SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4500-8
Electroreduction of CO2 to ethylene offers a promising route for renewable electricity storage, yet achieving high ethylene selectivity at industrial current densities remains challenging due to the large energy barrier for C–C coupling. Here, we report a “MOF-assisted in situ doping” strategy to introduce the oxophilic nonmetal phosphorus (P) into the copper oxide (CuO) lattice, constructing a localized Cu–P dual-site adsorption configuration for the key *OCCHO intermediate. The optimized catalyst delivers an impressive Faradaic efficiency of 64.6% for ethylene with a partial current density of 646 mA cm-2. Comprehensive structural characterizations demonstrate that P mainly occupies Cu sites, generating abundant lattice defects and oxygen vacancies. In situ synchrotron infrared spectroscopy and theoretical calculations reveal that P doping modulates the electronic structure of Cu, optimizes the binding energies of *CO and *CHO, and stabilizes *OCCHO via P–O/Cu–C dual-site adsorption, thereby significantly lowering the asymmetric C-C coupling energy barrier to 0.74 eV. This work highlights a dual-site microenvironment regulation strategy for CO2-to-ethylene electroreduction.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4476-1
Self-sustained oscillation in soft actuators enables autonomous, untethered robotic locomotion, yet existing light-driven systems suffer from low oscillation frequencies, rapid photothermal degradation, and reliance on external controllers. This work presents a bat-inspired soft robot that converts continuous near-infrared (NIR) irradiation into sustained rotational motion via a coiled MXene-based liquid crystal elastomer (LCE) actuator. The actuator integrates Ti3C2Tx MXene nanosheets as photothermal converters within an LCE matrix, achieving a photothermal conversion efficiency of 78.3% and a steady-state temperature of 142 °C under 1.5 W cm−2 NIR (808 nm). The coil geometry induces a self-shadowing effect that generates periodic light exposure, producing autonomous oscillation at 2.7 Hz with an amplitude of 45°. The robot demonstrates a rotational speed of 120 rpm and a specific power density of 3.2 W kg−1, outperforming previously reported light-driven oscillators by a factor of 2.5. Under continuous operation for 10,000 cycles, the actuator retains 92% of its initial oscillation amplitude, with a degradation rate of 0.008% per cycle. The bat-inspired wing morphology enables directional rotation and obstacle avoidance in confined spaces. This platform eliminates the need for external modulation, offering a scalable route to autonomous soft robotics for inspection, environmental monitoring, and micro-manipulation.
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/s40843-026-4447-3
Chargeable photoconductivity, a non-volatile photoresponse phenomenon, was investigated in multiferroic heterostructures comprising Bi0.85La0.15FeO3 (BLFO) and a quasi-two-dimensional electron gas (Q2DEG). Two device architectures, LSMO/BLFO/Q2DEG and Pt/BLFO/Q2DEG, were fabricated and characterized under varying electrical connection conditions between the top electrode and the Q2DEG during illumination and dark waiting stages. Current-voltage (I-V) measurements reveal that the heterostructures exhibit persistent photoconductivity after illumination, with the magnitude and retention dependent on the circuit configuration. Under open/open conditions, the photocurrent increases with illumination duration, and subsequent dark waiting leads to a gradual decay, indicating charge storage and release mechanisms. The LSMO/BLFO/Q2DEG heterostructure demonstrates superior chargeable photoconductivity compared to the Pt counterpart, attributed to the oxygen vacancy migration and interfacial polarization effects. These findings establish a foundation for oxide-based photoelectric memory devices with potential for low-power, non-volatile optoelectronic applications. The results provide critical insights into the interplay between ferroelectric polarization, oxygen vacancy dynamics, and charge trapping at the BLFO/Q2DEG interface, offering a pathway for designing advanced multiferroic optoelectronic devices.
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/s40843-026-4468-6
The proliferation of multispectral detection platforms demands materials that simultaneously satisfy electromagnetic interference (EMI) shielding and infrared (IR) camouflage without compromising radio-frequency (RF) transmission. Conventional MXene films exhibit exceptional EMI shielding (>40 dB) but suffer from high IR emissivity and severe RF reflection, precluding integration with wave-transmitting arrays. This work introduces liquid metal (LM)-modified MXene composite films engineered via structural patterning to decouple optical, IR, and RF responses. The LM phase, dispersed within the MXene interlayer galleries, reduces free-electron density and tailors the dielectric loss, while a periodic array architecture creates impedance-matched windows for RF transmission. The resulting films achieve an EMI shielding effectiveness of 36 dB at 510 µm thickness, with a low IR emissivity of 0.36 and an RF transmittance exceeding 80% in the X-band. The patterning strategy suppresses surface current continuity, mitigating the trade-off between shielding and transmission. These metrics represent a 20% improvement in IR camouflage and a 15% enhancement in RF transparency relative to pristine MXene films. The composite films also demonstrate mechanical flexibility, retaining 95% of initial conductivity after 1,000 bending cycles. This work establishes a scalable route for multispectral-compatible materials critical for next-generation stealth and communication systems.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4502-1
Near-infrared-II (NIR-II, 1000-1700 nm) luminescent materials are pivotal for deep-tissue bioimaging and optical communication, yet their performance is often limited by low quantum yields and thermal quenching. Here, we report a thermal-enhanced NIR-II luminescence in Sb3+/Er3+ co-doped Cs3GdCl6 microcrystals synthesized via a modified Bridgman method. Under ultraviolet excitation, the co-doped microcrystals exhibit intense NIR-II emission centered at 1532 nm corresponding to Er3+: 4I13/2 → 4I15/2 transition, with a maximum relative sensitivity of 1.2% K−1 at 303 K. Notably, the integrated NIR-II emission intensity increases by 2.3-fold from 298 K to 373 K, demonstrating anomalous thermal enhancement. This behavior is attributed to the thermally activated energy transfer from Sb3+ sensitizers to Er3+ activators, as confirmed by temperature-dependent photoluminescence spectra and decay kinetics. The energy transfer efficiency reaches 86% at room temperature and further improves with rising temperature. The microcrystals also show excellent photostability, retaining 95% of initial intensity after 120 min continuous UV irradiation. Furthermore, we demonstrate a proof-of-concept wireless optical communication link using the microcrystals as a NIR-II phosphor, achieving a signal-to-noise ratio of 30 dB at 400 Hz modulation frequency. These findings provide a new strategy for designing thermal-enhanced NIR-II luminescent materials and expand their potential in temperature sensing and optical communication.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4290-9
Thermoelectric materials enable direct and reversible conversion between heat and electricity, offering unique advantages for waste heat recovery, solid-state refrigeration, and deep-space power systems. The performance is evaluated by the dimensionless figure of merit, zT = S²σT/κ, where S is the Seebeck coefficient, σ is the electrical conductivity, T is the absolute temperature, and κ is the total thermal conductivity. Achieving high zT requires simultaneous realization of a large power factor (S²σ) and low thermal conductivity. However, these parameters are intrinsically coupled, posing a fundamental challenge. PbTe is a representative thermoelectric material operating in the intermediate temperature range, with outstanding performance originating from its unique electronic band structure featuring multiple nearly degenerate valence band maxima near the L points. Band convergence via alloying with mono-tellurides such as MgTe, MnTe, CdTe, YbTe, SrTe, and EuTe effectively modifies the valence band structure, increasing band degeneracy and density-of-states effective mass, thereby enhancing electrical conductivity without decreasing the Seebeck coefficient. However, increasing the content of these mono-tellurides limits acceptor dopability, making conventional dopants like Na difficult to incorporate. This study demonstrates that co-doping strategies can preserve dopability while achieving band convergence and dislocation engineering, leading to significantly reduced lattice thermal conductivity and extraordinary peak zT values. The decoupling of electronic and thermal transport through this approach offers a promising route for high-performance thermoelectrics.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4376-3
