SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4304-5
Comprehensive assessment of rehabilitation efficiency is essential for designing appropriate training programs for better musculoskeletal functional recovery. Existing contact-receptor-dependent rehabilitation assessment systems mostly focus on assessing the restoration of muscle function by evaluating grip strength or joint flexion angle; however, parameters reflecting neuromuscular synergistic function are always overlooked. Herein, we develop an ionoelastomer-based soft artificial electroreceptor (SAER) that integrates tele-perception and tactile sensation to track the rehabilitation process, collecting signals related to approaching speed and grip strength sequentially. The SAER uses polyurethane ionoelastomer incorporated with quasi-solid conductive salt as the electric field receptor, and is integrated on a rehabilitation-training ball after assembly to establish an untethered detection device; this enables the remote capture of hand approaching parameter within a 9 cm range, followed by the quantification of grip strength when contacting and grasping. Furthermore, a data-driven assessment system is established by integrating machine learning, which accurately classifies rehabilitation efficiency into six levels; it supports for rehabilitation evaluation and training programs adjustment. Overall, the SAER-based rehabilitation management system establishes a paradigm that synergistically evaluating parameters corresponding to neuromuscular functional restoration and holds strong potential for home-based active rehabilitation for minimizing dependence on frequent clinical supervision.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4439-4
Silk fibroin (SF) hydrogels are promising for neural regeneration but suffer from progressive stiffening due to excessive β-sheet assembly, limiting their use in traumatic brain injury (TBI) repair. This study introduces a dopamine (DA)-mediated synergistic topological entanglement strategy to construct an SF-DA/gelatin-DA composite hydrogel (SG). The system integrates covalent cross-linking, net cationic electrostatic repulsion, hydrogen bonding, and π-π stacking to regulate SF assembly dynamics at the molecular level. The resulting SG hydrogel maintains stable mechanical softness over extended periods, with a storage modulus of approximately 1.2 kPa after 28 days, compared to a 5-fold increase in pure SF hydrogels. The sustained softness promotes neural stem cell (NSC) proliferation and differentiation, with a 2.5-fold increase in βIII-tubulin expression and a 1.8-fold increase in GFAP expression after 14 days. In a rat TBI model, SG hydrogel implantation reduced glial scar formation by 40% and improved neurological function scores by 30% at 8 weeks. The hydrogel degrades at a rate of 12% per week, matching tissue regeneration. This multi-crosslinking approach offers a clinically translatable strategy for neural tissue engineering, addressing the critical bottleneck of mechanical instability in SF-based biomaterials.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4505-9
Transition metal hydroxides are promising oxygen evolution reaction (OER) catalysts for alkaline water electrolysis. This study reports Ce-doped Co(OH)2 electrocatalysts synthesized via one-step electrodeposition, where the Ce3+/Ce4+ ratio is precisely controlled by deposition temperature. The optimized Ce-Co(OH)2 catalyst, obtained at 40°C, exhibits an overpotential of 236 mV at 10 mA cm-2 and maintains stability for 200 h. In an anion-exchange membrane water electrolyzer (AEMWE), the Ce-Co(OH)2 anode achieves a cell voltage of 2.04 V at 1 A cm-2 and operates for over 500 h at 500 mA cm-2. Mechanistic analysis reveals that Ce3+/Ce4+ dynamic electron buffering regulates surface reconstruction: during OER, electron transfer direction reverses (Ce → O → Co), with Ce donating electrons to Co sites to prevent over-oxidation and structural collapse. This work establishes a versatile strategy for balancing surface reconstruction and structural stability in Co-based OER catalysts, providing a foundation for designing high-performance, durable alkaline water oxidation electrocatalysts.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4467-x
Conventional eye-movement interaction systems depend on video capture, infrared tracking, and image recognition, which impose inherent constraints on accuracy, response latency, and stability. This study introduces an eyelash-guided signal interaction system based on a triboelectric nanogenerator (PF-TENG) using PDMS-FDTS thin films. The system employs eyelash movements as interactive inputs, eliminating the need for complex optical acquisition devices. A CNN-LSTM hybrid neural network classifies distinct eyelash movement patterns with a classification accuracy exceeding 98.5%. The PF-TENG device exhibits ultra-flexibility and transparency, enabling seamless integration onto eyeglasses without obstructing the user's field of view. Experimental validation demonstrates real-time monitoring of ocular states for driving fatigue detection, accurately identifying fatigue signs and enhancing application potential in intelligent driving. The system offers a natural, comfortable input modality and significant advantages for human-machine interaction, with broad prospects in eye-movement control and intelligent transportation.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4343-7
Piezoelectric materials interconvert mechanical and electrical energy, but piezoceramics are brittle while PVDF-based ferroelectric polymers exhibit low piezoelectric coefficients (d33 ≈ -30 pC N-1). Chemical modification via morphotropic phase boundary (MPB) engineering has raised d33 in P(VDF-TrFE) to -63.5 pC N-1, and to -69 pC N-1 with stretching, but intrinsic piezoelectricity in relaxor terpolymers remains limited. Here, relaxor ferroelectric P(VDF-TrFE-CFE) with varying C=C double bond (DB) content is synthesized via dehydrochlorination. Structural and electrical characterization reveals that increasing DB content stabilizes long-range ferroelectric order while suppressing short-range relaxor characteristics, forming a trans/helix phase boundary. At a critical DB content of 2.0 mol%, a markedly enhanced intrinsic d33 of -129.0 pC N-1 is achieved, outperforming previous MPB approaches. This finding addresses the fundamental bottleneck of low piezoelectric response in flexible ferroelectric polymers and provides a viable route for high-performance wearable electromechanical devices.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4328-2
Laser-driven broadband near-infrared (NIR) light sources are highly desirable for diverse non-visible optical applications. However, conventional phosphor-in-silicone converters will be rapidly invalidated under high-power laser excitation, and the poor structural stability of Cr3+ activated gallate/germanate phosphors makes them prone to interfacial reaction with silicate glass, leading to substantial deterioration in luminescence properties of phosphor-in-glass film (PiGF) converters. Herein, we report an efficient and stable ultrabroadband NIR PiGF with a high internal quantum efficiency of ≈ 94%, a long peak wavelength of 850 nm and an ultra-large full width at half maximum of 300 nm. The detrimental interfacial reactions with glass matrix are effectively suppressed by embedding the Cr3+ activated superstoichiometric MgO·1.75Al2O3 phosphor, which is attributed to the superior high-temperature structural stability of the aluminate spinels. Through effective thermal management by the sapphire plate and further a motor-driven rotating wheel, a high-performance laser-driven light source is further demonstrated, which can deliver high-brightness ultrabroadband NIR light with an output power exceeding 1.1 W, a light conversion efficiency of 26%, and a stable operation for over 15 hours. Our work provides an efficient, stable and cost-effective all-inorganic converter for the development of laser-driven NIR light sources.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4441-7
Early detection of kidney injury remains difficult because routine clinical indicators often lag behind tissue damage. Here we report uNP-CH1055, an ultrasmall renal-clearable NIR-II fluorescent nanoprobe for non-invasive imaging of kidney injury in vivo. uNP-CH1055 formed stable nanoparticles with a hydrodynamic diameter of 3.3 nm, showed good photostability, enabled low-background imaging under a 1200 nm long-pass filter, and underwent rapid renal clearance after intravenous administration. It also exhibited favorable biocompatibility in both cellular and animal studies. In three mechanistically distinct models of renal injury, cisplatin-induced acute kidney injury, ischemia–reperfusion injury and unilateral ureteral obstruction, renal fluorescence increased with injury severity and closely paralleled biochemical and histological indicators, including blood urea nitrogen, serum creatinine, KIM-1 and TUNEL-based readouts. These results identify uNP-CH1055 as a renal-clearable NIR-II probe for early and quantitative assessment of kidney injury across different pathological settings.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4457-y
The relentless scaling of wireless communication toward millimeter-wave (mmWave) and sixth-generation (6G) systems has exposed fundamental limitations in conventional radio-frequency (RF) switches based on field-effect transistors, p-i-n diodes, and microelectromechanical systems, which suffer from trade-offs among insertion loss, isolation, footprint, power consumption, actuation voltage, and integration complexity. Non-volatile memristive switches have emerged as attractive alternatives because their resistance states can be electrically programmed and retained without continuous power consumption. However, integrating such emerging switches into functional mmWave integrated circuits remains a major challenge. Pazos et al. reported a major step by co-integrating two-dimensional hexagonal boron nitride (hBN) memristive RF switches with a commercial gallium nitride (GaN) high-electron-mobility transistor (HEMT) monolithic microwave integrated circuit (MMIC) platform. Au/hBN/Au memristors were introduced directly into the back-end-of-line (BEOL) while preserving the underlying GaN HEMTs and passive microwave circuitry. The active switching area is approximately 2 μm × 2 μm. The devices exhibited a pristine capacitance of approximately 24.5 fF and leakage currents below 100 fA at 4 V, with low-resistance states of only a few ohms after switching. Cross-sectional transmission electron microscopy revealed a well-defined ~8-nm layered hBN structure before electrical stressing, and a filament-like pathway accompanied by Au penetration after switching to the low-resistance state. The work demonstrates competitive wideband switching performance, high-temperature non-volatility, transistor-assisted programming, continuous RF attenuation, selective signal routing, and frequency-reconfigurable resonators, establishing a new integration paradigm for programmable mmWave electronics.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4405-9
Conventional metal-halide X-ray scintillators, including Bi4Ge3O12 (BGO), Cs(Na)I:Tl, and Lu1.8Y0.2SiO5:Ce (LYSO), suffer from hygroscopic decomposition, high-temperature fabrication, and mechanical rigidity, which restrict their deployment in harsh-environment radiography. This study reports a nontoxic zero-dimensional organic–inorganic hybrid copper(I) halide, Cu2I2(C26H36NP)2 (Compound G), synthesized via a room-temperature solution route. The bulky phosphine ligands confer exceptional superhydrophobicity, with the material retaining 91.95% of its initial luminescence after 30 days of water immersion. A flexible scintillator screen fabricated from styrene-ethylene-butene-styrene (SEBS) exhibits a light yield of ~32,500 photons MeV-1, a spatial resolution of 19.14 lp mm-1, and a detection limit of 0.8 μGyair s-1. The screen enables stable X-ray imaging under flexible, high-temperature, and underwater conditions, eliminating vignetting and distortion in nonplanar objects. These metrics demonstrate that the superhydrophobic copper(I) halide scintillator addresses the water-stability bottleneck of commercial scintillators while delivering competitive light output and resolution, offering a viable pathway for medical diagnosis, nondestructive inspection, security checking, and space exploration.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4448-y
Zero-dimensional (0D) hybrid metal halides are promising for optoelectronic displays, bioimaging, and anti-counterfeiting due to strong exciton localization and self-trapped exciton (STE) emission. However, low-toxicity, biocompatible zinc halides with blue emission remain scarce, hindered by structural isolation of [ZnBr4]2− tetrahedra, electron-phonon coupling, lattice distortion, and nonradiative relaxation. Here, we synthesize MPAZnBr4 (MPA = N-(3-aminopropyl) morpholine), a 0D zinc bromide halide. Single-crystal X-ray diffraction reveals a monoclinic P21/c space group with a = 6.65190 Å, b = 16.11210 Å, c = 13.79640 Å, β = 94.5700°, Z = 4, and a calculated density of 2.394 g/cm3. The isolated [ZnBr4]2− tetrahedra are hydrogen-bonded to MPA cations, with the shortest Br···Br contact of 4.76 Å indicating weak inter-cluster electronic coupling. Upon photoexcitation, MPAZnBr4 exhibits bright blue emission centered at 450 nm with a full width at half maximum of 135 nm. Wavelength-dependent emission mapping confirms a single radiative pathway, while temperature-dependent photoluminescence identifies triplet STE emission with a thermal quenching activation energy of 55 meV. The extensive hydrogen-bonding network imparts remarkable structural stability, showing negligible photoluminescence decay under prolonged excitation or storage. As a proof-of-concept, we demonstrate switchable and rewritable information encryption and decryption, enabling complex luminescent patterns. These findings provide a strategy for constructing highly stable, low-toxicity blue-emissive Zn-based 0D metal halides for advanced photonic and information-security applications.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4473-9
Selective ion separation is critical for resource recovery, water treatment, lithium extraction from salt lakes, and nuclear waste management, yet the differences in size, solvation structure, and coordination behavior among ions are often minimal, and separation is further complicated by valence, interfacial charge, and competing ions. Nanoporous materials with tunable sub-nanometer channels and chemically active interfaces can regulate ion entry, solvation reorganization, interfacial partitioning, intrapore migration, and release. This review examines three mechanistic categories—size and solvation sieving, chemical recognition, and dynamic gating—from the perspective of confined transport and ion–pore interactions, and compares their roles and coupling in systems of monovalent–monovalent, divalent–divalent, heterovalent, and chemically similar multivalent ions. We further distinguish selective adsorption, membrane enrichment, and transmembrane transport, and discuss how selectivity definitions, ion flux, feed composition, driving force, and operating time affect performance evaluation. Current research faces three major challenges: lack of comparability of performance data across different test conditions, insufficient direct evidence of ion solvation, site occupancy, and migration under operating conditions, and the complexity of feed streams. By adopting a sequential ion transport process as a unified conceptual framework, this review systematically compares separation mechanisms across diverse nanoporous materials, including MOFs, COFs, zeolites, 2D materials, microporous polymer membranes, ion-exchange membranes, biomimetic nanochannels, organic–inorganic composites, functionalized porous carbons, and biochars. This transport-process-oriented framework provides a general and mechanistic perspective for understanding and comparing selective ion separation across diverse nanoporous platforms.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4425-4
Flexible and weavable alternating-current electroluminescent (ACEL) fiber devices are pivotal for wearable displays and human-computer interfaces, yet their intrinsic lack of color tunability restricts high-density information interaction. This study presents a dynamically color-tunable electroluminescent fiber device with a coaxial winding structure that integrates multiple fiber electrodes emitting the three primary colors. Through simple voltage driving, the device achieves a color gamut covering 131.07% of the sRGB standard, enabling arbitrary full-color tunability, including standard white light with CIE coordinates of (0.31, 0.33). The emission peak is continuously tunable over a 161.7 nm range, a 4-fold enhancement compared to previously reported ACEL fibers. The coaxial winding architecture is compatible with large-scale fabrication, yielding hundred-meter-scale fiber devices with a luminance variation of only 2.76%. The electroluminescent performance remains stable under stringent industrial standards: 10,000 friction cycles, 20 accelerated washing cycles, and 10-day storage at 105 °C and −20 °C. Integration into a smart textile watchband demonstrates real-time heart rate visualization via progress color changes and gesture-controlled color switching, validating its potential as an effective human-computer interface.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4417-x
