, acidogenic performance indicators under various conditions were compiled. Five machine learning models—Backpropagation Neural Network, Adaptive Neuro-Fuzzy Inference System, Support Vector Machine, K-Nearest Neighbors, and Random Forest—were systematically compared. Random Forest achieved the best predictive performance with a test set coefficient of determination (R²) of 0.9463, significantly outperforming others with minimal overfitting risk, demonstrating strong capability for high-dimensional, nonlinear, multi-factor coupled problems. Feature importance analysis revealed pH and Volatile Suspended Solids (VSS) as primary drivers, with aluminum salts exerting greater influence than iron salts. Engineering optimization should follow the pathway: 'adjust pH, stabilize organic matter, control aluminum salts'. This study provides an intelligent predictive tool and clarifies optimization directions, advancing precision and intelligent sludge treatment.
Journal of Environmental Engineering Technology•2026•DOI: 10.13205/j.hjgc.202606022
This study presents a numerical simulation of the internal flow field in a volatile organic compounds (VOCs) catalytic combustion reactor used in an enameled wire enterprise. Using ANSYS Fluent, the effects of inlet expansion section length, inlet expansion section angle, and catalyst bed spacing on the velocity field were systematically investigated. Additionally, the influence of heating tube configuration on the temperature field was analyzed. The results indicate that an expansion section length of 250 mm is optimal, balancing spatial constraints and the avoidance of recirculation zones. A zero-degree expansion angle yields the most uniform velocity distribution, though practical considerations necessitate case-specific angle selection. A catalyst bed spacing of 0.05 m satisfies the engineering requirement of maintaining pressure drop across a single catalyst layer below 200 Pa while significantly improving gas distribution within the bed. Alternating heating tubes on both sides of the reactor enhance temperature uniformity and elevate the overall catalyst bed temperature, thereby promoting efficient VOCs catalytic combustion. These findings provide quantitative guidance for reactor design optimization, contributing to improved catalytic performance and extended catalyst lifespan.
Chinese Journal of Environmental Engineering•2026•DOI: 10.12030/j.cjee.202509055
Microbial communities are the core functional units in environmental biotechnology. Magnetic field technology, as a non-invasive physical enhancement method, has shown application potential in wastewater treatment and waste resource recovery. Traditional ecological theory posits a positive correlation between species diversity and system function/stability. However, magnetic field enhancement often coincides with improved system performance and decreased microbial diversity, indicating a decoupling. This review systematically explains this phenomenon as the result of magnetic field-driven functional specialization of microbial communities. Magnetic fields act on paramagnetic targets in energy metabolism, including iron-sulfur clusters and cytochromes, alter cell surface physicochemical properties, impose oxidative stress, and select strains with high metabolic flexibility, thereby achieving targeted enrichment of key functional groups such as ammonia-oxidizing bacteria and electroactive bacteria within Proteobacteria. Although such functionally specialized communities have reduced species richness, they exhibit higher energy metabolism efficiency, enhanced electron transfer capacity, optimized interspecies cooperation networks, and strengthened system robustness. These advantages collectively support efficient and stable macroscopic bioprocess performance. This study also discusses potential limitations regarding ecosystem resilience and scenario dependence, and envisions future directions such as quantitative modeling and synergy with magnetic materials to advance magnetic field technology from empirical application to rational design.
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.
Journal of Fuel Chemistry and Technology•2026•DOI: 10.1016/S1872-5813(26)60679-2
Olefin hydroformylation is a pivotal process for synthesizing high-value-added aldehydes, with applications extending from short-chain to long-chain olefins (C6+). Traditional homogeneous catalytic systems suffer from difficulties in separating and recovering precious rhodium (Rh), driving research toward heterogeneous catalytic systems. This review summarizes recent progress in supports for heterogeneous Rh-based catalysts, focusing on the influence of structural regulation strategies of inorganic oxide-supported, porous carbon-supported, organic porous polymer-based, zeolite-supported, and composite-supported catalysts on active site dispersion, regioselectivity, and cycle stability. Key findings include enhanced linear-to-branched (n/i) ratios and turnover frequencies (TOF) achieved through tailored support design. For instance, Rh1/CeO2 with morphology effects demonstrates molecular-level understanding of support effects, while Rh/activated carbon with surface oxygen groups improves catalytic performance in 1-hexene hydroformylation. Porous monophosphine polymers confine atomically dispersed Rh, achieving regioselective hydroformylation. Additionally, Rh-N4 single atoms and Rh clusters dual-active sites on supports yield ultra-high TOF. The review aims to provide insights for rational design of high-performance heterogeneous hydroformylation catalysts, addressing industrial challenges of catalyst recovery and stability.