Single-molecule localization microscopy (SMLM) surpasses the diffraction limit to achieve molecular-scale resolution, but conventional probes suffer from photobleaching, limiting imaging duration. In a recent Nature Photonics article, Ren and co-workers introduced spontaneous photoblinking upconversion microscopy (SPUM) using Yb3+/Ho3+ co-doped core–shell–shell upconversion nanoparticles (UCNPs, NaYF4@NaYb/HoF4@NaLuF4). These UCNPs exhibit exceptional photostability and persistent, reversible blinking under 976 nm continuous-wave excitation, with negligible photodegradation. The blinking mechanism involves a Yb3+ multiphoton process coupled with defect-mediated energy trapping, switching the UCNPs between emissive (on) and non-emissive (off) states. Kinetic analysis revealed single-exponential bright-state dwell times and biexponential dark-state dwell times, indicating one decay pathway into a non-emissive state and two recovery pathways. In live-cell imaging, synchronized transport of UCNPs maintained constant interparticle distance and near-unity positional correlation. In fixed cells, Fourier ring correlation (FRC) resolution reached 30 nm, confirming sub-50 nm performance in biological specimens. This work provides an unprecedented combination of low duty cycle and photostability, establishing a foundation for non-photobleaching luminescent nanomaterials in long-term super-resolution imaging and nanoscale tracking.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4368-y
Stretchable pixelated electronic devices face a fundamental design conflict: accommodating mechanical deformation while preserving a high fill factor of active photosensitive elements. Conventional strain-relief strategies, such as pop-up, serpentine, and kirigami structures, rely on geometric unfolding that inevitably consumes inactive area, reducing pixel density and compromising photoresponse intensity, spatial resolution, and signal-to-noise ratio. In a recent breakthrough published in Nature Materials, Park et al. demonstrated a high-fill-factor silicon–liquid metal pixelated platform for multiscale visual acquisition and depth perception. The device integrates ~700-nm-thick ultrathin single-crystalline silicon photodiodes, finely patterned liquid metal interconnects, and a styrene–butadiene–styrene (SBS) elastomer substrate. The silicon pixels provide high-performance photoelectric conversion, while the liquid metal interconnects accommodate deformation, achieving a functional separation that mitigates the trade-off between pixel density and mechanical compliance. The device maintains stable photodiode characteristics and repeatable photoresponses under high-curvature hemispherical stretching and large biaxial tensile strain. Two applications were demonstrated: a human-eye-inspired robotic vision system with a curved photosensitive surface for wide-field imaging, and an epidermal, lensless, near-contact imaging device for close-range image acquisition. These systems enable multiscale visual acquisition and depth perception, offering a scalable route for future stretchable visual electronics.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4369-1
Sodium-ion batteries (SIBs) are promising alternatives to lithium-ion batteries for large-scale energy storage due to sodium's abundance and low cost. Among cathode materials, polyanionic compounds like Na3V2(PO4)2O2F (NVPOF) offer high energy density and dual voltage plateaus at ~3.6 and 4.0 V, but suffer from low electronic conductivity and sluggish Na+ diffusion. Here, we report a dual-modulation strategy combining high-valence Nb5+ doping and polydopamine-derived carbon coating to synthesize Na3V1.94Nb0.06(PO4)2O2F-C (NVPOF-Nb-C) via a hydrothermal route. X-ray diffraction and Rietveld refinement confirm that Nb5+ doping induces slight lattice expansion without altering the tetragonal I4/mmm framework. Density functional theory calculations reveal that Nb5+ doping optimizes the crystal structure and reduces the Na+ diffusion barrier, while the uniform carbon coating enhances electron transport. Consequently, NVPOF-Nb-C exhibits remarkably improved electrochemical performance, including high reversible capacity, excellent rate capability, and ultralong cycling stability. In a full cell with hard carbon anode, it delivers a high energy density of 487.2 Wh kg−1 at 1C and retains 91.51% capacity after 3000 cycles at 20C. This work provides a synergistic strategy to overcome the intrinsic limitations of polyanionic cathodes for practical SIB applications.
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/s40843-025-3556-6
Photon avalanche (PA) is a nonlinear optical phenomenon characterized by steep upconversion emission growth with excitation power. Since the first demonstration of PA on nanoscale and at room temperature in 2021, PA luminescence of lanthanides has attracted considerable attention in nano- and bio-photonics. However, PA nanoparticles (NPs) remain restricted to a limited range of material systems and lanthanide ions, facing challenges including inadequate nonlinearity (N), high excitation threshold (P_th), and deficient chromaticity. In a recent publication in Nature Photonics, Dong and co-workers reported a new class of PA nanosystem based on Ho3+-doped fluoride NPs, which afforded tunable PA chromaticity for multicolor sub-diffraction imaging. Unlike conventional PA systems reliant on a single reservoir level, this study introduced a novel 'parallel PA' (PPA) mechanism leveraging the dual long-lived intermediate reservoir levels (5I7 and 5I6) of Ho3+, facilitating simultaneous operation of two PA loops to generate multicolor emissions. Under 965 nm continuous-wave excitation, the PPA of Ho3+ produced simultaneous red-green-blue emissions with large N (>20). Differential rate equation modelling identified all PA signatures, including clear P_th, S-shaped curves, extremely high sigma_ESA/sigma_GSA ratio of ~75000, and volcano-shaped rise time. The engineered NaGdF4:10%Ho@NaYF4 core/shell PA NPs (~19.6 nm) exhibited remarkably high N of 17–22 with mild P_th of ~22 kW cm−2 and fast response time of 343–371 ms. By screening host lattices and introducing co-dopants, PA chromaticity was precisely tailored, demonstrating unparalleled emission tunability for multicolor super-resolution imaging.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3694-3
Lithium metal anodes (LMAs) are among the most promising candidates for next-generation batteries with high energy density. However, their practical application is hindered by persistent challenges such as dendritic lithium growth, unstable solid electrolyte interphases (SEI), and poor Coulombic efficiency. Surface coating has emerged as a viable solution to address these limitations. In particular, atomic and molecular layer deposition (ALD/MLD) techniques offer unparalleled control over the fabrication of ultrathin, conformal coatings, making them especially suitable for stabilizing LMA interfaces. This review comprehensively summarizes recent progress in applying ALD and MLD methodologies to construct durable artificial interphases on LMAs. We discuss the underlying mechanisms through which these coatings inhibit dendrite formation, improve interfacial integrity, and facilitate uniform lithium-ion transport. The roles of inorganic ALD coatings, organic MLD coatings, and their organic–inorganic hybrids are systematically examined, with a focus on their chemical composition, deposition behavior, and electrochemical characteristics. Moreover, we highlight the enhanced performance achieved through the integration of ALD/MLD-engineered interfaces in full-cell systems. The review concludes with a discussion of current challenges and potential research avenues aimed at advancing the rational development of effective LMA protection strategies. Overall, this work offers valuable insights into the role of interfacial engineering via ALD and MLD in enabling the practical deployment of lithium metal batteries.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3677-9
The demand for high-performance scintillators in high-temperature applications, such as industrial flaw detection and oil exploration, necessitates materials with both high efficiency and thermal robustness. This work reports Tb3+-doped oxyfluoride glass scintillators exhibiting anti-thermal-quenching radioluminescence (RL). Three synergistic strategies were employed: (i) an oxyfluoride glass host providing a low-phonon-energy environment, (ii) increased structural densification of the glass network, and (iii) thermally enhanced energy transfer from Ce3+ to Tb3+. The resulting scintillators achieve an optical transmittance exceeding 88% at 542 nm, a record RL intensity of 350% relative to a standard Bi4Ge3O12 (BGO) crystal, and an imaging resolution of 24 lp mm−1. Notably, the RL intensity at 633 K reaches 143% of its room-temperature (303 K) value, demonstrating significant anti-thermal-quenching behavior. In contrast, commercial BGO and CsI:Tl scintillators exhibit RL intensities dropping to approximately 1% under identical conditions. These results establish the potential of Tb3+-doped glass scintillators for high-temperature X-ray imaging and provide a strategic framework for developing thermally robust scintillating materials.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3642-4