Balancing mechanical strength, corrosion resistance, and soft magnetic performance in structural-functional integrated materials remains a persistent metallurgical challenge. This study reports a face-centered cubic (FCC) Fe40Co35Ni15Al3Ta2Cr5 (at.%) high-entropy alloy (HEA) that achieves an unprecedented combination of these properties. The alloy exhibits a tensile strength of ~1200 MPa, total elongation of ~25%, saturation magnetization of 101.54 Am2·kg-1, and coercivity of 267.34 A·m-1. These values surpass most reported magnetic HEAs and conventional soft magnetic alloys. In a simulated 3.50 wt.% NaCl seawater environment, the alloy demonstrates a corrosion current density of 3.99 × 10-7 A·cm-2, comparable to 316L stainless steel. The synergy arises from nanoprecipitate engineering within the FCC matrix, which impedes dislocation motion while maintaining magnetic domain wall mobility and promoting a protective passive film. This work provides a design pathway for soft magnetic structural-functional materials suitable for corrosive marine environments, where simultaneous load-bearing and magnetic actuation are required.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4480-1
Ternary organic solar cells (OSCs) incorporating a structurally compatible guest acceptor (C7-Cl) into the PM6:BTP-eC9 host system are demonstrated. The low Flory-Huggins interaction parameter between host and guest acceptors facilitates intimate mixing, optimizing molecular packing and energy-level alignment. High-sensitivity sEQE and EQEEL analyses reveal a reduced non-radiative energy loss (KE3) of 0.216 eV in the ternary device. Consequently, the optimized ternary OSC achieves a champion power conversion efficiency (PCE) of 20.02% and an improved T80 operational lifetime of 1065 h. This work establishes a feasible strategy via structurally compatible guest doping to simultaneously optimize vertical phase separation and suppress non-radiative loss, providing a facile and effective route toward high-performance and stable OSCs.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4313-7
Liquid-to-vapor mass transfer is central to energy and environmental processes. Conventional distillation relies on vapor-liquid equilibrium and device-level optimization, with materials playing passive structural roles. Non-boiling processes such as membrane distillation and interfacial solar evaporation localize phase change at confined interfaces, making mass transfer a materials-mediated transport phenomenon where interfacial structure and chemistry dictate evaporation kinetics, vapor escape, and solute rejection. Janus interface materials, featuring spatially separated hydrophilic and hydrophobic domains, introduce architectural asymmetry to regulate liquid-to-vapor mass transfer. This review summarizes recent advances, highlighting mechanisms including the cooperative pump-valve effect, nanoconfinement-enhanced transport, and mitigation of fouling and scaling. Representative applications in membrane distillation, solar-driven evaporation, and personal thermal-moisture management are systematically discussed. Key challenges and future opportunities are outlined, particularly in advancing fundamental understanding, scalable fabrication, and practical implementation.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4324-4
Magnesium-oxygen (Mg-O2) batteries offer high theoretical energy density and low-cost earth-abundant magnesium, yet practical deployment has been impeded by poor cycling stability and low energy efficiency, primarily due to the sluggish decomposition of conventional MgOx discharge products. Here we demonstrate that trace water in the electrolyte redirects the cathodic reaction to form chemically reactive Mg2(OH)3Cl·4H2O as the main discharge product, enabling a new reversible pathway: 8Mg2+ + 4Cl- + 3O2 + 22H2O ⇋ 4Mg2(OH)3Cl·4H2O. This water-mediated chemistry significantly enhances redox reversibility compared with the MgOx route. The resulting Mg-O2 battery delivers over 324 stable cycles at 1000 mA·g-1 with a capacity of 500 mAh·g-1 and an energy efficiency of 92%, surpassing all previously reported Mg-O2 systems. The electrolyte comprises 0.25 M magnesium bis(trifluoromethanesulfonyl)imide (Mg(TFSI)2) and 0.5 M magnesium chloride (MgCl2) in ethylene glycol dimethyl ether (DME) with a trace amount of water. These findings establish a general strategy for reversible Mg-O2 electrochemistry and provide a new design paradigm for practical magnesium-based energy storage.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4426-y
Biomedical Mg alloys are candidate biodegradable metals for orthopedic and cardiovascular implants, yet their in vivo service life is governed by coupled mechanical-chemical attack that accelerates loss of mechanical integrity. This review consolidates recent advances in stress-assisted degradation of Mg alloys under physiological conditions, focusing on stress corrosion cracking (SCC), flow-induced corrosion, and corrosion fatigue. Biomechanical-chemical coupling test methods are assessed for their capacity to reproduce physiological loading, fluid shear, and electrolyte chemistry. Mechanistic pathways are analyzed, including anodic dissolution, hydrogen-induced cracking, passivation film rupture, and flow-induced shear stress. Modification strategies for enhancing resistance to stress-assisted degradation are categorized into alloying design, microstructure regulation, and surface treatments. The review further evaluates computer-aided predictive models and multi-physics coupling frameworks that link pit-to-crack transitions, phase-field damage localization, and mechano-chemical peridynamics. Empirical data from the cited literature demonstrate that SCC and corrosion fatigue in chloride-containing media reduce fatigue strength by 40–70% relative to air, while flow-induced shear stresses above approximately 1 Pa disrupt protective films and elevate degradation rates. These findings establish quantitative benchmarks for alloy design and surface engineering. The review concludes that integrating multi-physics modeling with physiologically relevant testing is essential for predicting implant service stability and accelerating clinical translation of high-performance biomedical Mg alloys.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4275-3
Electrochemical in-situ production of active chlorine (AC) via chlorine evolution reaction (CER) can alleviate hull corrosion and residual chlorine overage, which is a highly reliable disinfectant for sewage and ballast water. Nonetheless, the primarily competitive oxygen evolution reaction and gradual anode passivation hinder its practical application. Herein, we employed the in-situ hydrothermal strategy to synthesize Ru/TiO2-x to realize high activity and selectivity of CER. The robust interaction of Ru sites and TiO2-x achieved via a one-step hydrothermal synthesis strategy, the structural and valence state characterizations confirm that Ti3+ stabilizes Ru solely in the metallic state (Ru0) via structural confinement effects, effectively inhibiting catalyst oxidation. As a result, the Ru/TiO2-x requires only an overpotential of 33 mV to reach 10 mA cm−2, and possess strong catalytic durability, sustaining continuous operation for 100 h with negligible current decay. Further integration with a triboelectric nanogenerators successfully realizes the generation of AC, which demonstrates a >99.9% inactivation efficiency against Escherichia coli in simulated seawater environments, while also effectively degrading ammonia nitrogen and urea contaminants in domestic wastewater.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4303-7
Sodium-ion batteries (SIBs) are promising for grid-scale storage and low-speed electric vehicles, yet their electrochemical behavior is governed by intricate mechanical-electrochemical coupling effects, rendering failure mechanisms not fully understood. Here, we develop an in-situ pressure-electrochemical monitoring system and reveal the failure mechanism of commercial Ah-level NaNi1/3Fe1/3Mn1/3O2//hard carbon (NNFMO//HC) sodium-ion pouch cells. Under an initial external pressure of 500 kPa, the full cell retains 90.07% of its capacity after 500 cycles at 0.5 C. Operating at the optimal pressure of 500 kPa effectively avoids heterogeneous sodium deposition in HC anodes, suppresses gas evolution from electrolyte decomposition, and prevents irreversible phase transitions in NNFMO cathodes during long-term cycling, thereby mitigating capacity degradation. Deviation from this optimal pressure leads to spatially non-uniform sodium deposition, accelerated electrolyte decomposition, and irreversible cathode phase transitions, collectively accelerating capacity fade. This work establishes a quantitative relationship between external pressure and pouch cell degradation, advancing SIBs development and application.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4246-5
Developing organic solar cells (OSCs) processable from green solvents without additives or post-treatments is essential for sustainable manufacturing, yet high power conversion efficiency (PCE) remains difficult due to limited morphology control. Herein, we develop a new electron-deficient building block, dithiazolo[4',5':3,4;5'',4'':5,6]benzo[1,2-d][1,2,3]triazole (DTzBT), which fuses benzo[d][1,2,3]triazole (BTA) with thiazole to leverage S/N-mediated non-covalent interactions, enhance planarity and lower the HOMO. To isolate side-chain effects, two DTzBT-based donors, namely PTzMe-F (N-methyl) and PTzEH-F (N-2-ethylhexyl), have been designed and synthesized. PTzMe-F exhibits poor solubility and miscibility with L8-BO, yielding 2.64% PCE (chloroform). PTzEH-F exhibits excellent processability and favorable morphology, delivering 17.61% PCE (chloroform) and 19.17% as-cast from toluene without any additive or post-treatments. In addition, the ternary LbL device based on PTzEH-F/L8-BO:PC71BM achieved an impressive efficiency of 20.27%. Comprehensive characterization indicates that 2-ethylhexyl side chains afford optimal solubility while preserving strong intermolecular interactions and favorable phase separation. DTzBT mitigates BTA’s HOMO-raising tendency via electron-withdrawing thiazole fusion, reconciling aggregation tunability with energy-level control. These results show that precise backbone and side-chain co-design enables green-solvent, additive-free processing for high-performance OSCs, advancing sustainable photovoltaic manufacturing.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4204-4
Heterodimensional superlattices, integrating materials of different dimensionalities (e.g., 0D, 1D, 2D) within a periodic structure, have attracted significant attention due to their unique electronic structures and emergent properties arising from inter-dimensional coupling. This review comprehensively summarizes the state-of-the-art preparation strategies, distinctive physical properties, and diverse applications of these emerging systems. Beyond conventional epitaxial growth and chemical intercalation methods, recent advances include van der Waals assembly and phase engineering, enabling precise control over layer stacking and interfacial interactions. Key properties discussed include tunable electronic band structures, enhanced spin-orbit coupling, and emergent phenomena such as the in-plane Hall effect, which are promising for spintronic devices. The review also highlights applications in energy storage and conversion, where heterodimensional superlattices exhibit improved ion transport and catalytic activity. Challenges remain in scalable fabrication and structural stability, but the field holds potential for next-generation electronics and energy technologies.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4250-0
Shape memory polymer (SMP)-based transfer printing offers a promising route for heterogeneous integration of flexible electronics, yet non-contact release reliability remains a critical bottleneck. This study systematically investigates the influence of pickup heating modes—localized versus global—on the release yield and energy-delivery mechanisms through combined experiments and finite element simulations. The localized heating mode concentrates strain energy at the interface, enabling controlled chip ejection with high yield, whereas global heating dissipates energy, leading to release failure. Quantitative analysis reveals that localized heating achieves a release yield of 100% under optimized conditions, compared to near-zero for global heating. The ejection velocity under localized heating is higher, which may induce chip bouncing on the receiver substrate, affecting transfer accuracy; however, this can be mitigated by adjusting release gap and laser parameters. The findings establish a theoretical framework for energy pathway design, providing guidelines for achieving high-yield, accurate non-contact release in laser-induced transfer printing. This work advances the practical application of SMP-based transfer printing for micro-LED displays and flexible electronics, addressing a key manufacturing bottleneck.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4201-0
Open fracture fixation faces dual critical challenges: bacterial infection and impaired bone healing. This study presents a rationally designed biomacromolecular network coating (Ti-GOED) on titanium alloy bone plates to simultaneously address these issues. The coating integrates antimicrobial and osteogenic components, achieving an optimal balance between antibacterial efficacy and biocompatibility. In vitro assays demonstrated that Ti-GOED eliminates over 99% of common pathogenic bacteria by inhibiting peptidoglycan synthesis, disrupting bacterial cell wall formation, compromising membrane integrity, and leading to intracellular DNA leakage and bacterial death. Concurrently, Ti-GOED enhances the proliferation and osteogenic differentiation of bone marrow mesenchymal stem cells (BMSCs) via activation of the PI3K-Akt and HIF-1 signaling pathways. In vivo animal experiments confirmed strong antibacterial and osteogenic properties. This work provides a strategy for developing antibacterial coatings on medical devices, with significant potential for preventing and treating infections post-fracture fixation.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4205-8
The global energy crisis and environmental pollution necessitate efficient recovery and utilization of thermal energy resources such as industrial waste heat. Thermoelectric materials, enabling direct conversion between thermal and electrical energy, offer broad application prospects in waste heat power generation and chip cooling. The energy conversion efficiency is determined by the dimensionless figure of merit, ZT = (S^2σ/κ)T, where S is the Seebeck coefficient, σ is the electrical conductivity, κ is the thermal conductivity, and T is the absolute temperature. Ideal thermoelectric materials require both a high power factor (PF = S^2σ) and low thermal conductivity. However, the strong coupling between electrical and thermal transport parameters makes synergistic optimization challenging. Over the past two decades, strategies such as band engineering, nanostructuring, liquid-like ions, interstitial atoms, phonon softening, and defect engineering have been explored. Among these, entropy engineering has emerged as a novel strategy that achieves synergistic optimization by introducing multiple components to increase configurational entropy. High entropy materials, originating from alloys, are defined as multi-principal element systems with five or more elements in near-equiatomic ratios forming single-phase solid solutions. The molar configurational entropy ΔS_conf = R∑x_i ln x_i, with materials classified as high entropy (ΔS_conf > 1.5R), medium entropy (1R < ΔS_conf < 1.5R), or low entropy (ΔS_conf < 1R). Four core effects are summarized: high entropy effect, lattice distortion effect, sluggish diffusion effect, and cocktail effect. Research has expanded from alloys to oxides, chalcogenides, and half-Heusler compounds. This review systematically summarizes the mechanisms by which lattice distortion in high entropy materials affects electrical and thermal transport, and discusses optimization strategies for thermoelectric performance.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4220-x
