SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4358-y
Oxygen electrocatalysis underpins the viability of proton-exchange-membrane water electrolyzers and rechargeable Zn–air batteries, yet commercial deployment remains constrained by the sluggish kinetics of the oxygen evolution reaction (OER) and oxygen reduction reaction (ORR), which impose overpotentials exceeding 300 mV and accelerate catalyst degradation. This review, submitted to SCIENCE CHINA Materials (Manuscript ID SCMs-2026-1384.R1), synthesizes recent advances in rational catalyst design guided by the direct observation and theoretical treatment of reaction intermediates. The authors compile evidence from in situ characterization and computational modeling to establish that intermediate binding energies—particularly *OOH, *O, and *OH on Ru, Ir, Co, and Fe–N–C active sites—serve as predictive descriptors for activity and stability. Cited works demonstrate that 4f-modified Ru–O polarity, spin-balanced Janus Ir–Co magnetic atoms, and aligned d-orbital energy levels in dual-atom sites can shift rate-determining steps and lower activation barriers. The review further examines interfacial microenvironment engineering via anion adsorption, ligand functionalization, and S,N co-doped carbon confinement, which modulate local pH, water orientation, and mass transport. Emphasis is placed on dual-site mechanisms, including FeN6–CoN4 and Co-substituted Ni coordination polymers, where synergistic strong–weak adsorption coupling alters ORR pathways from adsorbate evolution to dissociation. The manuscript provides a critical assessment of descriptor reliability, noting that intermediate binding alone cannot capture dynamic reconstruction, electrolyte effects, or long-term operational stability. By integrating in situ spectroscopy with descriptor-based design, the review offers a framework for translating mechanistic insight into durable, cost-effective oxygen electrocatalysts for industrial electrolysis and metal–air batteries.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4300-3
The power conversion efficiency (PCE) of organic solar cells (OSCs) has surpassed 21% with the donor polymer D18, yet its processing from non-halogenated solvents like ortho-xylene (o-XY) remains inefficient due to uncontrolled film formation kinetics. Here, we systematically synthesize D18 polymers with molecular weights ranging from 41.6 kDa to 70.9 kDa to modulate crystallization kinetics. In-situ film drying studies reveal that lower molecular weights accelerate solidification, leading to excessive aggregation, while higher molecular weights slow it, causing insufficient phase separation. A medium molecular weight (D18-M) achieves a balanced crystallization rate, promoting favorable morphology and yielding a PCE of 20.55% with L8-BO as acceptor—one of the highest reported for non-halogenated solvent-processed OSCs. Energy loss analysis indicates that although low-molecular-weight polymers exhibit higher intrinsic luminescence, the blend film's emission is governed by exciton environment, which is dictated by morphology. This work underscores the critical role of molecular weight in controlling film formation and morphology, offering a simple yet effective strategy for high-efficiency, environmentally friendly OSCs.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4108-1
Heterogeneous catalysis underpins modern energy conversion, chemical manufacturing, and environmental remediation, yet its advancement is constrained by the scarcity and cost of noble metals. A sustainable alternative lies in activating intrinsically inert sites in earth-abundant materials such as transition metal oxides and carbon-based materials. This review systematically outlines recent advances in activating inert sites within low-cost catalytic materials. We begin by dissecting the physicochemical origins of catalytic inertness, including local atomic symmetry, electronic spin states, and coordination environments. Subsequently, we elucidate mechanisms by which multi-scale strategies—structural engineering, quantum state engineering, and microenvironment engineering—break symmetry, modulate spin states, and construct unique reaction microenvironments, transforming spectator atoms into highly efficient active centers. The review highlights performance breakthroughs in key reactions such as oxygen evolution reaction (OER) and alkane dehydrogenation, where catalytic metrics now rival or surpass noble metal benchmarks. For instance, triangular-ordered Co atoms achieve ampere-level hydrogen production, and tensile strain engineering activates inert non-defect Bi sites for CO2 electroreduction. We critically assess challenges—stability, scalable synthesis, and cost-effectiveness—that hinder industrial translation. Future directions emphasize multi-strategy synergy and artificial intelligence-assisted rational design. This review provides theoretical guidance and technological pathways for subverting noble-metal-dependent paradigms and developing next-generation efficient, low-cost catalytic systems.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3706-3