High-density glass scintillators are promising alternatives to crystals for next-generation radiation detection due to their low cost, excellent physical and chemical stability, and processability. In this study, a series of Ce3+-activated gadolinium gallium borosilicate (GGBS x) glasses were synthesized via vacuum melt-quenching. With increasing Gd2O3 content, glass density increased from 5.86 to 6.05 g/cm3, and molar volume from 36.43 to 39.79 cm3/mol. Extended X-ray absorption fine structure (EXAFS) analysis revealed that in GGBS 1 glass, Ce3+ exclusively adopts a hexahedral [CeO6] configuration, while Gd3+ exhibits both hexahedral and octahedral coordination with a bond length of 2.35±0.1 Å and Debye-Waller factor σ2 of 0.0122±0.0015 Å2. As Gd2O3 content increased, shallow trap depth rose from 0.804 to 0.858 eV, while deep trap depth first increased from 0.948 to 1.434 eV then decreased to 1.010 eV. GGBS 1 glass exhibited high transmittance (~80%) in the visible range and a photoluminescence quantum yield of 78.4%. Under X-ray irradiation, its X-ray excited luminescence intensity reached 128.5% of that of Bi4Ge3O12 (BGO) crystal, with a spatial resolution of 29.1 lp/mm, approaching the highest reported for glass scintillators. Under γ-ray excitation, it achieved a light yield of 1058 photons/MeV and an energy resolution of 23.7% at 662 keV. These results indicate that GGBS 1 glass scintillator warrants further development for applications in X-ray imaging and γ-ray spectroscopy.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3746-x
The polyanionic compound Na3V2(PO4)2O2F (NVPOF) possesses a stable three-dimensional framework, high theoretical specific capacity, and favorable operating voltage, yet its sluggish Na+ diffusion kinetics and low electronic conductivity impede industrial application. This study proposes a dual regulation strategy combining carbon coating and heat treatment temperature to synergistically enhance crystallinity and electrochemical performance. NVPOF@C-400 and NVPOF@C-600 were synthesized via in-situ dopamine hydrochloride coating followed by heat treatment at 400 °C and 600 °C, respectively. Carbon coating at 600 °C significantly improved crystallinity and increased electronic conductivity by three orders of magnitude through the carbon layer's conductive network. The ~4.5 nm carbon layer effectively suppressed abnormal grain growth and secondary crystallization aggregation at high temperatures, maintaining uniform particle size of approximately 0.36 μm, which shortens Na+ diffusion pathways and prevents ion transport obstruction. Consequently, NVPOF@C-600 delivered a high discharge capacity of 102.5 mAh g−1 at 20 C and retained 96.5% capacity after 10,000 cycles. In a full-cell configuration with hard carbon (HC), NVPOF@C-600//HC achieved an impressive 89.3% capacity retention after 9,000 cycles. This work provides critical insights for practical implementation of high-performance NVPOF cathodes in sodium-ion batteries.
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/s40843-025-3805-1
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/s40843-025-3581-2
Radiotherapy (RT) is a standard cancer treatment that directly kills tumor cells and promotes systemic immune responses. However, RT can exacerbate tumor hypoxia, which suppresses dendritic cell (DC) antigen presentation and weakens systemic anti-tumor immunity. Here, we report oxygen-loaded in situ gels carrying bacterial outer membrane (MOGel) that slowly degrade to release oxygen and bacterial outer membrane (OM). Oxygen release alleviates tumor hypoxia, while OM continuously activates DCs, enhancing their antigen-presenting capability. In vitro, MOGel combined with RT induced the strongest tumor cell apoptosis. In an orthotopic colon cancer model, MOGel+RT achieved an 80% tumor suppression rate. Notably, MOGel+RT elicited an enhanced abscopal effect, with hypoxia relief and enhanced DC activation contributing to systemic immune responses. These findings suggest that OM-based oxygen gels offer a novel strategy to enhance systemic immune responses to RT.
Chinese Journal of Environmental Engineering•2026•DOI: 10.12030/j.cjee.202507085
This study investigates the spatiotemporal differentiation of suspended particulate matter (SPM) characteristics, sources, and their impacts on water quality between the Middle Route (closed artificial channel) and East Route (open natural water system) of the South-to-North Water Diversion Project. Thirty sampling sites (13 on the Middle Route, 17 on the East Route) were established, and samples were collected during dry and wet seasons. Water quality parameters and SPM characteristics were analyzed, including particle size distribution, total suspended solids (TSS), chlorophyll a, and stable carbon and nitrogen isotopes. Results show that the Middle Route maintains good and stable water quality, with SPM dominated by coarse particles (>63 μm, 61.43%–94.68%), total phosphorus (TP) <0.01 mg·L−1, and a significant positive correlation between chlorophyll a and coarse particles (r=0.60), indicating algal aggregation dominates particle formation. In contrast, the East Route exhibits high and fluctuating nitrogen and phosphorus concentrations, with SPM dominated by fine particles (<20 μm, 51.26%–88.61%), TP ranging from 0.03 to 1.11 mg·L−1, and a positive correlation with fine particles, suggesting significant external inputs. Carbon and nitrogen isotope analysis reveals that Middle Route SPM primarily originates from autochthonous algae (contribution >46.75%), while East Route SPM is influenced by both terrestrial C3 plants and algae. The distinct engineering and management approaches of the two routes lead to significant differences in SPM characteristics and sources, thereby affecting water quality dynamics. The Middle Route requires an 'algal reduction and hydrodynamic optimization' strategy to control algal-derived coarse particle deposition, whereas the East Route benefits from 'retention-sedimentation and wetland purification' to reduce external fine particles and pollutant inputs. This research provides theoretical support and practical guidance for differentiated SPM management in long-distance water diversion systems.
Journal of Fuel Chemistry and Technology•2026•DOI: 10.3724/2097-213X.2025.JFCT.0020
Ammonia borane (AB) is a promising hydrogen storage material due to its low molecular weight and high hydrogen content. The development of low-cost, high-activity catalysts for AB hydrolysis is critical for industrialization. In this work, CuO nanosheets (CuO NS) were synthesized via a solvothermal method under alkaline conditions using anhydrous copper chloride as precursor. Subsequently, low-temperature phosphating converted CuO NS into Cu3P@CuO nanosheets (Cu3P@CuO NS). The morphology and structure were characterized by SEM, TEM, AFM, XRD, and XPS. The catalytic performance for AB hydrolysis was evaluated, revealing that at a phosphating ratio of m(CuO NS)/m(NaH2PO2)=1 (0.1 g each), Cu3P@CuO NS exhibited excellent activity with a TOF of 57.23 min−1 and an apparent activation energy of 44.31 kJ/mol. The reaction followed pseudo-first-order kinetics with respect to catalyst amount and pseudo-zero-order kinetics with respect to AB concentration. The superior performance is attributed to the abundant active sites exposed by the nanosheet structure. Given the extremely low cost, Cu3P@CuO NS is a promising alternative to noble metal catalysts for hydrogen generation from AB.
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.0254-6108.2024122402
Carbamazepine (CBZ), a typical emerging contaminant, poses significant environmental and health risks due to its frequent detection, high toxicity, and resistance to conventional degradation. This study synthesized a composite material (PH-BC3-600) via high-temperature pyrolysis of mining waste pyrite and discarded Polygonatum kingianum dregs biochar. The composite was employed to activate peroxymonosulfate (PMS) for CBZ degradation. Results demonstrated that biochar incorporation provided pyrite with more active sites, achieving 88.19% removal of 2.5 mg·L−1 CBZ within 5 minutes, with excellent resistance to Cl−, NO3−, and humic acid. Quenching experiments confirmed the involvement of ·OH, SO4·−, 1O2, and e− in the degradation process. The biochar increased the content of highly reductive sulfur species (S2−, S2−2, Sn2−) in PH-BC3-600, facilitating the reduction of Fe(III) to Fe(II) and thereby enhancing PMS activation. Additionally, PH-BC3-600 exhibited lower iron leaching compared to traditional pyrite-based materials, overcoming a key drawback of conventional catalysts. This study highlights the promising potential of PH-BC3-600 for activating PMS in the treatment of emerging contaminants in water.