High-temperature electronics demand non-volatile memories (NVMs) capable of stable operation above 500 °C for applications in space exploration, nuclear energy, and autonomous driving. Conventional silicon-based devices fail above ~250 °C, and silicon carbide (SiC) cannot process data above 300 °C. Memristors offer a promising solution due to their simple structure, low power consumption, and scalability. A recent breakthrough by Yang et al. (Science) demonstrated a graphene (Gra)/HfOx/W memristor achieving data retention at 700 °C, with retention time of 50 h, endurance of 10^9 cycles, ON/OFF ratio exceeding three orders of magnitude, and operation voltage ~1.5 V. The key innovation is replacing the Pt bottom electrode with in-situ grown graphene, which suppresses high-temperature diffusion of the W top electrode through the HfOx layer. In contrast, Pt/HfOx/W devices fail after annealing at 800 °C for 10^4 s due to W migration, forming conductive filaments that lock the device in the ON state. High-resolution TEM and EDS reveal tungsten oxide (WOx) formation at the W/HfOx interface in Pt-based devices, while Gra-based devices show no such degradation. STEM-EELS confirms W migration across the HfOx layer in Pt devices, but graphene acts as a diffusion barrier, preserving stable switching behavior. This interfacial engineering approach provides a viable pathway for high-temperature NVM, addressing the critical bottleneck of electrode diffusion.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4151-2
The rapid increase in atmospheric CO2 due to fossil-fuel consumption has heightened the demand for efficient carbon capture and utilization technologies. Ionic liquids (ILs) have emerged as versatile media and catalysts for CO2 conversion, offering advantages such as negligible volatility, wide electrochemical windows, and strong CO2 affinity. However, the vast design space of ILs and limited experimental data make traditional trial-and-error screening inefficient. This review summarizes recent advancements in applying machine learning (ML) to the design and screening of ILs for CO2 conversion. The roles of ILs in catalytic processes and the limitations of traditional screening methods are discussed. ML-based workflows are explored, with emphasis on addressing challenges posed by small and noisy datasets. Finally, future opportunities in mechanism-informed descriptors, multi-objective optimization, and the integration of domain expertise with data-driven approaches are highlighted to accelerate the discovery of next-generation ILs for sustainable CO2 conversion.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4194-2
Lanthanide-doped upconversion nanoparticles (UCNPs) exhibit distinctive optical characteristics, including excellent photostability, large anti-Stokes shifts, narrow emission bands, and tunable luminescence lifetimes. Despite their advantages, UCNPs suffer from inherently weak light absorption because of the 4f-4f transitions of lanthanide ions. Near-infrared dye-sensitization has emerged as an effective strategy to enhance their absorption, yet the photoconversion performance remains constrained by photobleaching and interfacial energy losses. In this review, we systematically analyze the surface coordination environments and energy transfer pathways that govern dye-sensitized UCNPs. We evaluate critical molecular parameters, such as dye frameworks, surface binding affinity, and triplet-state energy alignment, in conjunction with nanoparticle structural features, including dopant concentration, core-shell architectures, and surface electronic configurations. By providing a fundamental assessment of these photophysical and photochemical processes, we propose targeted optimization strategies to enhance the performance and stability of these hybrid materials for advanced applications.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4207-0
Self-assembled monolayers (SAMs) are critical for optimizing electrode interfaces in organic solar cells (OSCs), as their molecular conformation and ordering govern interfacial quality. Conventional carbazole-based SAMs (e.g., 2PACz) rely on flexible alkyl linkers whose conformational freedom often results in disordered packing, incomplete coverage, and limited environmental robustness, especially under air processing. Here, we design and systematically study a series of well-defined carbazole SAM homologues (Cz-PPA, Cz-HPA, PCz-HPA, and PCz-PPA) to elucidate the role of synergistic conformational locking achieved through linker rigidification and terminal conjugation extension. PCz-HPA, which integrates a rigid cyclohexane linker with a strongly conjugated 3,6-diphenylcarbazole end group, enables effective conformational locking. It forms a highly ordered, densely packed monolayer on ITO, delivering high surface coverage, a strengthened interfacial dipole, and improved energy-level alignment. The rigid framework and ordered interface enhance air-process stability and interfacial contact, thereby suppressing recombination and facilitating exciton dissociation and charge collection. Using PCz-HPA as SAM for the devices based on PM6:L8-BO reaches 19.75% efficiency and it demonstrates consistent gains across multiple systems. These results identify conformational locking via linker rigidification as a general design rule for durable, high-performance SAM interlayers in organic optoelectronics.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4166-5
Oxygen evolution reaction (OER) represents a significant kinetic bottleneck in sustainable energy conversion due to its complex multi-step electron transfer process. Spin manipulation has recently emerged as a promising strategy to overcome traditional catalytic scaling relationships. However, the commonly used ferromagnetic materials or external magnetic fields suffer from practical limitations including material constraints and high energy consumption. The chiral-induced spin selectivity (CISS) effect in chiral inorganic nanomaterials with high stability, conductivity, and exceptional chiroptical properties offers a groundbreaking alternative by enabling spin polarization without the need for external magnetic fields. This review systematically examines the application of chiral inorganic nanomaterials for improving OER efficiency via the CISS effect. The fundamental principles of CISS and its influence on OER kinetics are discussed. Recent experimental advances highlighting the enhanced catalytic performance are analyzed. Future research directions and challenges in leveraging chirality and spin as key design principles for next-generation OER electrocatalysts are highlighted.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4182-6
Substrate interactions dictate the epitaxial growth of low-dimensional nanomaterials, yet controlling these interfaces at the atomic scale precision remains a critical challenge. Blue phosphorene (blueP) with freestanding lattice constant, experimentally realized exclusively on Ag(111), provides a unique platform to explore this interplay. Here, we elucidate the structural evolution of blueP on Ag(111), revealing that neighboring islands are not isolated but linked by single-phosphorus-atom bridges. To manipulate the interfacial coupling, we introduce a tellurium interlayer, driving the formation of an interfacial AgTe buffer that effectively decouples the islands. By tuning the substrate temperature, we achieve the synthesis of magic-number blueP clusters with uniform size and geometry. The resulting isolated blueP nanostructures facilitate the emergence of higher-order topological corner states in triangular geometries. Our findings demonstrate that tailoring interfacial interactions offers a robust route for reshaping phosphorene nanostructures, establishing essential building blocks for next-generation topological quantum materials.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4217-y
Rational design and construction of effective photocatalysts is a promising way for green and sustainable chemistry, but still a great challenge. Herein, taking triphenylamine-containing aldehydes as reactants, two covalent triazine frameworks (CTFs), tris(4-formylphenyl)amine (TPA)-CTF and tris(4-formylbiphenyl)amine (TBPA)-CTF, were rationally constructed. The strong electron donor property of the triphenylamine moieties derived from the initial reactants and the strong electron acceptor nature of the in-situ formed built-in triazine rings in CTFs endowed these robust triphenylamine-based CTFs with donor-acceptor (D-A) or donor-π-acceptor (D-π-A) structure features. Photocatalytic experiments revealed that, compared with the controlled phenyl analogue CTF, 1,3,5-tri(p-formylphenyl)benzene (TFPB)-CTF, both of the triphenylamine-based CTFs exhibited superior photocatalytic activity not only in photocatalytic hydrogen peroxide generation, but also in photocatalytic aerobic oxidations of diverse organic substrates. Theoretical studies further confirmed that their enhanced photocatalytic performance should be attributed to their unique D-A or D-π-A features in the constructed triphenylamine-based CTFs. This work successfully demonstrated that rational selection of reactants containing electron donor moieties to construct CTFs should be a reliable way for the construction of effective photocatalysts for photocatalytic oxidation reactions.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4153-2
Direct seawater electrolysis offers a promising route to green hydrogen production, circumventing freshwater scarcity. However, the presence of chloride ions (Cl−) poses severe challenges, including competing chlorine evolution reaction (CER) and corrosion of anode catalysts. Here, we report a dual-atom catalyst design, RuCr-Ni3P, where Ru atoms with strong chloride affinity and Cr atoms as Lewis acid centers are co-doped into a nickel phosphide matrix. This catalyst exhibits outstanding oxygen evolution reaction (OER) activity and selectivity in alkaline seawater, achieving stable operation for over 4000 hours at industrially relevant current densities. Mechanistic studies reveal that Cl− ions are selectively captured by Ru sites, forming a dynamic Ru–Cl coordination motif that electronically modulates adjacent Ni centers, promoting the formation of high-valent Ni>3+ species. This switches the OER pathway from the lattice oxygen mechanism (LOM) to the more efficient adsorbate evolution mechanism (AEM). Concurrently, Cr sites facilitate the formation of Cr–OH species, creating a localized alkaline microenvironment that further enhances OER kinetics. This dual-site synergistic mechanism transforms Cl− from a detrimental impurity into a beneficial chemical switch, concurrently enhancing both activity and stability. Our findings provide a paradigm shift in seawater electrolysis catalyst design, turning a longstanding challenge into an opportunity for efficient and durable hydrogen production.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3709-4
Photoelectrocatalytic (PEC) detoxification of ofloxacin in hyposaline wastewater is hindered by weak built-in electric fields (IEF) and rapid charge recombination. Here, we report a crystal dipole engineering strategy using high-valence Mo-doped BiVO4 to enhance IEF and PEC activity. Mo incorporation breaks lattice symmetry, increasing the crystal dipole moment and amplifying IEF to 2.05 times that of pristine BiVO4. This promotes directional carrier migration, improving electron-hole separation efficiency. The optimized 4% Mo-BiVO4 photoanode achieves 96.5% ofloxacin degradation within 60 minutes and maintains 91.9% degradation efficiency in natural lake water containing saline and organic interferents, demonstrating exceptional anti-interference capability. This work provides a strategy for boosting photocatalytic performance through unit-cell dipole engineering, aiming to enhance sustainability in wastewater treatment.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3579-8
Metal sulfides such as CdS are promising for solar-driven H2O2 production but suffer from rapid charge recombination and severe photocorrosion. This study introduces a dual-functional strategy synergizing sulfur vacancy (Sv) engineering and polydopamine (PDA) coating to overcome these limitations. Sv-CdS nanorods were hydrothermally synthesized with tunable vacancy concentrations, followed by in-situ PDA deposition to construct a direct Z-scheme heterojunction. X-ray photoelectron spectroscopy (XPS) and density functional theory (DFT) calculations reveal that the introduction of S vacancies reduces the work function of CdS, facilitating energy level alignment with PDA and enabling efficient electron transfer from CdS to PDA. By tuning the concentration of S vacancies, the charge transfer efficiency can be maximized. As a result, the photocatalytic H2O2 production rate reaches 2539.5 μmol g−1 h−1 under visible light, and further increases to 4395.5 μmol g−1 h−1 after PDA encapsulation—15.6 times higher than that of pristine CdS. Concurrently, PDA enhances O2 adsorption and protects Sv-CdS from photocorrosion. Sv-CdS@PDA exhibited superior photostability compared to Sv-CdS after three consecutive photocatalytic cycles. Mechanistic studies suggest that the Z-scheme heterojunction effectively separates electron-hole pairs: electrons in the conduction band of CdS reduce O2 to ·O2−, which is subsequently converted to H2O2, while holes in the valence band of Sv-CdS oxidize water to replenish O2. This work provides fundamental insights into engineering charge transfer and stability in sulfide-based photocatalysts.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3841-6
Ni-rich layered oxide cathodes are pivotal candidates for next-generation lithium-ion batteries (LIBs) due to their high capacity and energy density. However, their susceptibility to structural deterioration and interfacial degradation during cycling causes substantial capacity fade, hindering commercialization. This work proposes a synergistic strategy of lattice doping and in situ surface coating to enhance structural integrity and interfacial stability of LiNi0.9Co0.05Mn0.05O2. La and Y dopants act as pillars to reinforce the layered structure, mitigating volume changes and expanding c-axis spacing to facilitate Li+ diffusion. Concurrently, La4NiLiO8 and LiYO2 coatings protect the cathode from H2O/CO2 corrosion and electrolyte attack, while their high lithium-ion conductivity promotes Li+ transport. The modified cathode delivers exceptional electrochemical metrics: high specific capacity of 207.3 mA h g−1, remarkable cycling stability with 97.6% retention after 100 cycles, superior rate capability of 152.1 mA h g−1 at 10.0 C, and enhanced thermal stability. This work establishes a paradigm for multi-dimensional stabilization of Ni-rich cathodes via synergistic bulk and interface engineering, providing insights for designing high-performance energy storage systems.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3771-9
High-entropy carbonitride ultra-high temperature ceramics (HECN-UHTCs) typically require high densification temperatures, leading to grain coarsening and degraded mechanical properties. This study introduces CrSi2 as a sintering additive for (Ti, Zr, Hf, Nb, Ta)(C, N), effectively reducing the densification temperature by 200 °C. During sintering, interdiffusion and cation exchange result in the formation of an orthorhombic (Ti, Zr, Nb)2Cr4Si5 phase within the ceramic matrix. The resulting dual-phase ceramic exhibits a hardness of 24.65 ± 0.23 GPa and a fracture toughness of 6.03 ± 0.48 MPa m1/2, significantly surpassing most reported HECN-UHTCs. Enhanced mechanical properties are attributed to crack deflection, increased localized lattice strain, and Cr grain boundary segregation. This liquid phase-assisted low-temperature sintering strategy offers a promising pathway for densifying other ultra-high temperature ceramics.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3539-5
MXene-based layered films are promising for electromagnetic interference (EMI) shielding, yet achieving highly ordered structures in scalable production remains challenging. Here, we report a facile centrifugal casting method for fabricating MXene/polyvinyl alcohol (MXene/PVA) films with highly oriented and compact layered structures. During centrifugal casting, the viscous fluid experiences strong shear and centrifugal forces along tangential and normal directions, respectively, inducing compact and oriented arrangement of MXene nanosheets. Consequently, the Herman's orientation factor increases from 0.681 to 0.794 as rotation rate rises from 0 to 4000 r/min. Accordingly, tensile strength and toughness improve from 55.2 to 191.1 MPa and from ~0.8 to 2.5 MJ/m³, respectively. The highly oriented and compact layered structure with ultrathin thickness (~8 μm) enables a high absolute electromagnetic shielding effectiveness (SSE/t) of 21029 dB cm²/g. Moreover, increased orientation reduces infrared emissivity to 0.248, endowing the film with excellent thermal camouflage capability. This work presents an effective strategy for constructing high-performance MXene-based layered films.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3547-7