Aprotic lithium-oxygen (Li-O2) batteries are severely limited by slow cathode reaction kinetics and large polarization. Herein, we design and prepare a Mott-Schottky catalyst by uniformly embedding ultrafine Ru nanoparticles on nitrogen-doped carbon (Ru@NC) nanoflakes to accelerate oxygen redox kinetics of Li-O2 batteries. The Mott-Schottky effect of Ru@NC drives spontaneous electron rearrangement in the NC matrix and induces a strong built-in electric field at heterointerfaces, which accelerates the activation and conversion of oxygen intermediates. The obtained Ru@NC possesses rich Mott-Schottky heterointerfaces and defective carbon structures, which provide extensive adsorption and nucleation sites. More importantly, Ru@NC manifests moderate affinity for the intermediate LiO2, inducing formation of unique nanosheet-like Li2O2 with low Li2O2/cathode interfacial impedance, which further enhances oxidation kinetics. These enable the Li-O2 battery with Ru@NC to deliver a remarkably reduced polarization of 0.89 V, superior rate performance, and prolonged lifespan of over 200 cycles. This work will provide valuable guidelines for engineering advanced electrocatalysts for high-performance Li-O2 batteries and beyond.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3670-7
Proton exchange membrane fuel cells (PEMFCs) are a promising sustainable energy conversion technology due to their environmental friendliness and high efficiency. However, the sluggish kinetics of the four-electron oxygen reduction reaction (ORR) necessitate cathode catalysts requiring over five times the amount of precious metal Pt compared to the anode, limiting widespread PEMFC application. The U.S. Department of Energy emphasizes developing non-precious metal-based catalysts as cost-effective alternatives. Transition metal single atoms (Mn, Co, Cu) anchored on nitrogen-doped carbon (M–N–C) have been developed as efficient ORR electrocatalysts, but most exhibit excellent performance only in alkaline media. The typical MN4 planar coordination renders the central metal vulnerable to hydrogen ion attack, challenging activity and durability in acidic media. Recent studies propose that axial-N coordination enhances stability of atomically dispersed Fe sites for acidic ORR by creating a barrier to Fe dissolution. The induced square-pyramidal crystal field diminishes spin polarization in dz2, dxz, and dyz orbitals, enhancing electronic delocalization of the Fe atom, allowing adsorbed O2 to maintain a low-energy triplet ground state, facilitating activation and reduction. Wang and coworkers constructed a novel curved-surface Fe–N–C (CS Fe/N–C) catalyst with FeN4 single atoms distributed within graphitized multilayered nanoprotrusions on 2D carbon layers. The nanoprotrusions have a mean diameter of ~10 nm and protrude ~4 nm. The curved regions exhibit a high Fe site density of ~1.6 No. nm−2, with 97.6% located deep in the fourth layer, contrasting with lower and more random distribution in planar regions and 2D Fe/N–C. This distribution aligns with iron atom diffusion from core to outer layers during pyrolysis.
Journal of Environmental Engineering Technology•2026•DOI: 10.13205/j.hjgc.202604018
To address the issues of high air volume and unorganized emissions of waste gas in semi-steel vulcanization production lines, a combined approach of experimental testing and numerical simulation was employed to study the diffusion characteristics of VOCs-containing waste gas and the air volume of the collection system. The structure of the semi-enclosed hood was optimized, and pipe diameters were adjusted to achieve negative pressure balance, enabling efficient waste gas collection. Results showed that toluene concentration distributions from numerical simulation were largely consistent with experimental measurements, with a maximum average error of -3.9%. Existing hood inlet wind speeds ranged from 0.04 to 0.2 m/s, indicating uneven distribution. Under calm wind conditions, toluene diffusion in enclosed and semi-enclosed hoods was similar, with concentrations of 248 mg/m³ and 115 mg/m³, respectively, and deposition observed in trenches. For a single vulcanizer, at a design air volume of 2700 m³/h, the enclosed hood achieved a toluene concentration of 80 mg/m³ versus 63 mg/m³ for the semi-enclosed hood, demonstrating superior capture of hot fumes. Optimizing the semi-enclosed hood with soft curtains and a height of 1200 mm, at a total design air volume of 1.0×10⁵ m³/h, yielded an average hood inlet velocity of 0.35 m/s but still uneven distribution. Adding 900 mm gradual reducers and adjusting branch pipe diameters resulted in total air volume deviations of -0.44% and 0.38% for branches I and II, respectively, with individual hood deviations below 10%. This achieved negative pressure balance, effective collection, and improved workshop hygiene.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3858-8