Environmental Chemistry•2026•DOI: 10.7524/j.issn.0254-6108.2024122001
Biomass is the only renewable carbon resource with huge reserves and wide sources, and it is green and environmentally friendly. Under the background of 'dual carbon', the clean and efficient utilization of biomass has received increasing attention. Preparation of biochar from biomass is one of the main methods to use biomass efficiently. Biochar surfaces possess porous and aromatic structures, which exhibit good fixation effects on heavy metals in wastewater. However, biochar has shortcomings such as difficulty in recovery and non-reusability. The introduction of iron into biochar can not only enrich surface functional groups, develop pore structure, and increase specific surface area, but also endow magnetic properties, facilitating solid-liquid separation after adsorption. This paper reviews the preparation methods of iron-based magnetic biochar (MBC-Fe), summarizes the effects of different iron sources on its characteristics, and illustrates the adsorption performance and mechanisms of MBC-Fe for typical heavy metals in water. Finally, applications of MBC-Fe in the removal of heavy metal ions from wastewater are concluded, and future utilization potential in other fields is proposed. The review highlights that MBC-Fe exhibits high adsorption capacities, e.g., for Pb(II) and Cd(II), with rapid kinetics and easy separation, making it a promising adsorbent for wastewater treatment.
Journal of Environmental Engineering Technology•2026•DOI: 10.13205/j.hjgc.202604028
Accurate accounting of county-level carbon budgets and their spatio-temporal evolution is essential for formulating low-carbon development strategies tailored to each division and achieving carbon peak and neutrality goals. This study constructed a comprehensive, accurate, and unified model to measure terrestrial ecosystem carbon absorption, anthropogenic carbon emissions, and net carbon budget from 2010 to 2020 across the Xinjiang Production and Construction Corps and its divisions. Results indicate: (1) Terrestrial ecosystems consistently acted as net carbon sinks, but total carbon absorption declined slowly, with carbon sequestration capacity persistently decreasing. Cultivated land, the sole carbon source, expanded rapidly into forests and grasslands. Anthropogenic carbon emissions rose steadily, with growth rates sharply decelerating after 2015, exhibiting a spatial pattern of "high in the north and east, low in the south and west." (2) Total carbon emissions/absorptions increased rapidly from 2010 to 2015, then slowed from 2015 to 2020. Energy consumption dominated, contributing over 95% of emissions in each division and 99% regionally. High-emission zones expanded eastward from the 8th Division in the Junggar Basin; by 2020, the 8th, 13th, and 6th Divisions, occupying 26.52% of the land area, carried 78.16% of net carbon emissions, marking them as high-density emission zones. (3) Carbon balance zoning in 2020 identified one carbon sink functional zone, nine low-carbon maintenance zones, and three high-carbon optimization zones, the latter concentrated in a strip in the central-eastern region covering 26.52% of the area.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3935-1
Silk fibroin (SF)-based hydrogels are promising for biological interfaces, yet achieving multifunctionality—mechanical robustness, adhesion, conductivity, and stability—often requires chemical modification that compromises biocompatibility. Here, we report a protonation-mediated SF/polyvinyl alcohol (PVA) hydrogel adhesive that retains natural silk properties while gaining tailored functionalities. The physically crosslinked network is formed solely via molecular interactions, with phosphoric acid (H3PO4) as a protonation agent to modulate hydrogen bonding, enabling precise control over adhesion, mechanical strength, and electronic conductivity. Glycerol (Gly) is incorporated as a moisturizing agent to enhance long-term stability for skin applications. The resulting hydrogel exhibits excellent performance in monitoring electrophysiological signals, including electrocardiogram (ECG), electromyogram (EMG), and electroencephalogram (EEG), demonstrating its potential as a platform for advanced biological interfaces. This work addresses the critical challenge of developing SF-based hydrogels that combine natural advantages with multifunctionality, offering a promising route for wearable health monitors and human-machine interfaces.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3508-3
High-entropy carbides (HECs) are promising candidates for ultrahigh-temperature applications, but their oxidation resistance at temperatures above 2000 °C remains a critical bottleneck. Here, we report a laser-assisted compositional engineering strategy to develop non-equimolar (Zr0.2Ti0.2Ta0.3Cr0.3)C HECs with superior oxidation resistance up to 2500 °C. Using a self-developed laser oxidation platform, we first screened equimolar (Zr0.25Ti0.25Ta0.25Me0.25)C (Me = Hf, W, Nb, Cr, V, Mo) samples at 2500 °C, identifying Cr as a critical element for forming protective oxide scales. Systematic tuning of Cr content revealed that the optimal composition (Zr0.2Ti0.2Ta0.3Cr0.3)C exhibits a dense, crack-free oxide layer composed of molten (Cr, Me)(Ta, Me)O4 and (Ta, Me)2O5 phases embedded with (Zr, Me)O2 crystals, which effectively seal defects and suppress oxygen diffusion. The synergistic effects of these phases lead to a significant reduction in mass gain and oxide layer thickness compared to equimolar counterparts. This work provides a new pathway for designing HECs with long-life oxidation resistance at 2500 °C, enabling their use in extreme environments such as hypersonic vehicle leading edges and rocket nozzle throats.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3779-1
Comprehensive mechanical properties, including hardness (H), elastic modulus (E), fracture toughness (KC), and wear resistance, are essential for oxide ceramics used in demanding environments. This work employs nanoindentation to evaluate these properties for RE3TaO7 (RE=La, Sm, Eu, Gd, Dy, Lu) and identifies the optimal calculation method for KC in brittle oxide ceramics. The ratio of indentation crack length to half-diagonal (l/α) is a key parameter: Eq. (3) is suitable when l/α < 1, while Eq. (4) applies when l/α > 1. The indentation energy method is invalid for brittle ceramics due to crack formation at high loads. RE3TaO7 oxides exhibit H of 5.8–14.9 GPa, E of 127.5–247.8 GPa, and KC of 1.0–2.0 MPa·m1/2, surpassing RE2Zr2O7 (KC 1.0–1.5 MPa·m1/2). Wear resistance, indicated by MDP, ranges from 0.55 to 0.67, outperforming RE2Zr2O7. The superior fracture toughness is attributed to weberite structure with crack deflection and tortuous propagation, contrasted with pyrochlore's straight cracks. These findings provide accurate nanoindentation-based methods for assessing mechanical properties of brittle oxide ceramics, facilitating material discovery and optimization for thermal barrier coatings and other high-temperature applications.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3545-7
Magnetically driven hydrogel robots show promise in biomedical and underwater applications due to remote controllability, flexibility, biocompatibility, and chemical stability. However, limited functional integration restricts their adaptability. Here, a universal modular assembly strategy is introduced using a self-healing κ-carrageenan/polyacrylamide hydrogel embedded with magnetic particles, enabling free assembly of magnetic actuation modules. These modules construct soft robots with complex geometries and magnetization distributions, allowing diverse deformations under magnetic fields. The strategy further integrates photocatalysis by embedding Ru-Bi2CrO6 photocatalysts into functional modules, yielding an oxygen-generating robot. This robot exhibits flexible underwater movement via magnetically controlled oscillatory actuation, minimizing water agitation while supplying stable oxygen to specific aquatic environments. The photocatalytic oxygen evolution rate reaches 389.1 μmol g−1 h−1. The hydrogel skeleton suppresses particle aggregation and sedimentation, and facilitates magnetic recovery. This scalable and adaptable approach advances multifunctional soft robot design.
Environmental Chemistry•2026•DOI: 10.7524/j.issn.0254-6108.2025011804
Per- and polyfluoroalkyl carboxylic acids (PFCAs) are persistent organic pollutants whose isomers exhibit distinct environmental behaviors, bioaccumulation potentials, and toxic effects due to structural variations. Accurate identification of PFCA isomers is critical for risk assessment and pollution control, yet existing detection methods predominantly rely on standard references, posing challenges for precise analysis of isomers with subtle structural differences. Single-molecule electrochemical sensing via nanopores offers a standard-free approach by correlating molecular volume with current blockade, but its capability to distinguish PFCA isomers remained unverified. This study targeted three sets of PFCA isomers: 4,5,5-trifluoropent-4-enoic acid vs. 4,4,4-trifluoro-3-methylbut-2-enoic acid; 3,3,3-trifluoro-2-methylpropanoic acid vs. 4,4,4-trifluorobutanoic acid; and 2-(trifluoromethoxy)acetic acid, 3,3,3-trifluorolactic acid, and (2R)-3,3,3-trifluoro-2-hydroxypropanoic acid. By engineering nanopore interfaces (WT, R220N, R220Q Aerolysin) and extracting multi-dimensional characteristic parameters, the method achieved near 100% accuracy in identifying all seven isomers. Feature selection further enabled high classification accuracy with low data volumes, laying the foundation for rapid single-molecule detection of PFAS and other emerging contaminants.