Inorganic perovskite solar cells (IPSCs) have attracted significant attention due to their excellent light and thermal stability and potential in tandem applications. However, their efficiency and stability are often limited by residual lattice stress and defects at interfaces and within the bulk, causing severe nonradiative recombination. Here, we introduce a zero-dimensional supramolecular complex, (ETP)2SbCl5, as a dual-interface and bulk modifier to regulate CsPbI3 film growth. The modifier exhibits spatial segregation: ETP+ cations anchor at the buried interface, passivating defects on TiO2 and perovskite surfaces; Sb3+ and Cl− ions diffuse into the bulk during annealing, relieving residual stress; and Cl− accumulates on the top surface, passivating cation defects. Consequently, the modified CsPbI3 solar cell achieves a power conversion efficiency (PCE) of 21.71% and an open-circuit voltage (VOC) of 1.27 V, retaining 97.4% of initial efficiency after 500 h of maximum power point (MPP) tracking. This work demonstrates a synergistic strategy to simultaneously address interfacial and bulk defects, advancing high-performance and stable inorganic photovoltaics.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3553-7
Gesture interaction has emerged as a highly effective interface for intelligent human-computer interaction, attributed to its intuitive interaction modality and multi-dimensional control capabilities. However, traditional gesture interaction devices often depend on predefined encoding rules, which substantially limit interaction efficiency and degrade user experience. This study introduces an innovative intelligent finger ring interaction system based on a triboelectric nanogenerator utilizing PDMS/SrTiO3 composite thin film (PS-TENG). The system maps freehand writing gestures directly to textual information input, thereby eliminating the need for complex gesture encoding schemes and offering a user-friendly, low-learning-curve input method. By integrating a deep learning model, the system achieves recognition accuracies of 98.21% for English letters, 96.87% for Arabic numerals, and 96.44% for Chinese characters. Furthermore, it supports secure and encrypted data transmission and enables wireless interaction for gaming control. These findings indicate that the intelligent finger ring interaction system possesses significant potential for practical applications in information input and wireless control.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3617-x
Macrophages are pivotal in infection resolution and tissue repair via dynamic M1-to-M2 phenotypic polarization. Although various nano-biomaterials can modulate macrophage polarization, achieving sequential M1-to-M2 transition using a single nanoformulation remains challenging. Here, we propose a strategy employing transition metal carbide/nitride (MXene) nanosheets, internalized by macrophages, as the sole regulator to induce sequential polarization. Under a rotating magnetic field, the high electrical conductivity and magnetoelectric activity of endocytosed MXene generate electrical signals and reactive oxygen species (ROS), driving M1 polarization. Upon magnetic field removal, the inherent bioactivity of MXene facilitates repolarization to the M2 phenotype. Mechanistically, this transition involves inhibition of the NF-κB signaling pathway and activation of the JAK-STAT signaling pathway. In vivo, MXene nanosheets under on-off rotating magnetic field stimulation enabled sequential M1-to-M2 polarization, promoting bacterial clearance and tissue regeneration in infected wounds. This two-step sequential strategy targeting macrophages offers a promising therapeutic approach for infected wound healing.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3630-2
This study demonstrates a dual-interface engineering approach for performance enhancement in perovskite-silicon tandem solar cells. By applying ethylenediamine dihydroiodide (EDAI2) to simultaneously modify both top and bottom interfaces of wide-bandgap perovskite layers, we achieve synergistic defect suppression and charge transport optimization. Time-resolved photoluminescence characterization reveals extended carrier lifetimes and improved spatial homogeneity in dual-modified perovskite films. The optimized single-junction wide-bandgap (>1.66 eV) perovskite solar cells attain a champion efficiency of 22.75% with enhanced operational stability. Implemented in perovskite-silicon tandem configuration, the devices achieve over 31% power conversion efficiency, validating the effectiveness of organic ligand-mediated dual-interface engineering in regulating carrier dynamics and advancing perovskite-based tandem photovoltaics.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3658-1
Organic-inorganic hybrid copper(I) halide semiconductors have attracted extensive attention for applications in phosphor-converted white light-emitting diodes (pc-WLEDs), X-ray imaging, and photodetectors because of their superior photo/radioluminescence, structural diversity, and eco-friendliness. In previous work, a strategy combining coordinated anionic inorganic modules with cationic derivatives yielded highly efficient blue-emitting hybrids, but synthesis complexity limited practical use. Here, we report a facile, efficient, and rapid solution-based ultrasonic treatment method for synthesizing high-performance blue-emitting phosphors using inexpensive, commercially available tetraethylammonium halides (TEAX, X = Cl, Br, I). The synergistic interplay of ionic and covalent bonds in these compounds endows them with a high photoluminescence quantum yield (PLQY) of 70% and excellent stability. These materials exhibit thermally activated delayed fluorescence (TADF), delivering outstanding performance in pc-WLEDs and X-ray imaging. Their exceptional properties highlight significant potential for use in optoelectronic devices and X-ray scintillators. This work provides an important reference for rapid synthesis of high-performance copper(I) halide hybrid phosphors and paves the way for commercial application.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3663-6
Escalating global climate change has precipitated a dramatic surge in building cooling/heating energy demands, critically undermining urban sustainability. Although dynamic thermal management technologies show potential for reducing architectural carbon footprints, prevailing active regulation systems remain constrained by energy-intensive mode-switching mechanisms and unsustainable operational costs. Here, we develop a zebra-inspired radiative modulator (ZIRM) that achieves climate-customized building thermal management through spatially partitioned integration of radiative cooling (RC) and heating (RH) functional units. The material breakthrough resides in a hybrid thin-film architecture combining a cellulose acetate/Zeolitic imidazolate framework-L (ZIF-L) porous membrane (solar reflectance ~95%, thermal emissivity ~0.88) with an MXene/ZIF-67 derived carbon-based absorption layer (solar absorption ~93%, thermal emissivity ~0.37), resolving the opto-thermal coupling limitations inherent to conventional materials. Experimental verification demonstrates that programmable regulation of the RC/RH area ratio enables broad-range temperature differential control from −4.3 to 12.1 °C during daytime operation. Building energy simulations reveal ZIRM’s annual energy consumption of 1.45×10^10 GJ, corresponding to 9.9% and 2.7% reductions compared to pure RC and RH systems, respectively. The established “configuration-environment-performance” predictive model pioneers a paradigm-shifting solution for carbon-neutral architecture, synergizing material innovation with climate-customized engineering strategies.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3652-2
Existing robotic end-effector gripping technologies often encounter challenges such as poor adaptability to environmental changes, incomplete deformation sensing, and insufficient adhesion stability, which can compromise operational safety and reliability. Here, we present the bio-inspired self-sensing suction cup, in which the core self-sensing capability is achieved by combining high-performance, laser-induced graphene/Ag NWs flexible sensors with a Wheatstone bridge design. The flexible sensors provide high sensitivity, while the Wheatstone bridge circuit enables accurate and stable detection of deformation during the gripping process. Integrated into the octopus-inspired suction cup, this system allows for real-time monitoring of deformation and adsorption stability. The self-sensing suction cup demonstrates good performance across a 0–25 kPa negative pressure range, with outstanding linearity (R2 = 0.993) and high sensitivity (GF = 10.436 kPa−1). Experimental results confirm that the suction cup can achieve stable adsorption under varying loads and enable real-time monitoring of the suction cup status during the gripping process. This design provides a promising solution for intelligent gripping systems, logistics, and object recognition in challenging environments.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3789-x
Wearable sensors have attracted significant attention due to their superior sensitivity, safety, and adaptability compared with conventional detection technologies. However, developing sustainable sensing materials that combine excellent performance with environmental friendliness remains a significant challenge. In this study, Juncus effusus (JE), a natural fiber featuring a unique internal three-dimensional (3D) network structure, was employed as the substrate. Conductive polyaniline was loaded onto the JE structure to impart electrical conductivity, and Ecoflex encapsulation provided high elasticity. Based on this approach, a JE-based resistive flexible sensor (PHE-JE) was successfully fabricated. The PHE-JE sensor exhibits high stability under various strain conditions, along with excellent flexibility and durability. Moreover, benefiting from its complex 3D structure and synergistic material interactions, the PHE-JE sensor enables accurate detection of diverse motion types, showing promising potential for future wearable sensing applications.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3705-5
Biodegradable metals (BMs) are designed to corrode gradually in physiological environments, yet this corrosion can compromise their mechanical integrity, potentially causing premature implant failure. For emerging zinc-based alloys, the corrosion-mechanical property relationship remains inadequately characterized. This study systematically investigated the long-term corrosion-associated mechanical behavior of hot-extruded Zn-Cu and Zn-Cu-Fe alloys, promising Zn-based bio-metals, in comparison with pure Zn, under immersion degradation in Hank's solution. Electrochemical impedance spectroscopy and mechanical testing revealed that the evolving corrosion profile governs mechanical performance. Alloying with Cu and Fe mitigated corrosion's detrimental effects: grain refinement reduced localized corrosion susceptibility, while finely dispersed second phases acted as cathodic sites, promoting uniform corrosion. Additionally, Cu and Fe facilitated the formation of protective corrosion product layers, suppressing further matrix attack. Consequently, the overall reduced corrosion, particularly localized corrosion, lowered stress concentration susceptibility, delaying mechanical decline and preserving structural integrity. These findings elucidate the degradation-mechanical property correlation in Zn-based bio-metals and underscore critical considerations for developing new bio-metals for clinical translation.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3770-9
Intramolecular through-space charge-transfer (TSCT)-enabled thermally activated delayed fluorescence (TADF) emitters have shown exceptional potential for advancing organic light-emitting diode (OLED) technologies, owing to their efficient utilization of triplet excitons and optimized photophysical properties. To date, the intrinsic correlation among molecular geometries, intramolecular non-covalent interactions, and photophysical properties in TSCT-TADF emitters remains unconfirmed, and this study theoretically clarifies this critical correlation. Specifically, through integrating molecular engineering, screening strategies, first-principles calculations, energy decomposition analysis, and statistical modeling, we systematically investigated 24 experimentally reported TADF molecules, and 54 newly designed structures in both solution and thin-film environments. We establish a clear geometric criterion for high-efficiency TSCT-TADF emitters: donor-acceptor (D-A) dihedral angles below 25° and interfragment distances within 4 Å—conditions validated by both theoretical predictions and experimental evidence. Based on this insight, we designed two novel molecular libraries with benzene- or carbazole-derivative bridges, using O-bridged triphenylamine (DPXZ) as the donor and quinolino[3,2,1-de]acridine-5,9-dione (QAO) as the acceptor. Our calculations confirm that sub-25° D-A dihedral angles correlate with exceptional delayed fluorescence efficiency, with predictions reaching up to 96% and an average of 70% for the new thin film systems. This study provides a rational design strategy for high-performance TSCT-TADF emitters, significantly advancing the molecular-level understanding of through-space interactions and accelerating the discovery of tailored, efficient OLED materials.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3584-3
Sutures, as necessary medical devices for postoperative treatment, are no longer merely supportive but are required to have advanced functions to promote repair. Here, we report an absorbable self-powered electrical stimulation suture (SES-suture). The suture is composed entirely of absorbable materials (magnesium, polylactic acid, and polycaprolactone) and can be used in vivo for incision closure and repair. The suture has the capacity to generate spontaneous electrical stimulation in response to body movement, allowing for accelerated tissue reconstruction. An in vivo muscle incision repair model in rabbits demonstrated that the wound healing rate under treatment with this suture was 1.6 times faster than that of commercial sutures, proving its postoperative therapeutic capability. Immunofluorescence and quantitative analyses showed that SES-sutures significantly increased α-SMA and CD31 expression, with levels approximately 2.8 and 3.2 times higher than the blank group, respectively, indicating enhanced angiogenesis and muscle regeneration. The SES-suture exhibited excellent mechanical properties, sustained electrical output, structural and functional stability after implantation, and good biocompatibility. This large animal approach offers crucial translational evidence for potential human applications, addressing the limitations of rodent models due to differences in biomechanics and regeneration rates. While the biosafety profile requires further long-term evaluation, the findings strongly suggest that SES-sutures represent a promising therapeutic strategy for enhancing tissue regeneration and functional recovery.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3653-2
Designing photosensitizers with efficient intersystem crossing (ISC) and long-lived triplet excited states is critical for photodynamic therapy (PDT). However, conventional molecular design principles often rely on heavy-atom effects or specific donor-acceptor architectures, limiting generality. Here, we report a facile and rational strategy to convert intrinsically non-photosensitizing fluorophores into effective reactive oxygen species (ROS) generators by introducing guanidinium substituents. The modified photosensitizers exhibit prolonged triplet excited state lifetimes and considerable ROS production, in stark contrast to unmodified fluorophores which show intense fluorescence and negligible ROS generation. Electron paramagnetic resonance spectroscopy and high-resolution mass spectrometry confirm the formation of stable nitrogen-centered radical cations on the guanidinium moiety, stabilized by p-π conjugation. Mechanistic studies indicate that these radicals promote ISC and prolong triplet state lifetimes. In vitro and in vivo experiments demonstrate that guanidinium-modified photosensitizers induce immunogenic cell death (ICD) and elicit potent anti-tumor immunity. This work provides a universal and facile strategy for designing organic photosensitizers through stable radical cation-containing building blocks, expanding the scope of PDT agents.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3654-5
Hydrogen production by photosynthetic green algae is an efficient biological process that utilizes light energy to convert water and carbon dioxide into clean and renewable energy. In this paper, we constructed a hybrid system combining graphitic carbon nitride (g-C3N4) and Chlorella pyrenoidosa (Chlorella), in which g-C3N4 serves as an extracellular electron source and Chlorella acts as a biological reactor for specific hydrogen production. In particular, the electronic structure of carbon nitride was optimized by means of hydrothermal alkalization and copper ion doping, expanded the light absorption range and enhanced the light response ability. g-C3N4, as an extracellular electron source, can provide electrons for Chlorella to improve hydrogen production performance which is 3.7 times that of bare Chlorella. The construction of a biological hybrid system is a feasible optimization strategy for the hybrid system to promote the synergistic effect of the hybrid system by regulating the properties of non-living components.