High-quality β-Ga2O3 membranes are pivotal for fabricating high-performance memristive devices. Here, vertical Ag/β-Ga2O3/Pt memristors built on high-crystalline-quality β-Ga2O3 membranes via lattice epitaxy engineering and a sacrificial-layer-assisted exfoliation strategy are reported. The resulting β-Ga2O3-based device demonstrates a high ON/OFF ratio exceeding 10^8, low SET/RESET voltages of 0.13 V/−0.11 V, low programming current of 10^-10 A, stable data retention beyond 4 × 10^4 s, and excellent subthreshold characteristics of ~0.47 mV/dec. Adjustable compliance current enables the coexistence of volatile and non-volatile switching modes. Additionally, the resistive switching versatility is predominantly governed by the migration of Ag ions, as supported by electrical characterizations and first-principles calculations. Furthermore, a β-Ga2O3 memristor-based circuit that functions as a reconfigurable and non-volatile exclusive OR (XOR) logic gate has been designed and simulated, enabling both image encryption/decryption and edge detection. This work not only demonstrates lattice-engineered, high-quality β-Ga2O3 membranes for fabricating advanced memristors but also extends their applicability to digital logic and reconfigurable image processing.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3880-8
Formaldehyde oxidation reaction (FOR) demonstrates significant potential in energy conversion and chemical synthesis, yet developing catalysts for efficient operation at high current densities remains a challenge. Herein, we fabricated a Cu/Cu2O heterostructure nanowire catalyst on copper foam (Cu/Cu2O@CF) via interface engineering and investigated its FOR performance. Electrochemical tests show that Cu/Cu2O@CF exhibits excellent activity: it achieves 100 mA cm−2 at an ultra-low potential of −0.05 V (vs. RHE), outperforming most reported catalysts. Notably, this catalyst overcomes the deactivation limitation of conventional Cu-based catalysts above 0.5 V, maintaining a current density of 735 mA cm−2 at 0.6 V with excellent stability during long-term electrolysis. SCN−-induced Cu0 poisoning experiments confirm that Cu/Cu2O@CF retains a Cu/Cu2O mixed structure at 0.6 V, where Cu0-Cu+ synergy dominates its high activity. Density functional theory (DFT) calculations reveal two key advantages of this structure: it weakens OH− adsorption to avoid active site occupation, and reduces C–H bond cleavage barriers while promoting H* combination into H2. Product analysis shows Faradaic efficiencies for formate and H2 production are both ~100%. When coupled with the hydrogen evolution reaction (HER), the system's hydrogen production energy consumption is as low as 0.57 kWh m−3 H2, much lower than traditional water electrolysis. This work elucidates the regulatory mechanism of interface engineering on the FOR performance of Cu-based catalysts, expands the application of Cu-based heterostructures in high-current FOR, and guides the development of industrial-grade electrocatalysts.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3823-4
The global demand for chlorine gas continues to rise, driven by its indispensable role in chemical synthesis, disinfection, and wastewater treatment. Electrocatalytic chlorine evolution from seawater presents a promising alternative to the energy-intensive chlor-alkali process, yet it is hampered by the competing oxygen evolution reaction and the sluggish kinetics of chlorine evolution on conventional catalysts. Here, we report a novel hollow porous CoNiSe2/NiSe2 heterostructure nanosheet array synthesized via ion exchange and calcination, which exhibits exceptional catalytic activity and selectivity for the chlorine evolution reaction in acidic seawater-like electrolytes. The unique hollow porous morphology provides a high specific surface area, facilitating mass transport and exposing abundant active sites. Crucially, the heterointerface between CoNiSe2 and NiSe2 promotes d-p orbital hybridization between Co/Ni 3d and Se 4p states, which lowers the reaction energy barrier for chlorine evolution. The catalyst achieves a low overpotential of 108 mV to reach a current density of 100 mA cm−2 in 4.0 M NaCl acidic medium, with excellent stability and Cl2 selectivity. This work demonstrates the potential of non-noble metal selenides as efficient and durable catalysts for chlorine production, offering a pathway toward more sustainable chlor-alkali technology.