Journal of Environmental Engineering Technology•2026•DOI: 10.13205/j.hjgc.202605019
The utilization of food waste as a fermentation substrate can effectively reduce the substrate cost of lactic acid production industrialization, and synergistic fermentation with leachate could promote lactic acid production. However, the effect of magnesium ions in leachate on lactic acid production, metabolic processes, and key functional bacterial communities remains unclear. This study investigated the effect of adding magnesium ions on lactic acid fermentation using food waste as substrate. Results showed that the optimal magnesium ion dosage was 750 mg/L, achieving a lactic acid yield of (37.4±0.5) g COD/L and L-lactic acid optical activity of (96.3±0.9)%. Mechanistic studies revealed that magnesium ions accelerated substrate dissolution, significantly enhanced the activities of key hydrolytic enzymes (α-glucosidase, amylase, protease) and L-lactic acid producing enzymes, thereby increasing hydrolysis and lactate production rates. Simultaneously, the relative activity of lactate-consuming enzymes decreased, slowing lactate consumption. At 750 mg/L Mg2+, the relative abundances of Enterococcus and Streptococcus were 65.0% (2.2 times the Blank) and 18.7% (37.8% of the Blank), respectively, with a total of 83.7%, enhancing lactic acid yield and L-lactic acid optical activity. Metabolic pathway prediction and functional gene analysis further indicated that magnesium ions increased the relative abundance of carbohydrate metabolism pathways and genes encoding lactate dehydrogenase. This study provides technical support for food waste resource utilization.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3956-0
Chiral organic-inorganic hybrid metal halides (OIHMHs) are multifunctional materials with structural diversity and chiroptical properties. However, current chiral OIHMHs predominantly exhibit circularly polarized luminescence (CPL) in the visible spectrum, while ultraviolet and near-infrared (NIR) CPL remains challenging. Here, we report lead-free chiral zero-dimensional (0D) OIHMHs, (R/S-DACH)2In2Br10:Sb3+/Yb3+ (DACH = 1,2-diaminocyclohexane), featuring spectrally tunable CPL emissions covering visible to NIR regions. Single-crystal X-ray diffraction, circular dichroism, and CPL spectroscopy revealed that robust hydrogen-bonding interactions between organic cations and inorganic emitters are crucial for chirality expression. Sb3+-doped (R/S-DACH)2In2Br10 single crystals exhibited intense broadband emission at 644 nm from the 3P1 to 1S0 transition of Sb3+, achieving a record photoluminescence quantum yield (PLQY) of 49.9% (two orders of magnitude higher than pristine crystals) and a luminescence dissymmetry factor (glum) of ±7.1×10−3. Notably, Sb3+/Yb3+ co-doped crystals simultaneously generated dual-band CPL at 644 nm (glum = ±2.1×10−2) and 994 nm (glum = ±6.8×10−3), representing an important example of NIR-CPL in OIHMHs. An LED device based on (R-DACH)2In2Br10:2.7%Sb3+ exhibited bright orange emission with a color-rendering index of 78.4 and excellent spectral and operational stabilities. These findings establish a design strategy for broadband CPL and expand applications of chiral metal halides in advanced optoelectronics.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3819-7
Selective solar-driven aerobic oxidation of biomass derivatives into valuable chemicals under ambient conditions is pivotal for sustainable chemical manufacturing but faces challenges from the conflict between O2 activation kinetics and selective C–H bond cleavage. This work demonstrates a spatial decoupling strategy in a precisely-engineered 2D/2D g-C3N4/ZnIn2S4 architecture, where ZnIn2S4 domains selectively activate O2, while adjacent g-C3N4 modulates electron transfer to O2 and tailors 5-hydroxymethylfurfural (HMF) binding configuration for selective C–H bond cleavage. This enables efficient selective conversion of HMF to 2,5-diformylfuran (DFF) via ambient aerobic photooxidation. When used alone, ZnIn2S4 produces mixed reactive oxygen species (·O2−/·OH) due to uncontrolled electron transfer during O2 activation. In-situ spectroscopy, Kelvin probe force microscopy (KPFM) and density functional theory (DFT) calculations demonstrate that the 2D/2D heterojunction, driven by its directed electric field, selectively activates O2 into ·O2− at ZnIn2S4 domains while suppressing ·OH generation by moderate electron transfer, mitigating over-oxidation. Adjacent g-C3N4 domains precisely anchor HMF via –OH group interactions, steering selective DFF formation. This spatial decoupling achieves a remarkable HMF-to-DFF photo-conversion rate of 1517.5 μmol g−1 h−1 with 99.4% selectivity under ambient air, outperforming many reported state-of-the-art catalysts and maintaining durable cycling performance. The work establishes a spatial decoupling principle to overcome O2 activation kinetics and site competition thermodynamics, paving the way for advanced catalyst design for sustainable energy and the environment.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3798-x
Ulcerative colitis (UC) is a chronic inflammatory disorder of the colorectal mucosa, where conventional enema therapies suffer from poor retention and limited inflammation modulation. Here, we report a highly fluid probiotic-containing enema solution (s-BSA-Fe+EcN) integrating bovine serum albumin (BSA), Fe2+, and probiotic Escherichia coli Nissle 1917 (EcN). The solution's high fluidity enables comprehensive coverage of irregular colorectal mucosa. Upon encountering reactive oxygen species (ROS)-rich inflamed lesions, Fe2+ mediates H2O2 scavenging and hydroxyl radical generation, triggering BSA crosslinking and in situ gelation into a conformal hydrogel (h-BSA-Fe+EcN). This targeted adhesion mitigates oxidative damage to host tissues and preserves probiotic viability. In a porcine model, endoscopic imaging confirmed inflammation-targeted gelation in vivo. In a dextran sulfate sodium-induced mouse colitis model, h-BSA-Fe+EcN demonstrated excellent therapeutic efficacy, reducing disease activity index and restoring colonic architecture. This strategy addresses the dual challenges of fluid perfusion and rapid ROS-responsive gelation, offering an advanced transanal treatment for UC.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3752-0
Counterfeit products have become widespread, necessitating advanced anti-counterfeiting solutions. Inspired by random wrinkles on peanut surfaces, we propose a biologically physical unclonable function (PUF) label with all-optical anti-counterfeiting. Using spatially selective plasma etching, a single-material random wrinkling strategy overcomes limitations of traditional double-layer wrinkling, such as low entropy and complex processes, enabling selective wrinkling in fixed areas. Innovative introduction of dual-modal luminescent micron defects in polydimethylsiloxane (PDMS) films enables orthogonal control and coordination of the frequency domain of unpredictable wrinkles at the mesoscopic scale, promoting transition from long-range anisotropy to short-range isotropy. Verification requires only simple optical equipment, providing cost-effectiveness and ease of detection. This anti-counterfeiting system incorporates three collaborative security mechanisms: (i) high-entropy PUF encoded wrinkle fingerprints, (ii) angle-sensitive Bragg-like structural colors, and (iii) spatially segmented dual-mode fluorescence. The label exhibits near-ideal cryptographic properties: uniformity close to 0.5, Shannon entropy close to 1, Hamming distance approximately 0.5, and robust environmental stability (similarity >84% after storage at 2°C and 50°C for 48 h). Plasma parameter modulation enables continuous tuning of wrinkle wavelength from 6.1 to 25.0 μm. The system's straightforward preparation, portable verification, and anti-spoofing capabilities position it for real-world applications in secure packaging, high-value product labels, and smart encryption, with potential extension to flexible electronics and wearable security systems.