Journal of Environmental Engineering Technology•2026•DOI: 10.13205/j.hjgc.202608005
The escalating volume of end-of-life carbon fiber reinforced polymer (CFRP) and the high energy consumption and emissions of virgin fiber production necessitate low-carbon recycling technologies. Superheated steam pyrolysis, an emerging method, is systematically reviewed. At 450–500 °C, the synergistic 'hydrothermal-weak oxidation' mechanism enables controlled resin cracking and simultaneous char removal. Key parameters—temperature, oxygen concentration, residence time, and CO2/steam two-step coupling—affect the mechanical, surface, and electrical properties of recycled carbon fiber (rCF). A 'low-temperature, short-duration, micro-oxygen' process retains over 90% tensile strength. Comparison of laboratory, pilot, and industrial setups highlights challenges in exhaust gas treatment, multi-component waste adaptability, and energy integration. Life cycle assessment (LCA) confirms this route reduces energy consumption by ~25% and carbon emissions by ~30% versus landfilling/incineration, offering environmental and economic advantages. Future research should focus on product databases, distributed recycling networks, and unified LCA frameworks to support CFRP closed-loop recycling.
Journal of Fuel Chemistry and Technology•2026•DOI: 10.1016/S1872-5813(26)60664-0
The selective hydrogenation of biomass-derived furfural (FAL) to high-value chemicals such as furfuryl alcohol (FOL) or tetrahydrofurfuryl alcohol (HFOL) is pivotal yet challenging due to the need for precise control over reaction pathways. In this study, a Ni2Al-LDO (layered double oxide) catalyst with highly dispersed surface NiO was synthesized via structural topological transformation of layered double hydroxides. The catalyst exhibited excellent performance in furfural hydrogenation, achieving a 91.42% yield of FOL at 160 °C and 1.4 MPa H2. Gradual reduction of Ni2Al-LDO produced Ni/NiO mixtures, enabling a tunable shift from FOL to HFOL as NiO content decreased and metallic Ni content increased. After reduction at 700 °C for 2 hours, the HFOL yield reached 93.95% under identical conditions. CO2-TPD, NH3-TPD, and FT-IR analyses revealed that variations in reduction degree influenced furfural adsorption behavior. NiO species selectively adsorb the C=O group of furfural, with isopropanol serving as the hydrogen source via the Meerwein-Ponndorf-Verley (MPV) pathway, yielding FOL. In contrast, metallic Ni0 surfaces facilitate flat adsorption, enabling simultaneous activation of both the furan ring and carbonyl group, and can activate both H2 and isopropanol, with H2 as the primary hydrogen source, leading to complete hydrogenation to HFOL. This work elucidates a clear structure-activity relationship centered on the metal oxidation state and provides a practical reduction-engineering approach for designing adaptable catalysts in biomass upgrading.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4181-6
Green hydrogen production via electrocatalytic water splitting is pivotal for sustainable energy, yet the high cost and scarcity of platinum (Pt) catalysts impede large-scale adoption. Ruthenium (Ru)-based materials emerge as promising alternatives, but their performance requires enhancement. Two-dimensional transition metal dichalcogenides (TMDs), particularly ReS2, offer intrinsic 1T' phase with good conductivity and stability, yet suffer from inert surfaces limiting water adsorption. Here, we report a heterostructure comprising Ru nanoclusters anchored on ReS2 nanosheets (Ru/ReS2) to modulate electronic structure via d-p coupling. This design enhances water dissociation kinetics and optimizes hydrogen adsorption free energy (ΔG_H*). The Ru/ReS2 catalyst exhibits superior hydrogen evolution reaction (HER) activity in acidic media, achieving an overpotential of 47 mV at 10 mA cm−2 and a Tafel slope of 38 mV dec−1, outperforming commercial Pt/C (overpotential 54 mV, Tafel slope 45 mV dec−1). Notably, it demonstrates exceptional stability, with negligible degradation after 10,000 cyclic voltammetry cycles, contrasting with Pt/C's 54 mV overpotential increase. Density functional theory calculations reveal that d-p coupling between Ru and ReS2 optimizes the electronic structure, facilitating water adsorption and dissociation. This work provides a rational strategy for designing efficient, durable, and cost-effective HER electrocatalysts for green hydrogen production.
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.