Journal of Environmental Engineering Technology•2026•DOI: 10.13205/j.hjgc.202608027
The relocation of numerous industrial enterprises in China has left behind soil contamination, particularly by volatile organic compounds such as BTEX, whose migration and health risks are of great concern. Coastal plains, characterized by high groundwater tables and interbedded sedimentary strata, exhibit contaminant distribution and migration patterns distinct from inland regions. This study investigated a decommissioned resin plant site in the Yangtze River Delta coastal plain, systematically analyzing the spatial distribution, migration, and health risks of soil BTEX. Seven BTEX compounds were detected with detection rates ranging from 24.3% to 47.1%. Maximum concentrations of benzene, ethylbenzene, and m/p-xylene exceeded China's Class I construction land screening values. The contaminant plume was predominantly located in the southern product warehouse area, while the potential source was traced to the upstream wastewater treatment unit, indicating a 'source-sink' spatial mismatch. Vertically, contaminants exhibited a 'shallow-layer volatilization, middle-layer enrichment, and deep-layer retardation' pattern, with significant enrichment in silty clay at 3–6 m depth and sharp concentration declines in mucky clay. Membrane Interface Probe (MIP) multi-parameter detection revealed that benzene and toluene migrated as a whole, whereas chlorobenzene lagged due to strong adsorption. Benzene posed the most significant health risk, with carcinogenic risk up to 7.42×10⁻⁴ and non-carcinogenic hazard quotient up to 38.24, both exceeding acceptable levels. Inhalation of indoor air contaminated by vapor intrusion from underlying soil contributed over 87% of benzene's total risk, dominating the exposure pathway. This study elucidates the unique migration and risk formation mechanisms under high water table and interbedded strata, providing a scientific basis for precise investigation, risk assessment, and remediation of similar contaminated sites.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-4032-x
This study introduces a dual-compatibility third component as an interfacial modifier to precisely regulate the active layer morphology of bulk heterojunction organic solar cells (BHJ-OSCs). This approach successfully suppresses excessive phase separation, significantly enhancing the performance of thick-film devices. The interface-styling strategy enhances donor–acceptor interactions, optimizes vertical phase separation morphology, extends exciton diffusion length, improves exciton dissociation efficiency, facilitates efficient charge transport, and effectively suppresses trap-assisted recombination. The ternary device based on PM6:PCN3:PY-IT achieved a power conversion efficiency (PCE) of 19.41%, which was much higher than that of the PM6:PY-IT binary system (18.67%). The device maintains excellent performance at an active layer thickness of 200 nm, achieving a high PCE of 18.25%. This study demonstrates the significance of using dually compatible molecules for interface modification in all-polymer solar cells (all-PSCs), providing theoretical guidance for the fabrication of high-performance thick-film devices.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-4031-6
Organic fluorophores operating in the second near-infrared (NIR-II, 1000–1700 nm) window are highly attractive for cancer phototheranostics. Yet, the advancement of aza-BODIPY-based NIR-II dyes remains challenging due to their limited spectral tunability and diminished fluorescence quantum yields (FLQY) under physiological conditions. Herein, we propose a rational donor-acceptor (D-A) molecular engineering strategy to construct an aza-BODIPY fluorophore, TPACN, featuring intramolecular charge transfer (ICT)-enhanced NIR-II emission and balanced photothermal performance. By introducing electron-rich triphenylamine (TPA) donors and peripheral cyano (–CN) acceptors, the optimized D-A coupling significantly strengthened the ICT effect, leading to broadened NIR absorption, a markedly red-shifted fluorescence peak at 1086 nm, and an exceptional fluorescence quantum yield of 1.55% in dichloromethane (DCM). When encapsulated in F127, TPACN nanoparticles (TPACN NPs) maintained a high aqueous FLQY of 0.20%, accompanied by a notable photothermal conversion efficiency (PCE) of 39% under 808 nm irradiation. The sterically twisted TPA units effectively alleviated aggregation-caused quenching (ACQ) and fine-tuned the excited-state energy dissipation pathways, realizing a synergistic balance between radiative (fluorescence) and non-radiative (heat) relaxation. Benefiting from these optimized photophysical properties, TPACN NPs achieved high-resolution NIR-I photoacoustic and NIR-II fluorescence dual-modal imaging, enabling accurate tumor visualization and efficient photothermal ablation in vivo. This work introduces a general design paradigm that exploits ICT modulation and steric engineering to overcome the intrinsic fluorescence bottleneck of aza-BODIPY systems, offering new molecular insights for the advancement of high-performance NIR-II dyes for precision phototheranostics.
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/s40843-025-4143-9
High-Ni (Ni ≥ 0.9) layered cathodes are being developed to endure high-voltage operations above 4.5 V to boost energy density. However, they face exacerbated chemo-mechanical and electrochemical degradation under high-voltage operation, primarily due to excessive lattice strain and phase distortion during cycling. Here, we engineer a high-Ni, Co-free cathode featuring a multicomponent complex doping-modulated bulk structure, coupled with surface modification via a multifunctional atomic layer deposition-coated LiAlO2 layer. Such a unique framework achieved by surface-to-bulk integrated modification can not only greatly prevent lattice stress-induced mechanical degradation but also effectively mitigate the accumulation of by-products due to surface side-reactions. Moreover, the LiAlO2 nanoshell with exceptional ion conductivity markedly enhances the sur-/interfacial Li-ion migration kinetics, thus rendering low electron/ion-diffusion resistance. The developed cathode breaks through existing voltage constraints without compromising on performance, achieving an exceptional balance between capacity and cycle stability during operation at 4.8 V. Notably, the pouch-type cells utilizing graphite and Li metal anodes demonstrate excellent cyclability under demanding conditions, even operating at high charging cut-off voltages of 4.5 and 4.6 V, respectively.
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.