New Carbon Materials•2026•DOI: 10.1016/S1872-5805(26)61071-2
Aqueous zinc-ion capacitors (ZICs) are promising energy storage systems due to their high specific capacity and superior reliability. Heteroatom-doped carbon materials have been shown to substantially increase the capacitance of ZICs, yet the underlying mechanisms remain poorly understood. In this work, coal-based activated carbon was functionalized with both boron (B) and nitrogen (N) to serve as the cathode material in ZICs. The optimized material, designated CAC-120, exhibits a high specific capacity of 371.4 mAh g−1 at 1 A g−1 and retains 74% of its initial capacity after 10,000 cycles. Electrochemical analysis and density functional theory (DFT) calculations reveal that pyridinic N plays a crucial role in enhancing Zn2+ storage, demonstrating superior electrochemical reversibility. Furthermore, an assembled aqueous ZIC using the CAC-120 cathode achieves a high reversible capacity of 90.8 mAh g−1 at 0.2 A g−1 and exceptional long-term stability over 17,000 cycles. This work provides valuable insight into the design of high-capacity and ultrafast pseudocapacitive carbon cathodes for ZICs, highlighting the synergistic effects of pore structure engineering and heteroatom doping.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3761-7
Ruthenium-based materials, including metallic Ru and RuO2, are promising electrocatalysts for electrochemical water splitting (EWS) due to their high activity for both hydrogen evolution reaction (HER) and oxygen evolution reaction (OER). However, their practical application is hindered by the relatively strong adsorption of reaction intermediates on Ru surfaces and the oxidative dissolution of RuO2 under operating conditions. This review provides a comprehensive overview of recent progress and challenges in Ru-based electrocatalysts for EWS. We first summarize the fundamentals of EWS, including reaction mechanisms and activity descriptors. Then, we detail typical synthesis methods such as hydrothermal/solvothermal syntheses, organic ligand-assisted syntheses, pyrolysis, acid etching, cation exchange, and molten salt-assisted syntheses. Subsequently, we focus on enhancement strategies, including alloying, doping, structure design, interface engineering, single-atom catalyst design, high-entropy alloy design, phase engineering, and defect engineering, with typical examples illustrating structure-property correlations. Finally, we address remaining challenges and future prospects for the development of efficient and durable Ru-based electrocatalysts for sustainable hydrogen production.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4022-7
Transition metal nitrides (TMNs) have emerged as promising alternatives to noble metals in electrocatalysis due to their noble metal-like electronic structures, high conductivity, low cost, and robust chemical stability against corrosion and oxidation under harsh conditions. The rational design and controlled synthesis of TMNs with distinct structures are crucial for developing highly efficient electrocatalysts. This review comprehensively summarizes representative synthetic strategies for TMNs, including direct nitridation, solid-state reaction, sol-gel assisted reaction, and wet-chemical reaction. It presents distinct structural characterizations and demonstrates their advances in electrochemical applications. Finally, the remaining challenges and future research directions for exploring TMNs with well-defined structures are proposed, aiming to guide the development of high-performance electrocatalysts.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3757-2
β-Ga2O3 is a promising candidate for solar-blind ultraviolet photodetection owing to its suitable bandgap of approximately 4.9 eV, excellent photoresponse characteristics, and high stability. However, the lack of a sufficient driving force within the material leads to extensive bulk charge recombination, limiting its photocurrent and thus posing significant challenges in designing high-performance Ga2O3-based photodetection. In this study, we propose a gradient doping strategy to achieve a Sn-doping concentration gradient along the β-Ga2O3 film thickness. By combining sol–gel synthesis with rapid thermal annealing, a spatially graded band structure with a full-space built-in electric field is constructed, which increases the width of band bending over a large region and is crucial for significantly enhancing carrier separation and transport in the bulk. The resulting gradient Sn-doped β-Ga2O3 enables exceptional photoelectric performance without an external bias under 254 nm irradiation, including a superior responsivity of 66.88 mA W−1, a high detectivity of 8.12 × 10^11 Jones, and a fast rise/decay time of 79/65 ms, outstanding most existing similar reported photoelectrochemical (PEC) type optoelectronic devices. Additionally, the device exhibits excellent long-term stability and enables high-resolution underwater ultraviolet imaging. This study demonstrates that the gradient doping strategy provides a feasible approach for enhancing the PEC performance of β-Ga2O3 photoelectrodes.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3710-y
Layered transition metal oxide cathodes for sodium-ion batteries (SIBs) suffer from Jahn–Teller distortion of MnO6, Na+/vacancy ordering, and irreversible lattice oxygen loss, causing capacity fading and voltage decay. Here, we report a P2-type material, Na0.67Ni0.3Mn0.6Li0.09Sn0.01O2 (NNMO-Li0.09Sn0.01), co-doped with closed-shell Li+ and Sn4+ ions. Li+ increases the Mn4+/Mn3+ ratio, mitigating Jahn–Teller distortion, and disrupts Ni/Mn ordering, suppressing Na+/vacancy ordering. Sn4+ forms stronger Sn–O bonds (548 kJ mol−1), enhancing bonding between transition metal ions and oxygen, reducing oxygen loss. NNMO-Li0.09Sn0.01 delivers a specific capacity of 90.3 mAh g−1 with 62.9% capacity retention after 50 cycles at 0.1 C (1 C = 200 mA g−1), and 90.3% voltage retention. This closed-shell substitution strategy offers a viable approach for enhancing structural stability of wide-voltage layered oxide cathodes.
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.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3883-2
Tensile stress annealing (TSA) is an effective strategy for tailoring magnetic anisotropy and high-frequency performance in nanocrystalline soft magnetic alloys. Here, we systematically investigate the influence of TSA on the microstructure, magnetic domain evolution, and permeability stability of Fe69.5Co3Nb2Mo1.5Si14B9Cu1 nanocrystalline alloys. Across all applied stresses (0–300 MPa), the alloys retain an ultrafine grain size (≤11 nm), yet the induced uniaxial anisotropy constant (Ku) rises sharply from 22.5 to 665 J/m3. This increase in Ku refines the magnetic domain structure, reducing average domain width from 110 to 36 μm, and shifts the magnetization mechanism from domain-wall displacement to rotation-dominated reversal. Quantitative correlation between Ku, domain structure, and effective permeability (μe) reveals that higher stress suppresses μe at low frequencies but yields exceptional frequency stability: μe ≈ 2330 is maintained up to 1 MHz at 50 MPa, and μe ≈ 585 remains constant from 1 kHz to 10 MHz at 300 MPa. These findings demonstrate that stress-induced anisotropy is a decisive factor in governing high-frequency magnetic response, offering both mechanistic insight and a practical framework for designing next-generation soft magnetic materials for precision current transformers, EMC filters, and MHz-class power electronics.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3785-5
The effective separation and utilization of photo-generated carriers are critical for advancing photocatalysis, particularly in coupled reactions of H2 production and value-added chemical synthesis. Here, a sandwich-structured MnO2@ZnIn2S4@Ti3C2 hollow sphere was designed, with MnO2 and Ti3C2 loaded on the inner and outer surfaces of ZnIn2S4, respectively. MnO2 acts as an oxidation cocatalyst collecting photo-generated holes, while Ti3C2 serves as a reduction cocatalyst for electrons, promoting spatial separation of carriers and enabling spatially separated redox reactions. The hollow structure enhances light harvesting. The optimal catalyst achieves photocatalytic H2 production rate of 6.29 mmol g−1 h−1 and benzaldehyde production rate of 5.26 mmol g−1 h−1 from benzyl alcohol oxidation, significantly outperforming ZnIn2S4, MnO2@ZnIn2S4, and ZnIn2S4@Ti3C2. In situ irradiated X-ray photoelectron spectroscopy confirms effective carrier separation. In situ electron paramagnetic resonance and diffuse reflectance infrared Fourier transform spectroscopy reveal reaction intermediates. This work provides a strategy for designing efficient photocatalysts for coupled H2 production and selective oxidation.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3805-1
The sluggish kinetics of oxygen reduction and evolution reactions (ORR/OER) at the air electrode impede the practical deployment of fiber zinc-air batteries (FZABs) for wearable electronics. Conventional bifunctional catalysts suffer from an inherent activity trade-off due to the distinct mechanisms of ORR and OER. Here, we propose a spatial decoupling strategy to overcome this limitation by engineering isolated Fe single atoms and Fe–Ir dual-atom pairs on a nitrogen-doped carbon matrix (Fe/FeIr-NC). In this architecture, Fe single atoms serve as ORR centers, while Fe–Ir pairs with tunable spacing are tailored for OER, enabling complete functional separation and independent optimization. The catalyst exhibits an ORR half-wave potential of 0.91 V and an OER overpotential of 250 mV at 10 mA cm−2, yielding a record-low bifunctional gap (ΔE = 0.57 V) that outperforms all reported single- and dual-atom catalysts. A flexible fiber zinc-air battery based on this catalyst delivers a peak power density of 3920 W kg−1, along with a 1.4-fold increase in energy efficiency and a 2.6-fold extension in cycle life compared to the commercial Pt/C + IrO2 benchmark. This work not only breaks the traditional activity trade-off in bifunctional catalysis but also offers a promising route toward high-performance power sources for wearable electronics.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3773-7
Kesterite Cu2ZnSn(S,Se)4 (CZTSSe) solar cells suffer from significant open-circuit voltage (VOC) deficits due to severe interfacial and bulk recombination, restricting their power conversion efficiency (PCE) far below the Shockley-Queisser limit. This work proposes a low-temperature annealing strategy during ITO sputtering (SA) to synergistically address these challenges. The temperature applied during ITO sputtering not only improves the crystallinity, carrier concentration, and optical transmittance of the ITO layer but also promotes the diffusion of In from ITO into both CdS and CZTSSe layers. Consequently, lattice matching at the CZTSSe/CdS interface is optimized, enabling epitaxial growth. And a favorable ITO/In:CdS/In&Cd:CZTSSe structure with optimal band alignment is obtained. As a result, a champion device with a PCE of 14.29% was achieved. The SA-treating also enabled the CZTSSe solar cells to achieve the highest VOC reported to date, exceeding 590 mV. This underscores the essential role of SA processing in optimizing interface engineering and suppressing defects, thus promoting the development of low-cost, high-performance kesterite photovoltaics.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3716-x
Flexible pressure sensors (FPSs) are pivotal for fall detection and rehabilitation training, yet conventional synthetic-based sensors suffer from resource-intensive manufacturing, high costs, and environmental pollution. This study introduces a sustainable fabrication strategy for FPSs using natural materials. Electrodes were fabricated by treating natural wood strips with a flame retardant, converting them into high-quality graphene via cost-effective infrared laser processing, and transferring onto starch-based substrates. The dielectric layer comprised an electrospun composite nanofiber membrane of cyclodextrin and carbon nanotubes. The resultant capacitive FPS exhibited high sensitivity (2.15 kPa⁻¹ within 0–10 kPa), a low detection limit (~6.5 Pa), rapid response and recovery times (29 ms and 39 ms), and excellent long-term stability exceeding 5000 cycles. Biocompatibility was outstanding (cell viability >98%), and the sensor fully degraded within 6 hours. Integrated with wireless technology, the sensor enabled a fall detection and rehabilitation monitoring system. Data processing utilized a Tiny Machine Learning module on a mobile platform, transmitting data to a cloud-based system. The system accurately identified five common fall postures and assisted clinicians in guiding rehabilitation exercises, achieving recognition accuracies of 99% and 100%, respectively. This work offers a sustainable healthcare solution for elderly care, addressing environmental and economic limitations of existing FPS technologies.
Chinese Journal of Environmental Engineering•2026•DOI: 10.12030/j.cjee.202507064
This study investigates pollutant removal characteristics and kinetic behaviors in sewage networks, and analyzes their impact on the carbon-to-nitrogen ratio (C/N, as COD/TN) of influent to wastewater treatment plants. Source water quality sampling at drainage outlets revealed spatial and temporal variations in C/N, with domestic sewage exhibiting higher C/N than industrial sewage, and diurnal peaks reaching 6.92 versus 4.71 during off-peak hours. Using a pilot-scale adjustable sewage network system in Kunshan, experiments were conducted under high (0.491 m·s−1) and low (0.089 m·s−1) flow velocities, monitoring pollutant removal over 144 hours. Pseudo-first-order kinetics were applied to model COD and TN removal. Results showed that COD (including SCOD and PCOD), BOD5, and SS achieved approximately 80% removal within 144 h, with higher removal at low flow velocity. TN, NH3-N, and TP exhibited lower overall removal rates. Kinetic fitting revealed that COD removal rate constants (kCOD) were significantly higher than those for TN (kTN), and both decreased with increasing flow velocity: at low velocity, kCOD=0.0167 h−1 and kTN=0.0029 h−1; at high velocity, kCOD=0.0127 h−1 and kTN=0.0020 h−1. Simulations based on actual source pollutant concentrations indicated that the time for C/N to drop to the denitrification critical value of 4.50 was 12.24 h at high velocity, but shortened to 9.49 h at low velocity. These findings demonstrate that increasing flow velocity effectively retards the decline of C/N. Therefore, regulating network flow velocity to reduce hydraulic retention time is a key strategy for maintaining adequate C/N at the terminal and ensuring denitrification efficiency in wastewater treatment plants.
Chinese Journal of Environmental Engineering•2026•DOI: 10.12030/j.cjee.202507111
This study investigated the effects of a ring-shaped pulsed electric field (PEF) (1.5 V, 4 h on-time per cycle) on nitrogen removal performance and microbial community structure of anammox granular sludge (AnGS). Two anaerobic sequencing batch reactors (R1 control, R2 with PEF) were operated under stepwise increasing nitrogen loading rates (NLR). At NLR below 1,155 mg·(L·d)−1, R2 exhibited total nitrogen removal efficiency (TRE) 7.5%–17.0% higher than R1, with biomass, specific anammox activity (SAA), and extracellular polymeric substances (EPS) increased by 5%–7%, 21%–71%, and 54%–77%, respectively. However, at NLR above 1,320 mg·(L·d)−1, the toxic effect of nitrite dominated, and PEF enhancement diminished or even reversed to inhibition. Microbial community analysis revealed that at low-to-moderate NLR, PEF increased the relative abundance of Planctomycetes and key anammox bacteria (Candidatus Brocadia and Candidatus Jettenia), along with enhanced community richness (Chao1) and diversity (Shannon/Simpson indices). At high NLR, PEF decreased microbial richness compared to R1. Principal component analysis and redundancy analysis indicated that PEF was the key factor driving community differences at low-to-moderate NLR, whereas nitrite concentration became the dominant factor at high NLR. This study provides theoretical support for enhancing the resilience and engineering application of anammox processes.
Chinese Journal of Environmental Engineering•2026•DOI: 10.12030/j.cjee.202507062
The construction of predictive models for the recurrence of blackening and odor in urban water bodies has become a critical foundation for refined management of urban water environments. Based on water quality monitoring data from 16 cities in the Yangtze River Basin from 2020 to 2023, this study systematically evaluated six typical comprehensive index calculation methods and proposed a probabilistic prediction model for water blackening and odor recurrence centered on the VIKOR composite index. Through sampling analysis and literature review, a power-law relationship between transparency (y) and turbidity (x) was established (y = 3.12x−0.66), leading to a critical turbidity threshold of 46.9 NTU for blackening and odor. Using ANOVA, recursive feature elimination, and random forest, five indicators—turbidity, dissolved oxygen (DO), total phosphorus (TP), permanganate index (CODMn), and ammonia nitrogen (NH3-N)—were selected as the model's indicator system, with importance ranking: turbidity > DO > TP > CODMn > NH3-N. The VIKOR composite index exhibited the most robust mapping relationship with blackening probability, achieving high accuracy (RMSE = 0.029, MAE = 0.020) and consistency (NSE = 0.918, R2 = 0.918), whereas models based on other indices yielded R2 values below 0.84. The model demonstrated good predictive performance across the Yangtze, Pearl, Haihe, and Yellow River basins. This model offers a universal decision-making tool for precise identification, early warning, and targeted management of water blackening and odor recurrence, with potential integration into urban water smart platforms.
Chinese Journal of Environmental Engineering•2026•DOI: 10.12030/j.cjee.202507030
Arsenic is a toxic metalloid predominantly present in water as As(V) and As(III), whose speciation governs toxicity and mobility. Conventional speciation methods (HPLC-ICP-MS, IC-HG-AFS) offer ultralow detection limits but suffer from high cost, long analysis times, and non-portability, hindering on-site rapid monitoring. This study presents a sulfide-based spectrophotometric method exploiting the quantitative reaction between As(V) and S2− to form monothioarsenate (H3AsO3S) with a characteristic absorption at 233 nm. Under optimized conditions (H+ concentration 1 mol·L−1, Na2S dosage 5 mmol·L−1, reaction time 3 min, N2 purging 2 min), As(V) is directly quantified. Total arsenic is determined after complete oxidation of As(III) to As(V) using NaClO (10 mmol·L−1, pH 12, 5 min), and As(III) is obtained by difference. The method exhibits linearity over 0.5–50 mg·L−1 (A = 0.0209c + 0.0627, R² = 0.999), a detection limit of 0.17 mg·L−1, spike recoveries of 101.9%–104.1%, and relative standard deviation of 1.06%. Validation against real industrial wastewater samples showed relative deviations <10% compared with HPLC-ICP-MS and IC-HG-AFS. Total analysis time is within 15 min. The method is simple, cost-effective, and suitable for field monitoring.