Journal of Fuel Chemistry and Technology•2026•DOI: 10.1016/S1872-5813(26)60649-4
To achieve efficient conversion of lignin-derived phenolic compounds into high-value hydrocarbon fuels, a series of NiCo bimetallic catalysts with N-doped biochar and Al2O3 composite supports (NiCo/NC-Al2O3) were designed and synthesized. Comprehensive characterizations (XRD, TEM, XPS, H2-TPD) revealed the superior catalytic activity in the hydrodeoxygenation (HDO) of lignin-derived phenolic compounds. The optimized Ni8Co2/NC-Al2O3 catalyst exhibited good metal dispersion and excellent hydrogen dissociation adsorption capacity. Under mild reaction conditions (240°C, 1 MPa H2, 4 h), it achieved complete conversion of guaiacol and 99.9% selectivity to cyclohexane, significantly outperforming monometallic Ni10/NC-Al2O3 and Co10/NC-Al2O3 catalysts. Comparative studies indicated a synergistic effect between Ni and Co, where the introduction of Co effectively promoted aromatic ring hydrogenation and C−O bond cleavage. The catalyst maintained high activity after four reuse cycles, demonstrating outstanding structural stability. This study elucidates the regulatory mechanism of the Ni-Co synergistic effect on catalytic performance, providing new insights for the development of efficient non-noble metal HDO catalysts.
Environmental Chemistry•2026•DOI: 10.7524/j.issn.0254-6108.2025021902
Polyacrylonitrile (PAN) ultrafiltration membranes are widely used in water treatment, yet their anti-fouling performance remains a challenge. In this work, PAN was first reacted with sodium azide via click chemistry to synthesize 1,2,3,4-tetrazolium polyacrylonitrile (PAN-N). Subsequently, PAN-N was reacted with iodoacetamide (IAM), 2-iodoethanol (IH), iodoacetic acid (IA), and chlorosulfonic acid (CSA) to introduce hydrophilic groups, and anti-fouling PAN ultrafiltration membranes were fabricated via phase inversion. The membranes were characterized by Fourier transform infrared spectroscopy, 1H nuclear magnetic resonance, X-ray diffraction, scanning electron microscopy, and contact angle measurements. Results showed that the PAN-N membrane exhibited superior performance to pristine PAN, with water flux increasing from 0.9233 to 1.232 L·(m2·h·kPa)−1 and bovine serum albumin (BSA) rejection from 69.23% to 82.4%. Hydrophilic modification further enhanced performance; the PAN-N-IA membrane achieved the highest water flux of 1.7347 L·(m2·h·kPa)−1 and rejection of 93.57%. Anti-fouling tests revealed that modified membranes followed the order: PAN-N-CSA > PAN-N-IA > PAN-N-IH > PAN-N-IAM > PAN-N > PAN. PAN-N-CSA and PAN-N-IA showed comparable anti-fouling performance, with total fouling indices of 56.1% and 58.47%, reversible fouling indices of 47.17% and 46.97%, and irreversible fouling indices of 8.97% and 11.47%, respectively. This work demonstrates that PAN-N-IA membranes combine high flux, high rejection, and excellent anti-fouling properties, making them promising for water treatment applications.
Environmental Chemistry•2026•DOI: 10.7524/j.issn.0254-6108.2025022501
The pretreatment of trace emerging contaminants in environmental matrices is challenging due to diverse methods and uncertain applicability. This study compared solid-phase extraction (SPE) and liquid-liquid extraction (LLE) for extracting endocrine-disrupting compounds (EDCs), particularly phthalate esters (PAEs), using laboratory-spiked blank samples. LLE achieved satisfactory recoveries for PAEs at spike levels below 4 μg·L−1, enabling detection of five PAEs including diisodecyl phthalate (DIDP), with improved efficiency via repeated extraction. SPE offered lower detection and quantification limits, higher accuracy and sensitivity, and achieved high recoveries for 12 EDCs and 10 antibiotics at spike levels ≥0.2 μg·L−1, with detection limits as low as 0.1–6.4 ng·L−1. The developed SPE coupled with liquid chromatography-Orbitrap mass spectrometry (LC-Orbitrap MS) method was applied to industrial wastewater samples. Across five industrial sectors (coatings, rubber, pharmaceuticals, inks, and materials technology), five antibiotics and ten EDCs were detected, with total concentrations ranging from 0.03–0.56 μg·L−1 and 0.07–1.91 μg·L−1, respectively. Sector-specific profiles emerged: rubber industry effluent was dominated by dibutyl phthalate (DBP) at 1.07 μg·L−1, while pharmaceutical effluent featured sulfamonomethoxine (SMM) at 0.34 μg·L−1. This systematic evaluation demonstrates that SPE-LC-Orbitrap MS is robust for complex matrices, providing a technical foundation for accurate quantification of emerging contaminants in industrial wastewater.
Environmental Chemistry•2026•DOI: 10.7524/j.issn.0254-6108.2025030602
In the context of accelerated urbanization, regional air composite pollution in medium and large urban agglomerations is primarily characterized by PM2.5-O3 compound pollution. To elucidate the meteorological causes of PM2.5-O3 compound pollution in the Yangtze River Delta (YRD) region over the recent seven years (2017–2023), this study analyzed monitoring data from typical cities (Nanjing, Shanghai, Hangzhou, and Hefei) using Pearson and partial correlation coefficients. Results indicate: (1) PM2.5 pollution exhibited a significant downward trend across all four cities, with notable improvement during the COVID-19 pandemic in 2020, underscoring the effectiveness of air pollution control measures. Conversely, O3 pollution remained elevated or increased in some cities, indicating persistent challenges in O3 control. (2) During O3 pollution episodes, PM2.5 and O3 concentrations were positively correlated, whereas during PM2.5 pollution episodes, they were negatively correlated. (3) Compound pollution days were predominantly observed from February to October, with the highest frequency (20 days) occurring from April to June. (4) The significant reduction in PM2.5 weakened the aerosol 'umbrella effect', enhancing surface radiation and promoting near-surface O3 formation. Concurrently, changes in the NOx/VOCs ratio weakened O3 titration, and climate warming accelerated O3 precursor generation and potentially altered boundary layer structure, collectively contributing to O3 accumulation in the cold season and an increasing frequency of compound pollution during that period. (5) The formation mechanisms of PM2.5 and O3 are driven by distinct meteorological conditions, with low overall concentration correlation; however, under compound meteorological conditions such as high temperature, stagnant air, and weak diffusion, both pollutants tend to rise synchronously, indicating that compound pollution events are typically driven by multiple adverse meteorological factors. This study demonstrates that from 2017 to 2023, PM2.5 pollution significantly decreased while O3 pollution showed an increasing trend. Compound pollution was concentrated in April–June and influenced by high temperature, stagnant air, and weak diffusion. With effective PM2.5 control, enhanced surface radiation and changes in O3 precursors led to O3 accumulation in the cold season, increasing compound pollution frequency. Overall, compound pollution is driven by multiple meteorological factors, posing complex challenges for control.
Environmental Chemistry•2026•DOI: 10.7524/j.issn.0254-6108.2025021901
To assess the impact of the Air Pollution Prevention and Control Action Plan (APPCAP) on the chemical composition of PM2.5, this study analyzed the concentrations, existing forms, and sources of water-soluble ions in PM2.5 collected during summer (June–August) in the northern suburbs of Nanjing for the years 2012, 2013, 2017, and 2019. The results demonstrate a significant reduction in total water-soluble ion concentrations in 2017–2019 compared to 2012, indicating the effectiveness of APPCAP in mitigating PM2.5 pollution. Sulfate (SO4^2−), nitrate (NO3^−), and ammonium (NH4^+) (collectively SNA) were the dominant ionic species, contributing 69.98%–92.58% of the total ion mass, with SO4^2− being the most abundant. In the summers of 2013 and 2017, PM2.5 exhibited alkaline properties, and SNA primarily existed as NH4NO3 and (NH4)2SO4. Conversely, in 2019, PM2.5 became acidic, with SNA present as NH4NO3 and NH4HSO4. The nitrogen oxidation ratio (NOR) and sulfur oxidation ratio (SOR) indicated that NO3^− and SO4^2− predominantly originated from secondary reactions, with SO2 undergoing secondary conversion more readily than NO2, and the degree of secondary conversion increasing annually. Source apportionment revealed a shift from long-range transport in 2013 to local and regional sources by 2017. These findings underscore the success of APPCAP in reducing primary emissions and altering the chemical speciation of secondary inorganic aerosols, while highlighting the persistent dominance of sulfate and the need for continued SO2 emission controls.