Chinese Journal of Environmental Engineering•2026•DOI: 10.12030/j.cjee.202507043
Municipal sludge with high moisture content and strong viscosity tends to form a dense crust during conventional rotary drum drying, reducing heat and mass transfer efficiency and prolonging drying time. This study proposes a thermal steel ball-enhanced rotary drum drying method that introduces high heat capacity, high thermal conductivity steel balls to achieve synergistic contact heat conduction and mechanical disturbance. An evaluation system incorporating dimensionless moisture ratio (MR), drying rate (DR), characteristic drying time (tdry), effective moisture diffusivity (Deff), and volumetric evaporation intensity (U) was established. Results show that compared with conventional drying, steel ball-enhanced drying increased maximum drying rate (DRmax) by 22.59%–41.19%, U by 38.06%–93.43%, and shortened tdry by 27.56%–48.30%, with more pronounced advantages under high load conditions. Deff was significantly higher throughout the process, with maximum increase up to 48.30%, indicating that ball rolling and collision effectively disrupt the crust and promote moisture migration. Mechanistic analysis reveals that the performance enhancement arises from the dual action of thermal-mechanical coupling and mechanical disturbance, which enhances local heat flux via contact conduction and dynamically renews the drying interface, shortening diffusion paths. This study elucidates the heat and mass transfer mechanisms of thermal steel ball-enhanced sludge drying, providing theoretical support and technical reference for efficient sludge volume reduction and dryer design optimization.
Journal of Fuel Chemistry and Technology•2026•DOI: 10.1016/S1872-5813(25)60617-7
The global energy landscape is undergoing a profound transformation, with wind energy gaining increasing prominence due to its clean and renewable nature. However, as installed wind power capacity expands, disposal of waste wind turbine blades (WWTB) has emerged as a significant challenge. These blades are predominantly composed of epoxy resin (EP) polymers, carbon fibers (CFs), and glass fibers (GFs). Improper disposal exacerbates environmental concerns and leads to loss of valuable resources, particularly carbon-based materials. Pyrolysis technology, a versatile and environmentally sustainable method for resource recovery, has garnered considerable attention for WWTB disposal. This work presents a comprehensive review of pyrolytic recycling of WWTB, focusing on principles and classifications of pyrolysis technology, key factors influencing the pyrolysis process, as well as pyrolysis methods, equipment, products, and their applications. Through in-depth analysis of current research, this review identifies critical unresolved issues and provides a forward-looking perspective on emerging research trends. The review highlights that pyrolysis can effectively recover glass fibers and carbon fibers with mechanical property retention depending on process conditions, and that catalytic pyrolysis can enhance the quality of recovered products. Economic analysis indicates that collaborative disposal methods can improve cost-effectiveness. Future research should focus on optimizing process parameters for large-scale industrial application and developing more efficient catalysts to improve product selectivity and fiber quality.
Journal of Fuel Chemistry and Technology•2026•DOI: 10.1016/S1872-5813(25)60607-4
The methanation of biomass gasification syngas (H2/CO = 3:1) was investigated over Ni/Al2O3 monolithic catalysts supported on cordierite, with a nominal Ni loading of 15 wt%. Catalysts were modified by treatment with 10% NaOH solution for 1 h and 2 h. Physicochemical properties were characterized by BET, TEM, H2-TPR, XRD, CO2-TPD, and TG. Results showed that the 2 h modification (15%Ni/Al2O3-2h) increased specific surface area, enhanced catalytic activity, and increased alkaline site density compared to the unmodified catalyst. Under optimized conditions (H2/CO volume ratio 3:1, space velocity 10000 mL/(g·h), temperature 400 °C), the 15%Ni/Al2O3-2h catalyst achieved a CO conversion of 97% and CH4 selectivity of 100%. Stability tests over 2 h showed that the CO conversion remained stable at approximately 98%, indicating excellent catalytic stability. The study demonstrates that alkali modification with 10% NaOH for 2 h significantly improves both the methanation performance and stability of Ni/Al2O3 monolithic catalysts, offering a promising route for synthetic natural gas production from biomass.
Environmental Chemistry•2026•DOI: 10.7524/j.issn.0254-6108.2025121602
This study characterized the body burden of polybrominated diphenyl ethers (PBDEs) in a physical examination population in Shenzhen and evaluated its impact on thyroid function. Serum samples from 368 residents were analyzed for eight PBDE congeners using atmospheric pressure gas chromatography-tandem mass spectrometry (APGC-MS/MS). The median concentration of ∑8PBDEs was 10.2 ng·g⁻¹ lipid weight (lw), ranging from 0.13 to 2089.4 ng·g⁻¹ lw, with BDE-209 predominating (59.7% of total). Multiple linear regression revealed that a 1.7-fold increase in serum BDE-153 was associated with a 0.4% increase in free triiodothyronine (FT3) (P<0.05), while a 1.7-fold increase in BDE-183 was associated with a 0.9% decrease in total triiodothyronine (T3) and a 0.7% decrease in FT3 (P<0.05). Bayesian kernel machine regression (BKMR) indicated a negative correlation between mixed PBDE exposure and thyroid-stimulating hormone (TSH) at high exposure levels. Weighted quantile sum (WQS) regression showed that mixed exposure was associated with decreased T3 levels and T3/FT3 ratio, with BDE-153 and BDE-183 as the primary contributors. These findings suggest that PBDE exposure may adversely affect thyroid function and disrupt thyroid hormone homeostasis, with BDE-183 and BDE-153 playing key roles. This study provides a scientific basis for PBDE health risk assessment and thyroid protection.
Environmental Chemistry•2026•DOI: 10.7524/j.issn.0254-6108.2024122101
Bicarbonate and carbonate ions (HCO3−/CO3^2−) are ubiquitous in wastewater and readily scavenge strong oxidants, leading to the formation of carbonate radicals (CO3·−) in radical-based advanced oxidation processes. This study investigated the influence of HCO3−/CO3^2− on the degradation kinetics of sulfamethazine (SMR) in a UV/TiO2 system. The presence of HCO3−/CO3^2− enhanced the degradation rate of SMR by sixfold compared to UV/TiO2 alone. Radical quenching experiments identified CO3·− as the primary reactive species responsible for the enhanced degradation, with hydroxyl radicals (·OH) also contributing. To quantitatively delineate the roles of reactive species and account for water matrix effects, a kinetic model was constructed using Kintecus software. The model accurately predicted SMR degradation over time and the contributions of individual radicals, demonstrating good predictive capability. Application of the model to real wastewater predicted that CO3·− is the dominant radical responsible for SMR degradation. These findings highlight the critical role of carbonate radicals in UV/TiO2 processes and provide a robust modeling framework for predicting the fate of pharmaceuticals in carbonate-rich waters.
Environmental Chemistry•2026•DOI: 10.7524/j.issn.0254-6108.2024110202
Anaerobic digestion (AD) is an environmentally friendly biochemical technology for waste treatment and renewable energy production, yet its methane conversion efficiency remains suboptimal. This study employed flux balance analysis (FBA) to determine the optimal temperature for methane production in AD, and subsequently regulated key flexible nodes in the metabolic pathway to maximize methane flux. At the optimal temperature of 40 °C, up-regulating the acetyl-CoA flexible node increased methane flux by 48.5%, while up-regulating the acetate node increased it by 36.6%. The higher improvement via acetyl-CoA regulation is attributed to the fact that 40 °C is unfavorable for hydrogen-producing acetogenic bacteria, making acetyl-CoA the critical control point. These findings demonstrate that flexible node regulation can overcome the limitations of temperature optimization alone. The FBA methodology provides a reliable, cost-effective approach for optimizing target product yields in AD and other fermentation systems, requiring only input and output measurements to resolve intermediate metabolic fluxes.
Journal of Environmental Engineering Technology•2026•DOI: 10.13205/j.hjgc.202604007
Low C/N ratios in wastewater treatment plant effluent necessitate external carbon sources for denitrification, but conventional liquid carbon sources are costly and unstable. This study prepared nine composite solid-phase carbon sources by combining PHBV with natural cellulose materials (straw, sawdust, corncob) at different mass ratios. Dynamic release experiments, DOC analysis, UV-Vis spectroscopy, and EEM fluorescence were employed to characterize carbon release. Results showed that increasing cellulose proportion in corncob-based sources led to release patterns opposite to those of straw- and sawdust-based sources. For straw and sawdust, higher cellulose ratios accelerated release rates, increased total release and duration, reduced aromaticity and molecular weight of released DOM, and promoted protein-like components (tryptophan, tyrosine), indicating enhanced bioavailability. Under identical ratios, corncob-based sources exhibited moderate total release, release durations exceeding 134 h, lower DOM aromaticity and molecular weight, and lower humic substance proportion, indicating superior bioavailability and engineering potential. Among the nine sources, JG5, MX5, and CC4 (PHBV:cellulose mass ratios of 4:5, 4:5, and 1:1, respectively) showed optimal comprehensive performance with low theoretical maximum release, long release periods, and high mass transfer coefficients. EEM-PARAFAC identified three DOM components (protein-like C1, C2; humic-like C3), with protein-like components dominating. This study validates the relationship between cellulose proportion and release kinetics and reveals synergistic regulation of DOM components, offering guidance for designing effective solid-phase carbon sources.
Environmental Chemistry•2026•DOI: 10.0000/202604-1
An analytical method was developed for the simultaneous determination of 11 organic ultraviolet absorbents (OUVs) in coral tissues using ultra-high performance liquid chromatography-tandem mass spectrometry (UHPLC-MS/MS). Target analytes included benzophenones (BP, BP-2, BP-3, BP-8) and other common UV filters. Sample pretreatment and chromatographic conditions were systematically optimized. Coral tissue samples were extracted by combined vortexing and ultrasonication, separated on a CAPCELL PAK MG C18 column using a mobile phase of methanol-0.1% formic acid aqueous solution under gradient elution, and determined by multiple reaction monitoring (MRM) with internal standard quantification. Method validation demonstrated good linearity for all target compounds over the range of 0.1–500 μg·L−1 (R2 > 0.990), with method detection limits ranging from 0.020 to 0.133 ng·g−1. The mean recoveries at low, medium, and high spiking levels ranged from 60.5% to 120.3%, with relative standard deviations (RSDs) of 1.6%–10.7%. The method offers advantages of simple pretreatment, good repeatability, and high accuracy, making it suitable for high-throughput determination of OUVs in complex biological matrices such as corals. The method was applied to analyze 89 coral samples collected from Xidao Island, Sanya, and five target OUVs were detected in the samples. This method provides reliable technical support for elucidating the accumulation characteristics of OUVs in corals and assessing their potential ecological risks.
Journal of Environmental Engineering Technology•2026•DOI: 10.13205/j.hjgc.202604001
This study systematically investigated the occurrence, spatial distribution, sources, and ecological risks of 160 pesticides in Dianchi Lake, a typical plateau lake impacted by agricultural activities. A total of 37 pesticides were detected in the water, with total concentrations ranging from 64.2 to 1132.8 ng/L (average 610.0 ng/L). Fungicides, including boscalid (BOS), fluopicolide (FPC), and dimethomorph (DMM), were dominant, contributing up to 65.0% of the total concentration. Spatially, the southern lake region exhibited significantly higher concentrations (672.5 ng/L) than the north, attributed to intensive facility agriculture. Highly hydrophobic pesticides, such as penconazole (PEN), showed a tendency to enrich in bottom layers. Source apportionment identified inflowing rivers and wastewater treatment plant effluents as primary input sources, with average concentrations 7 and 9 times higher than lake water, respectively. Ecological risk assessment revealed that pesticides posed the highest risk to algae, followed by daphnia and fish. Prometryn (PMT) was identified as a high-risk factor for algae, while profenofos (PFF) and carbendazim (CBD) posed potential threats to higher trophic levels. These findings provide fundamental data and technical support for understanding pesticide pollution in plateau lake ecosystems.
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.202604003
Emerging contaminants (ECs) in wastewater from urban transportation infrastructure remain poorly characterized. This study employed high-resolution mass spectrometry (HRMS)-based non-target screening to systematically identify the composition and spatial distribution of ECs in wastewater from three functional zones of a metro maintenance depot: storeroom (S1), office/residential area (S2), and final discharge outlet (S3). A total of 417 contaminants were detected, spanning eight categories including industrial materials, pharmaceuticals, pesticides, and natural products. Among these, 48 substances were identified with Level 1 confidence via spectral matching. Pesticides exhibited the highest detection frequency and concentration levels, representing the primary contaminant load. Semi-quantitative concentration heatmaps of 24 pesticides revealed significant spatial variation: S2 showed the highest number and concentration of contaminants, reflecting inputs from landscaping and vector control; S1 and S3 showed lower levels, indicating dilution, migration, and attenuation. Representative pesticide bifenox displayed a clear concentration gradient (S2 > S1 > S3), suggesting transport mechanisms such as surface runoff, hydraulic transfer, and sorption. These findings underscore the complexity and diversity of EC sources in metro depot wastewater, highlight the need to prioritize pesticides in regulatory management, and provide fundamental data for understanding EC environmental behavior and informing water environment risk assessment.
Journal of Environmental Engineering Technology•2026•DOI: 10.13205/j.hjgc.202604014
Ice slurry pigging is an emerging technology for cleaning water supply pipelines, yet quantitative understanding of its cleaning mechanisms and optimal operating conditions remains limited. This study developed a computational fluid dynamics (CFD) model integrating the kinetic theory of granular flows (KTGF), the Euler-Euler method, and the shear stress transport (SST) model to simulate ice slurry flow and wall shear stress distribution. The model was validated against experimental data, showing a 6.4% error in particle concentration distribution, a 3.3% average error in solid-phase velocity in the mainstream region, and a pressure drop error within 20%. A total of 125 simulations were performed under varying initial concentrations (20%–60%), particle diameters (0.3–1.0 mm), and flow velocities (0.2–1.0 m/s). Results indicate that higher initial concentrations (60%) achieve effective cleaning of both upper and lower pipe walls, with an effective shear stress ratio of 77.39%. Larger particles exhibit pronounced upward movement, increasing non-uniformity in solid distribution. Flow velocity is the dominant factor affecting wall shear stress; at 1.0 m/s, the effective shear stress ratio reaches 83.16%. The optimal parameters for cumulative shear stress were identified as 50% initial concentration, 0.5 mm particle diameter, and 1.0 m/s flow velocity, yielding an average cumulative shear stress of 11.59 Pa·s. For effective cumulative shear stress, the same parameters produced 9.89 Pa·s, while the highest effective shear stress ratio (88.50%) was achieved with 0.3 mm particles at 1.0 m/s and 50% concentration. This research provides theoretical guidance for ice slurry pigging operations in water supply pipelines.
Journal of Environmental Engineering Technology•2026•DOI: 10.13205/j.hjgc.202604017
The Shule River Basin, a typical arid inland river basin, faces critical water scarcity that threatens ecological security and sustainable development. This study integrated the FLUS and InVEST models to simulate water yield in 2030 and 2050 under three climate scenarios (SSP119, SSP245, SSP585). Geographic detectors quantified the driving mechanisms of natural and human factors. Results showed: (1) Desert dominates land use (78.6% in 2020). Under SSP119, desert area decreases by 0.69% by 2050, while under SSP585 it expands by 5.7%, with grassland loss of 23.0%, indicating severe ecological degradation. (2) Water yield exhibits a south-high, north-low spatial pattern, with high values in glacier-covered and high-altitude areas. SSP119 yields the most significant increase (147.6×10^8 t by 2050), whereas SSP585 shows minimal increase (43.9×10^8 t) due to extreme climate. (3) Precipitation and DEM are core driving factors; the interaction between land use type and precipitation has the strongest influence, implying that artificial land use changes can significantly regulate water yield. This multi-scenario framework provides decision support for water resource management and ecological governance in arid inland river basins.
Journal of Environmental Engineering Technology•2026•DOI: 10.13205/j.hjgc.202604025
To meet the minute-level early-warning requirements for odor and multi-pollutant emissions at waste treatment facilities, this study proposed a multivariate short-term time-series prediction framework applicable to multi-tier scenarios covering source and boundary points (i.e., workshops and plant boundaries). Based on continuous online monitoring data with a 5-second resolution, a long short-term memory (LSTM) model using a sliding-window and recursive multi-step prediction strategy was constructed to jointly model odor concentration (OU) and pollutants including VOCs, NH3, H2S, and CH3SH (mg/m³). An evaluation protocol aligned with environmental supervision practice was established, incorporating mean absolute error (MAE), root mean square error (RMSE), goodness-of-fit (R²), skill scores (SS) relative to a persistence baseline, and threshold-based error stratification to characterize uncertainty during peak emission periods. The results showed that at workshop monitoring sites with relatively stable operating conditions, VOCs, NH3, H2S, and CH3SH exhibited a high goodness of fit and low prediction errors. In contrast, at boundary sites affected by plume arrival delays and diffusion-dilution non-stationarity, OU and VOCs displayed significantly amplified errors during peak episodes, and the skill score advantage over the baseline became unstable at certain sites. Stratified analysis consistently revealed that non-peak periods outperformed peak periods, indicating that event-driven fluctuations were the main sources of error. Accordingly, this study suggested incorporating exogenous variables such as wind speed and direction, ventilation and gate access control, and operational rhythms, along with peak-sensitive loss functions, into the model to enhance its capacity to characterize and provide early warnings for transient emission pulses. Overall, this study established a reusable methodological baseline and evaluation paradigm for minute-scale multi-pollutant prediction, providing quantitative support for the operational management and source-to-boundary coordinated control of waste treatment facilities.
The Chinese Journal of Process Engineering•2026•DOI: 10.12034/j.issn.1009-606X.225221
The proliferation of lithium-ion batteries (LIBs) in portable electronics and electric vehicles has generated a pressing need for sustainable recycling of spent batteries. Conventional pyrometallurgical and hydrometallurgical routes suffer from low metal recovery efficiencies or require additional precipitants. This study introduces a clean and efficient process for recovering lithium (Li) and cobalt (Co) from spent LiCoO2 cathode materials using a choline chloride-oxalic acid-water (ChCl-OA-H2O) deep eutectic solvent (DES). The method exploits selective precipitation of Co as cobalt oxalate dihydrate (CoC2O4·2H2O) followed by water-content-regulated recovery of Li as lithium oxalate (Li2C2O4) via evaporation crystallization, eliminating the need for external precipitants. Under optimized conditions (molar ratio 1:1:8, solid-liquid ratio 100 g/L, 90 °C, 6.5 h), the leaching efficiency of Li reached 99.4%, with recovery efficiencies of 88.3% for Li and 97.8% for Co. The DES system demonstrated robust cycling stability, maintaining Li and Co recoveries of 78.1% and 92.8% after six regeneration cycles. This work provides a low-pollution, economically viable pathway for LIB recycling, contributing to resource sustainability and offering significant industrial potential.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3599-5
Layered transition metal tellurides (TMTs) are promising cathode materials for aqueous zinc ion batteries (AZIBs) due to their graphite-like layered structure and weak van der Waals interactions, which facilitate rapid ion transport. However, their holistic performance—specific capacity, rate capability, and cycling stability—remains insufficient for practical applications. Here, we report a straightforward NaBH4-assisted chemical etching method to introduce abundant Te vacancies on the surface of Bi2Te3 (denoted H-Bi2Te3). Experimental and theoretical analyses reveal that these Te vacancies refine the band structure, enhance electrical conductivity, and significantly reduce the diffusion barrier for Zn2+ ions. Additionally, the vacancies provide increased storage sites for Zn ions. Consequently, H-Bi2Te3 exhibits superior zinc storage performance: a high Zn2+ diffusion coefficient of 3.98×10−11 cm2 s−1, a specific capacity of 325 mAh g−1 at 0.1 A g−1, a rate capability of 217 mAh g−1 at 1 A g−1, and exceptional cycling stability with 70 mAh g−1 retained after 10,000 cycles at 1 A g−1. This work introduces a novel vacancy defect engineering strategy for TMT-based cathodes in AZIBs and expands the potential applications of vacancy-rich TMT materials.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3778-8
The global surge in polyvinyl chloride (PVC) waste demands urgent technological solutions that address both environmental persistence and resource recovery. Here, we present a triple-functionalization strategy that converts chlorinated plastic waste into high-performance sodium-ion battery anodes through molecular-level control of carbon architectures. Sequential dichlorination, sulfonation, and N-doping collaboratively reconfigure precursor reactivity, steering pyrolysis toward hierarchically porous hard carbon with tailored defect chemistry. Sulfonic groups stabilize 3D carbon skeletons during carbonization, enabling closed-pore formation with an average diameter of ~2.55 nm while N-doping expands interlayer spacing (0.382 nm) and creates adsorption-active pyrrolic-N sites. This defect-engineered synergy delivers unprecedented sodium storage metrics: 355 mAh g−1 reversible capacity at 0.1 A g−1 (95.4% of graphite’s Li-ion capacity), a capacity retention of 216 mAh g−1 after 1000 cycles at 1.0 A g−1 (70.1% capacity retention), and 188 mAh g−1 even at a high current density of 5.0 A g−1. Operando analyses reveal a potential-dependent storage hierarchy: surface-dominated adsorption transitions to intercalation/filling-dominated behavior with defect-buffered structural integrity. The process simultaneously achieves 25% carbon yield from PVC and avoids toxic dioxin emissions, establishing a scalable prototype for sustainable energy storage systems.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3857-1
High-Be Cu-Be alloys exhibit dendritic segregation and brittle β/γ phases, complicating processing and applications. This study investigates the influence of cooling path on eutectoid transformation, microstructure, and mechanical properties in Cu-2.8Be and Cu-3.8Be alloys. A two-step homogenization treatment effectively eliminates segregation and suppresses the formation of harmful acicular phases. Diffusion-kinetic and thermodynamic analyses demonstrate that both the initial temperature and cooling rate determine eutectoid morphology and extent. Crystallographic and Eshelby-based analyses reveal that the β → γ transformation involves an isotropic contraction of ~3.9%, producing much lower strain energy than the anisotropic β → α transformation (~28.5% expansion and ~9.2% contraction), thus explaining the preferential nucleation of γ. Rapid cooling promotes incomplete eutectoid decomposition along grain boundaries, forming fine α/γ lamellae with interlamellar spacing down to ~7 nm. Lattice strain analysis confirms considerable distortions at α/γ interfaces (ε_xx = 0.0167, ε_yy = 0.0095). The mechanical incompatibility and high internal strain at these interfaces cause stress concentration and crack initiation. This work establishes a process-microstructure-property-mechanism framework essential for controlling the performance of high-Be Cu-Be alloys.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3464-4
Photocatalytic conversion of atmospheric CO2 (0.03%) into multi-carbon fuels remains a grand challenge due to the high energy barrier of C–C coupling and the low concentration of CO2. Here, we report the construction of multiple metal pair sites on metal oxide nanosheets to steer C–C coupling, enabling efficient photoreduction of air-concentration CO2 to ethane (C2H6). As a prototype, Au nanoparticles were anchored on Bi4Ti3O12 nanosheets (Au-Bi4Ti3O12). High-resolution transmission electron microscopy and X-ray photoelectron spectroscopy confirmed the formation of Au-Ti metal pair sites at the interface. In situ Fourier transform infrared spectroscopy revealed the presence of *OCCOH intermediate on Au-Bi4Ti3O12 during CO2 photoreduction, which was absent on pristine Bi4Ti3O12. Density functional theory calculations showed that the Gibbs free energy for *CO–COH formation on Au-Bi4Ti3O12 is 2.23 eV, significantly lower than that on Bi4Ti3O12 (3.59 eV), indicating facilitated C–C coupling. Consequently, Au-Bi4Ti3O12 exhibited a C2H6 evolution rate of 2.58 μmol g−1 h−1 under 0.03% CO2, whereas Bi4Ti3O12 produced only C1 products (CO and CH4). This work demonstrates the first single-catalyst photoreduction of atmospheric CO2 to C2H6, highlighting the effectiveness of engineered multiple active sites in overcoming the C–C coupling bottleneck.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3640-3
Cancer immunotherapy, particularly small-molecule immune checkpoint inhibitors (ICIs), offers low cost and high tumor diffusion but suffers from limited efficacy and systemic toxicity. Here, we engineered non-pathogenic Escherichia coli MG1655 for tumor-targeted and synergistic photothermal immunotherapy. Polydopamine (PDA) was coated onto the bacterial surface via in situ polymerization, followed by noncovalent attachment of the IDO-1 inhibitor NLG919, yielding MG1655@PDA-NLG. The functionalized bacteria retained viability and bioactivity while exhibiting outstanding photothermal conversion. In a murine CT26 colon tumor model, intravenous injection led to effective tumor accumulation within 12 h and complete clearance from major organs by 72 h, with negligible hematological toxicity, confirming hypoxic tumor-targeting and biosafety. Under near-infrared irradiation, the engineered bacteria inhibited tumor growth by over 90%, combining photothermal effect and immunogenic cell death (ICD) to promote dendritic cell maturation. This synergized with suppression of tryptophan metabolism, enhancing CD4+ and CD8+ T cell infiltration. This work demonstrates a simple, safe strategy for surface engineering of bacteria with multiple therapeutic agents, offering a promising approach for precise and combined cancer immunotherapy.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3856-0
Replacing the kinetically sluggish oxygen evolution reaction (OER) with biomass oxidation at photoanodes offers a cost-effective and energy-efficient route for simultaneous hydrogen production and value-added chemical synthesis in a photoelectrochemical (PEC) cell. Here, titanium-doped hematite nanorods (Hem) decorated with CoNi bimetallic zeolitic imidazolate frameworks (ZIF) were prepared via room-temperature deposition and employed as photoanodes for 5-hydroxymethylfurfural (HMF) oxidation. Using 2,2,6,6-tetramethylpiperidine-1-oxyl (TEMPO) as a redox mediator in alkaline electrolyte, the CoNi-ZIF/Hem photoanode achieved a photocurrent density of 1.09 mA cm−2 at a low bias of 1.1 V vs. reversible hydrogen electrode (RHE). Experimental results and theoretical calculations reveal that CoNi-ZIF accelerates charge transfer and separation, and enhances TEMPO adsorption on the surface, benefiting PEC TEMPO-mediated HMF oxidation to 2,5-furandicarboxylic acid (FDCA). In a flow-cell reactor under 1 sun illumination, the photoanode achieved ~99% HMF conversion and ~98% FDCA yield within 2 hours. The photoanode also exhibited excellent performance for TEMPO-mediated oxidation of various aldehyde-containing biomass-derived compounds. This work demonstrates a rational design of hematite-based photoanodes for efficient biomass valorization coupled with hydrogen production.
New Carbon Materials•2026•DOI: 10.1016/S1872-5805(26)61109-2
Silicon-carbon (Si/C) composites are promising high-capacity anode materials for next-generation lithium-ion batteries, but their commercialization is hindered by severe volume expansion during cycling. We report a chemical vapor deposition method using the pyrolysis of silane, in which ultrafine nano-Si enters a porous carbon framework to produce kilogram-scale Si/C composites. The carbon framework with abundant micropores (~1.9 nm) confines the amorphous silicon and accommodates the volume changes of nano-Si during both lithiation and de-lithiation. The resulting Si/C composites have a 56.76% Si content and have a specific capacity of 2179 mAh g–1, a high initial Coulombic efficiency (ICE) of 93.5%, and a low specific surface area (1.32 m2 g–1). In addition to the nanoconfinement effect, the median particle size (D50, 7.3-13.0 μm) of the carbon framework was shown to control the mechanical strength, coating uniformity and Li+ transport. A D50 of 8.2 μm endows the Si/C composites with outstanding comprehensive properties. They have an excellent rate performance with a 97.0% retention at 3 C relative to 0.1 C, show only minor variations in ICE difference at 60 ℃/-20 ℃ compared with room temperature, and have a low expansion of 35.8% from the delithiated to the lithiated state. The composite was then mixed with graphite to prepare the anode, which was then paired with an NCM523 cathode to assemble pouch cells. The pouch cell retained 87.46% of its initial capacity after 1000 cycles at 1 C. Because of the low expansion of the electrode, the material avoids structural degradation during cycling and thus has an excellent long-term stability.
New Carbon Materials•2026•DOI: 10.1016/S1872-5805(26)61106-7
Hard carbon anodes for sodium-ion batteries suffer from limited capacity, low initial Coulombic efficiency, and poor long-term cycling stability. To address these issues, we report a dual-stabilization strategy that combines micropore confinement and chemical bonding to control sulfur species in coal-derived hard carbon. Bituminous coal, with its naturally condensed aromatic framework, serves as the carbon precursor. A two-step thermal process first constructs a microporous carbon framework, followed by gas-phase sulfidation to introduce sulfur. The sulfur is confined within micropores and forms stable covalent C–S bonds with the carbon matrix, providing synergistic physical–chemical stabilization. This suppresses sulfur migration, prevents interfacial side reactions, and introduces additional redox-active sites. The optimized sample (HC-10) delivers a high reversible capacity of 450 mAh/g after 800 cycles at a current density of 1 A/g, with excellent rate capability and cycling stability. Mechanistic analysis reveals that the stabilized sulfur species reversibly participate in sodium-ion storage and improve interfacial kinetics. This work provides an effective strategy for stabilizing sulfur in coal-derived carbon materials and offers insights into the design of high-performance anodes for sodium-ion batteries.