Journal of Environmental Engineering Technology•2026•DOI: 10.13205/j.hjgc.202606020
Municipal wastewater treatment plants in China face excessive influent grit loads and carbon source deficiencies, while conventional pretreatment (screening, grit chambers, primary sedimentation) exhibits low fine grit removal and poor carbon retention. A novel swinging ultra-fine screen with a screening precision of 0.1 mm was developed and tested at a pilot scale of 1000 m³/d. Systematic evaluation of screens with apertures from 0.05 to 0.4 mm was conducted, with mechanisms analyzed via particle size distribution, COD fractionation, and fouling layer characterization. The 0.1 mm screen achieved an SS removal efficiency of 89.3%, significantly higher than 57.4% for conventional processes, while COD removal was only 9.5% versus 28.6%, corresponding to a carbon source retention of 93%. The device nearly completely retained particles >0.1 mm and achieved >98% removal for particles in the 0.075–0.1 mm range. Performance remained stable under fluctuating COD and SS conditions. A three-stage fouling theory for micro-screens was proposed. This work represents the first application of 0.1 mm screening precision in pretreatment, markedly improving fine grit retention and carbon source preservation, with strong resilience to water quality variations.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3934-1
Solar energy, a clean and abundant resource, can be stored as latent heat in solid-solid phase change materials (SSPCMs) and subsequently utilized, offering great potential for advancing passive thermal management technologies such as thermal camouflage. Conventional SSPCMs often require active heating for high-temperature conditions, leading to additional energy consumption. Moreover, their permanent crosslinked structures limit reprocessability and increase environmental burden. Herein, we present a lizard-skin-inspired, solar-thermal-responsive, and reprocessable SSPCM (FTSPCM) featuring a dual crosslinked structure composed of dynamic phenol–carbamate bonds and Fe3+@Tannic acid (TA) coordination. Polyethylene glycol (PEG) functions as the phase change segment, while TA introduces both reversible covalent crosslinking and photothermal responsiveness. The FTSPCM exhibits a high latent heat of 102.9 J g−1, excellent shape stability, and maintains its thermal performance after three reprocessing cycles at 120 °C. The Fe3+@TA coordination network enables strong near-infrared absorption and efficient solar-thermal conversion, achieving a surface temperature of 62 °C and a conversion efficiency of 96.85% under 2 Suns irradiation. This dual-function design allows the material to achieve passive thermal camouflage via latent heat release at low temperatures and solar-assisted photothermal heating at high temperatures. This work presents a sustainable strategy for developing reprocessable, solar-responsive SSPCMs, showcasing the distinctive advantages of tannic acid-derived polyphenol chemistry in constructing passive thermal management systems for energy-efficient thermal camouflage and solar-driven thermal energy storage.
Chinese Journal of Environmental Engineering•2026•DOI: 10.12030/j.cjee.202511003
Tailings dam leakage can cause secondary sudden water pollution events, imposing severe combined stress of high turbidity and heavy metal contamination on natural water bodies within a short period, threatening aquatic ecological security. Existing studies have systematically revealed the pollution characteristics and biological effects of such events, which are fundamentally distinct from natural high-turbidity water and industrial wastewater leakage. Compared with natural high-turbidity water, tailings leakage inputs finer particles with higher specific surface area, leading to more intense and prolonged turbidity stress. Meanwhile, heavy metals in tailings are more enriched than natural sediments, with higher proportions of active forms and bioavailability, causing significant bioaccumulation and toxic effects, and long-term decline in benthic community species richness. Compared with industrial wastewater leakage, tailings leakage simultaneously releases high concentrations of fine suspended solids and multiple heavy metals, forming a unique 'physical-chemical' combined stress. This synergistic effect amplifies biological toxicity through multiple pathways such as mechanical damage, light limitation, and oxidative stress, resulting in severe and often irreversible ecological damage, such as impaired fish swimming behavior and collapse of benthic community structure. Analyzing the long-term impacts of tailings leakage on aquatic ecosystems from the perspective of combined stress is helpful for providing scientific basis for emergency response and medium-to-long-term ecological risk prevention of related sudden water pollution events.
Journal of Fuel Chemistry and Technology•2026•DOI: 10.1016/S1872-5813(26)60638-X
The extensive emission of greenhouse gases, primarily CO2 and CH4, has contributed to intensified global warming. Dry reforming of methane (DRM, CH4 + CO2 → 2CO + 2H2) offers a pathway for the synergistic utilization of these two major greenhouse gases, presenting important implications for both environmental protection and energy sustainability. However, the catalysts still face challenges such as carbon deposition and sintering of active metals, which adversely affect the catalytic performance and long-term stability. Oxygen vacancies, which are common lattice defects in metal oxides, have been demonstrated to improve the DRM performance by modulating the surface and interfacial properties of the catalysts. This review systematically summarizes research progresses in DRM over the past decade, outlines the major challenges and emphasizes the critical roles of oxygen vacancies in suppressing carbon deposition and inhibiting metal sintering. Furthermore, the mechanisms through which oxygen vacancies influence DRM reactions are discussed, combined with their formation pathways and regulation strategies. These insights provide essential theoretical foundations for the design and synthesis of highly efficient and stable DRM catalysts.
Journal of Fuel Chemistry and Technology•2026•DOI: 10.1016/S1872-5813(26)60650-0
Aldehydes and ketones are valuable oxygen-containing organic intermediates essential for synthesizing fine chemicals, fuels, and materials. Lignocellulosic biomass, as the most abundant renewable carbon resource with an annual production exceeding 180 billion tons, offers a sustainable route to produce platform carbonyl compounds such as furfural, 5-hydroxymethylfurfural (HMF), and low-molecular-weight aliphatic ketones via pyrolysis. This review systematically summarizes recent progress in catalytic pyrolysis of biomass for aldehyde and ketone production. It first outlines the structural features, types, and biomass-derived origins of typical carbonyl platform molecules. Second, it compares the decomposition pathways and intermediate evolution behaviors of cellulose-rich, hemicellulose-rich, and lignin-rich biomasses under non-catalytic pyrolysis, clarifying the influence of multicomponent synergistic effects on aldehyde and ketone formation. Particular emphasis is placed on the mechanistic roles and dominant reaction pathways of metal salts, metal oxides, and carbon-based catalytic systems in regulating key steps such as dehydration, decarbonylation, C−O/C−C bond cleavage, and skeletal rearrangement. The review identifies major challenges, including unclear catalyst structure-activity relationships, inadequate active site stability, and limited product selectivity. Future perspectives propose rational design of multilevel structured catalysts, integration of in situ characterization with multiscale simulation, and development of green scale-up and process integration strategies. This work aims to provide a systematic theoretical reference for high-value biomass utilization and renewable carbon conversion.
Environmental Chemistry•2026•DOI: 10.7524/j.issn.0254-6108.2026031202
Liquid crystal monomers (LCMs) are a novel class of organic compounds primarily used in the manufacturing of electronic devices such as liquid crystal displays (LCDs). LCMs can enter the environment and organisms through various pathways, and due to their persistence, bioaccumulation potential, and toxicity, they pose significant threats to ecosystems and human health, emerging as a concerning category of organic pollutants. Current research focuses on developing standardized, high-throughput, and highly sensitive analytical methods based on chromatography-mass spectrometry for quantifying LCMs across multiple environmental media. By integrating exposomics and long-term dynamic monitoring, exposure mapping is used to identify characteristic LCMs in different regions. Through screening LCM-exposed biomarkers and integrating human metabolic kinetic models, the assessment methodology is transitioning from environmental concentration-based external exposure estimation to biologically effect-based internal exposure risk evaluation. This research provides a scientific foundation for improving exposure monitoring systems and control measures for LCMs.