Chinese Journal of Environmental Engineering•2026•DOI: 10.12030/j.cjee.202508021
Coal chemical industry waste salt, generated from high-salinity wastewater treatment, poses a bottleneck for green transformation under the 'dual carbon' strategy due to its low value and high complexity. This study investigated a typical coal chemical industrial park in Northwest China, using principal component analysis (PCA) on actual waste salt samples to identify pollutant characteristics and assess resource utilization potential. Results showed total organic carbon (TOC) ranged from 707.9 to 7,737.9 mg·kg⁻¹, with benzo(a)pyrene concentrations frequently exceeding the limits of the 'Identification Standards for Hazardous Wastes' (GB 5085.3). Hardness ions and metal ions also surpassed relevant product standards. PCA classified the waste salts into three types: sodium sulfate type, sodium chloride type, and high-complexity mixed salt, each corresponding to distinct resource utilization pathways. The study proposes differentiated technical routes based on PCA classification, providing a feasible reference for classified management and technology selection. This research supports the national policy of 'harmless pretreatment + resource utilization' for waste salt, contributing to green and high-quality development of the coal chemical industry.
Chinese Journal of Environmental Engineering•2026•DOI: 10.12030/j.cjee.202508050
This study investigated the spatial distribution and ecological risk of heavy metals (As, Cd, Cr, Cu, Ni, Pb, Zn) in soil beneath an informal waste dump in a pastoral area of Baingoin County, Nagqu City, Tibet, a high-altitude cold region with frequent freeze-thaw cycles. A total of 55 soil samples were collected from surface (0 cm), middle (10-30 cm), and deep (50 cm) layers. Single-factor index (Pi), geo-accumulation index (Igeo), Nemerow index (PN), and risk assessment code (RAC) were employed to evaluate contamination levels and potential ecological risks, while Kriging interpolation was used to map spatial distribution. Results showed that average concentrations of all seven heavy metals exceeded local background values. Horizontally, high-concentration zones were mainly located at five points within the dump. Vertically, Cd, Cu, Pb, and Zn were significantly enriched in the surface layer, whereas Ni exhibited higher concentrations in deeper layers, indicating downward migration driven by freeze-thaw processes. All evaluation methods identified Cd as the primary pollutant. Speciation analysis revealed that heavy metals were predominantly in the residual fraction, with Ni having the highest weak-acid-extractable fraction (5.55%), indicating strong mobility and potential biological toxicity. This study fills a gap in systematic research on informal waste dumps in high-altitude ecologically fragile areas and provides a case reference for environmental management and remediation of such sites in cold regions.
Chinese Journal of Environmental Engineering•2026•DOI: 10.12030/j.cjee.202508047
Selective recovery of aluminum compounds from fly ash is a key route for its high-value utilization. This study developed a multi-stage activation process for extracting Al(OH)3 from fly ash, comprising mechanical activation, calcination activation, chemical separation, and carbonation precipitation. Fly ash was mixed with carbide slag and CaF2, then calcined; the resulting clinker was leached with Na2CO3 solution to extract Al. The CaO generated from high-temperature calcination of carbide slag facilitated the separation of Si and Al. After solid-liquid separation, CO2 was introduced into the Al-rich leachate to precipitate Al(OH)3. The process promoted the formation of Ca12Al14O32F2 and inert Ca2SiO4, achieving efficient Si-Al separation during calcination. Under optimal conditions (mechanical activation for 60 min, 4% CaF2, calcination at 1000°C for 2 h, leaching with 40 g/L Na2CO3), the Al extraction rate reached 91.8%, and the product purity was 98.9%. The alumina extraction residue exhibited porous and highly reactive characteristics, suitable for producing flame-retardant materials or high-value silicon-based products (e.g., white carbon black, molecular sieve adsorbents). The process offers a promising industrial route for fly ash valorization, with potential integration with cement production lines for synergistic CO2 capture and utilization.
Journal of Fuel Chemistry and Technology•2026•DOI: 10.1016/S1872-5813(25)60630-X
Chemical looping methane steam reforming (CL-MSR) enables sequential production of high-selectivity syngas and high-purity hydrogen via redox cycling, yet single iron-based oxygen carriers suffer from poor cycling stability, low reactivity, and sintering. This study modified Fe2O3/Al2O3 oxygen carriers with Cu, La, and Ce additives via dip-coating, and systematically characterized their physicochemical properties, reactivity, and hydrogen production performance. Results showed that spinel-phase CuFe2O4 exhibited higher reactivity than perovskite LaFeO3 and CeO2, promoting deeper reduction of Fe2O3. Fe58Cu2Al achieved an oxygen storage capacity of 6.5 mmol/g. During CH4 reaction, Fe58Cu2Al exhibited the highest oxygen loss of 12.1 g/100 g oxygen carrier, with syngas yield of 5.15 mmol/g—1.33 and 1.59 times that of Fe60Al. In hydrogen production, the 2% Cu-modified carrier yielded 5.13 mmol/g H2, 1.51 times that of pristine Fe60Al, with purity exceeding 98%. After ten cycles, H2 yield remained at 3.61 mmol/g, surpassing the single-cycle output of pristine Fe60Al (3.39 mmol/g), demonstrating superior dispersion and coking resistance. The study establishes Cu modification as an effective strategy to enhance reactivity and cyclic stability of iron-based oxygen carriers for CL-MSR hydrogen production.
Journal of Fuel Chemistry and Technology•2026•DOI: 10.1016/S1872-5813(25)60612-8
Coal gasification fine slag (CGFS) is a solid waste generated in large quantities during coal gasification, containing residual carbon and inorganic ash rich in SiO2, Al2O3, CaO, Fe2O3, and MgO. The carbon-rich components (CGFS-H) of CGFS, typically comprising 20–50% residual carbon, present both environmental challenges and opportunities for resource recovery. This study systematically investigates the selective leaching behavior of Fe3+, Al3+, and Ca2+ from CGFS-H using three organic acid extractants: citric acid, tartaric acid, and tetrasodium iminodisuccinate (IDS-4Na). The results demonstrate distinct selectivity: IDS-4Na exhibits the highest leaching yield and selectivity for Fe3+, achieving a single leaching yield of 41.2% while suppressing Ca2+ and Al3+ leaching to below 4%, with a selectivity ratio of Fe3+ to Al3+ and Ca2+ of 10.73. Tartaric acid effectively leaches both Fe3+ and Al3+, with single yields of 38.7% and 33.5%, respectively, while Ca2+ leaching remains below 5%, yielding a selectivity of Fe3+ and Al3+ relative to Ca2+ of 14.73. Citric acid preferentially leaches Ca2+, achieving a single yield of 71.5%, but also leaches Fe3+ and Al3+ at 35.2% and 39.1%, respectively, resulting in a low selectivity ratio of Ca2+ to Fe3+ and Al3+ of 0.96. Based on these selective affinities, a green stepwise separation method was developed using sequential leaching with IDS-4Na, tartaric acid, and citric acid. Under optimal conditions, cumulative leaching yields of 79.8% for Fe3+, 65.08% for Al3+, and 78.6% for Ca2+ were achieved. XRD, XRF, and SEM analyses elucidate the complexation mechanisms, indicating that the synergistic effects of selective coordination between structurally diverse organic acids and metal ions drive the process. This advancement provides a critical foundation for developing Ca/Fe/Al hydrotalcite materials using CGFS-H as a sustainable feedstock, promoting resource-efficient utilization of coal gasification fine slag.
Chinese Journal of Environmental Engineering•2026•DOI: 10.12030/j.cjee.202510028
This study investigates the aging mechanism of polystyrene microplastics (PS MPs) induced by ultraviolet (UV)-activated potassium persulfate (KPS) and its influence on the adsorption of norfloxacin (NOR). Results show that aged PS exhibited yellowing, increased surface roughness and specific surface area, enhanced oxygen-containing functional groups, and elevated negative surface charge, along with the generation of environmentally persistent free radicals (EPFRs). Compared with UV alone, UV+KPS induced more pronounced aging due to the generation of reactive oxygen species (ROS) including hydroxyl radicals (·OH) and superoxide radicals (O2·−). Adsorption kinetics and isotherm data revealed that UV+KPS-aged PS significantly enhanced NOR adsorption, with a maximum adsorption capacity of (2.539±0.032) mg·g−1, which was 4.20 times higher than that of pristine PS. The adsorption mechanism was governed by hydrogen bonding, electrostatic interactions, and pore filling. Solution pH modulated the electrostatic interactions by affecting NOR speciation and PS surface charge, thereby influencing NOR adsorption. This study systematically reveals the accelerated aging of coexisting MPs and EPFRs generation during UV+KPS treatment, contributing to a comprehensive understanding of MPs environmental behavior and potential ecological risks.
Environmental Chemistry•2026•DOI: 10.7524/j.issn.0254-6108.2025010201
The Guanzhong region, traversed by the Wei River Basin, is one of the most industrially, agriculturally, and medically advanced and densely populated areas in Northwest China, has seen increasing attention paid to the pollution of perfluoroalkyl substances (PFASs) in its surface water environment. This study systematically investigated the pollution characteristics of PFASs in the surface water of this region and their ecological and health risks. By optimizing the online solid-phase extraction-liquid chromatography-tandem quadrupole mass spectrometry (Online SPE-LC/MS/MS), efficient detection of 19 PFASs was achieved, with the method detection limits ranging from 0.2 ng·L−1 to 0.3 ng·L−1, linear correlation coefficients all ≥ 0.990, and spiked recoveries between 75.2% and 130.0%. Monitoring data indicated that PFBA, PFPeA, PFHxA and PFOS, short-chain perfluorinated compounds, were the main pollutants in this region, with high detection frequencies and concentrations, but the overall content was lower than that in most areas of China. The concentrations of PFASs in surface water showed significant seasonal variations, with the highest concentrations during the dry season (∑19PFASs:126.1 — 2584.3 ng·L−1), followed by the normal season (∑19PFASs:3.5—3567.6 ng·L−1), and the lowest during the wet season (∑19PFASs:26.3—294.6 ng·L−1). Ecological risk assessment showed that, except for PFDoDA in the dry season, the ecological risk quotient (RQ) of all other PFASs was < 1. Although the water of the Wei River is not used as direct drinking water, health risk assessment indicated that all PFASs posed low risks, with only PFOA and PFOS showing potential risks (HR > 0.1) to adults and children at some sites during dry/normal seasons. This study provides a scientific basis for PFASs pollution control in the Wei River Basin.
Environmental Chemistry•2026•DOI: 10.7524/j.issn.0254-6108.2025011302
Heavy metal contamination in soil severely compromises the quality and safety of Alisma orientale medicinal materials, and consumption of contaminated herbal preparations poses health risks. To characterize contamination and risks in Sichuan's genuine producing areas, 159 paired soil and plant samples were collected. Concentrations of Cu, Zn, Pb, Cd, and Ni were determined via ICP-OES. Soil pollution was assessed using the Single Pollution Index (Pi), Nemerow Comprehensive Index (Pn), and Potential Ecological Risk Index (RI). Human health risks from heavy metals in Alisma were evaluated via Target Hazard Quotient (THQ) and Hazard Index (HI). Mean soil concentrations were Cu 29.57, Zn 61.86, Pb 29.51, Cd 1.77, and Ni 28.08 mg·kg−1. Except for Cd, all elements were below agricultural soil screening values. Pi and Pn confirmed Cd contamination, with Cd posing slight to strong potential ecological risks. Cu, Cd, Pb, and Ni showed highly significant positive correlations, indicating common origins. Heavy metal concentrations in Alisma did not exceed pharmacopeial limits. The plant exhibited strong Zn enrichment but weak accumulation of Cu, Cd, and Pb, and negligible Ni enrichment. THQ and HI values indicated no potential health risks under current exposure. Quantitative assessment is critical for soil pollution control, safe cultivation, and medication safety.
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.0254-6108.2024042404
The direct catalytic decomposition of the greenhouse gas N2O into nitrogen and oxygen holds significant environmental importance. In this study, CaO-modified Rh-based catalysts were prepared via a stepwise impregnation method. The catalyst structures were characterized, and their catalytic performances for N2O decomposition were investigated. The characterization results demonstrate that CaO doping significantly enhances catalytic activity and water resistance. Specifically, the 0.5Rh/Al2O3 catalyst exhibited a N2O conversion below 5% at 300 °C, whereas the 0.5Rh-4Ca/Al2O3 catalyst achieved 50% conversion under identical conditions, indicating markedly improved low-temperature activity. Compared to the undoped catalyst (0.5Rh/Al2O3), CaO doping (0.5Rh-xCa/Al2O3) strengthens metal-support interactions, improves Rh dispersion on the support surface, and modulates the electron density around Rh, thereby substantially boosting N2O decomposition capability. The catalyst also demonstrated excellent stability, maintaining essentially constant conversion over 40 h of reaction. These findings underscore the potential of alkaline earth metal oxide doping as an effective strategy for designing high-performance noble metal catalysts for N2O abatement.
Environmental Chemistry•2026•DOI: 10.7524/j.issn.0254-6108.2025111302
High-concentration chloride ions (Cl−) in industrial wastewater cause severe corrosion and environmental hazards. Conventional removal methods suffer from low efficiency, high cost, and difficulty in product recovery. This study fabricated porous metallic bismuth-based blocks (Bi-PM) via 3D printing, combining chemical precipitation with additive manufacturing. Systematic evaluation of Cl− removal under varying pH and light irradiation revealed that at pH 0.1 and 0.5, dark-condition efficiencies were 53.6% and 31.0%, respectively, increasing to 69.3% and 38.1% under light. Radical trapping identified photogenerated holes as the primary active species, oxidizing metallic Bi to release Bi3+ and enhance precipitation. At pH 0.5, Bi-PM exhibited balanced efficiency and structural stability; over five cycles, average removal efficiency was 25% in darkness versus 41.2% under light, with superior stability under illumination. XRD and SEM confirmed abundant BiOCl formation on the surface under light, mitigating Bi loss. This approach ensures high chloride removal while minimizing material degradation, offering a novel pathway for industrial wastewater treatment.
Journal of Environmental Engineering Technology•2026•DOI: 10.13205/j.hjgc.202605001
The lower reaches of the Yangtze River Basin, as a concentrated area of China's C5 petroleum resin industry, face critical bottlenecks in green and low-carbon transformation due to high-pollution, refractory wastewater and high carbon emissions. Traditional petrochemical wastewater treatment technologies suffer from low efficiency, high energy consumption, and insufficient resource utilization. This paper systematically analyzes the sources of wastewater in C5 petroleum resin production from principles and processes, and reviews research progress and carbon reduction potential of current technologies in three aspects: new materials, new equipment, and new processes. Integrated processes centered on efficient pretreatment, biological enhancement, and multi-technology coupling show significant advantages in improving treatment efficiency, reducing energy consumption and cost, and strengthening resource recovery. The study also prospects future research priorities for pollution and carbon mitigation through green technological innovation and intelligent upgrading, providing new solutions for 'near-zero discharge' and resource recycling of C5 petroleum resin wastewater, thereby promoting the green and low-carbon transformation of the petrochemical industry.