Environmental Chemistry•2026•DOI: 10.7524/j.issn.0254-6108.2025032004
This study proposes an integrated source apportionment framework that synergistically integrates pollution source classification, atmospheric dispersion modeling, backward trajectory analysis, weighted trajectory clustering, and forward contribution estimation to accurately target peak reduction at localized air pollution hotspots. Applied at the County-Town Scale in Beijing, this method was employed to investigate pollution episodes at the Tongzhou Dongguan monitoring site. Source classification relied on a pollution fingerprint database and temporal concentration profiles, while local contributions were quantified through combined air quality modeling and monitoring data. Forward and backward trajectory analyses enabled the identification of potential source regions and key contributors. Results indicate that construction dust, road dust, and emissions from the catering industry were the dominant local sources, with construction and road dust contributing most prominently to PM2.5 concentrations. Furthermore, abnormal PM2.5 increases were closely linked to low boundary layer height, weak winds, and high humidity, emphasizing the role of meteorological conditions in pollution accumulation. The proposed framework proves effective in pinpointing local pollution sources and offers a scientific basis for targeted air quality management at finer spatial scales.
Environmental Chemistry•2026•DOI: 10.7524/j.issn.0254-6108.2025032403
An electrochemical sensor for lead ion (Pb2+) detection was developed based on a metal-organic framework (UiO-66-NH2) and conductive polymer polyaniline (PANI) composite. The UiO-66-NH2 was synthesized via hydrothermal method, and the UiO-66-NH2@PANI composite was prepared by in-situ polymerization. The composite was drop-coated onto a glassy carbon electrode (GCE) to fabricate the sensor. Material characterization was performed using X-ray diffraction (XRD), scanning electron microscopy (SEM), and Fourier transform infrared spectroscopy (FTIR). Electrochemical performance was evaluated by cyclic voltammetry (CV) and differential pulse voltammetry (DPV). Key parameters including loading amount, enrichment time, and pH were optimized. Under optimal conditions, the sensor exhibited a linear response to Pb2+ in the concentration range of 10–200 μg·L−1 with a correlation coefficient (R2) of 0.9960, and a limit of detection (LOD) of 9.8 μg·L−1. The sensor demonstrated good anti-interference, repeatability, and stability. Practical applicability was assessed by spiked recovery tests in Yellow River water and tap water, yielding recovery rates of 94.1%–100.8% with relative standard deviations (RSD) ≤3.84%. Comparative analysis with inductively coupled plasma mass spectrometry (ICP-MS) showed comparable accuracy, confirming the sensor's potential for reliable Pb2+ monitoring in environmental samples.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3990-6
Sustainable bio-sourced functional materials are pivotal for advancing wastewater treatment technologies. This study reports a lignin-based carbon nanofiber (CNF) scaffold engineered with a Bi2WO6 (BWO) and ZnIn2S4 (ZIS) Z-scheme heterojunction via coaxial electrospinning and hydrothermal synthesis. The resulting all-component photocatalytic nanomembrane exhibits superior mechanical robustness under wet conditions, with a Young's modulus of 20.38 MPa and toughness of 2.48 kJ/m3. Stabilization kinetics are accelerated 10-fold (1°C/min), yielding significant energy savings. Using methylene blue (MB) as a model pollutant, the CNFs@BWO/ZIS membrane achieves 94.4% degradation efficiency (k = 0.01664 min−1) after 120 min of solar irradiation, maintaining excellent recyclability over five successive cycles. Systematic mechanistic studies elucidate the Z-scheme charge-transfer pathway, which optimizes interfacial photoexcited carrier separation and reduces energy loss. This work demonstrates a sustainable biomass-derived photocatalytic system with high mechanical integrity and catalytic performance, offering a viable route for efficient wastewater treatment and contributing to carbon neutrality goals.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-4012-4
Stimuli-responsive fluorescent hydrogels, owing to their tunable optical properties and unique smart response characteristics, have significant potential in encryption applications and information security. However, most current systems are limited to single-stimulus responsiveness and lack the capability for programmable information erasure or multi-modal dynamic synergy. Hence, we propose a multi-stimuli-responsive phase-change hydrogel incorporating aggregation-induced emission hydrophobic carbon dots (AIE-HCDs) and polyethylene glycol (PEG)-cellulose network, demonstrating dynamic fluorescence chromism under various external triggers. The hydrogel exhibits solvent-exchange-triggered fluorescence color changes from blue to red, enabled by the concentration modulation of AIE-HCDs through the exchange between PEG and water. Additionally, the temperature-induced phase transition of PEG from crystalline to molten state modulates the aggregation and dispersion of AIE-HCDs, thereby enabling dynamic fluorescence color changes. The phase transition further confers excellent shape-memory behavior and adjustable mechanical properties, with the tensile modulus varying from 6.28 MPa in the molten state to 36.23 MPa in the crystalline state, while maintaining high transparency (~88% in the molten state). By utilizing micro-contact printing and the multi-stimulus response, an encryption platform enables information to be hidden, selectively read under sequential stimuli (thermal, UV, and solvent), and completely erased upon demand. This strategy demonstrates significant potential for advancing high-level information encryption and anti-counterfeiting technologies.
Chinese Journal of Environmental Engineering•2026•DOI: 10.12030/j.cjee.202512052
Constructed wetlands (CWs) with conventional substrates often exhibit limited removal of nitrogen and antibiotics from secondary effluent. This study developed an iron-carbon-manganese ore (Fe-C-Mn) composite substrate CW to enhance simultaneous removal of nitrogen and tetracycline (TC). Under influent TC of 2 mg·L−1 and total nitrogen (TN) of 15 mg·L−1, the Fe-C-Mn system achieved average TC removal of 91.3%, significantly higher than the gravel control (27.2%). TN and nitrate nitrogen (NO3−-N) removals reached 71.7% and 83.3%, respectively, versus 7.8% and 1.2% in the control. Substrate analysis revealed increased surface roughness and synergistic generation of active components (Fe(II)/Fe(III) and Mn(II)), driving autotrophic denitrification and TC biodegradation/chemical degradation. Microbial community analysis indicated reduced overall diversity but selective enrichment of potential TC degraders (e.g., Trichosporon, Bacillota) and denitrifiers (e.g., unclassified_f_Rhodocyclaceae). TC degradation pathways included demethylation, hydroxylation, and ring-opening, ultimately yielding small metabolites. These findings provide theoretical and technical support for enhanced removal of antibiotics and nitrogen from secondary effluent using CWs.
Chinese Journal of Environmental Engineering•2026•DOI: 10.12030/j.cjee.202512025
Persulfate (PS) is a common oxidant in in-situ chemical oxidation (ISCO) for groundwater organic contamination, but its vertical concentration stratification may lead to inefficient remediation of light non-aqueous phase liquids (LNAPLs). To investigate the vertical stratification characteristics of PS in porous aquifers and its impact on LNAPLs remediation, static water column experiments and flowing water sand tank experiments were conducted. The migration behavior of PS under non-slow-release and slow-release conditions was compared, with Br− as a reference tracer and benzene, toluene, and xylene (BTX) as LNAPLs contaminants. Results showed that in static water columns, Br− exhibited weak vertical migration, short migration distance, and a low decay rate (0.009 d−1), consistent with a stable tracer. In contrast, PS showed strong vertical migration, with concentrations increasing with depth; under slow-release conditions, the concentration difference between the top and bottom of the column could reach two orders of magnitude. Br− migration was dominated by molecular diffusion (effective diffusion coefficient 2.2×10−9 m2·s−1), while PS migration was driven by both diffusion and density. Under slow-release conditions, the average PS decay rate was 0.072 d−1, slightly higher than the non-slow-release rate (0.059 d−1). In both column and sand tank experiments, BTX exhibited a distinct shallow-layer distribution, contrasting with PS. When the aquifer thickness is large, PS stratification limits its contact with LNAPLs contaminants, increasing remediation cost and difficulty. These findings provide theoretical reference for PS-based ISCO remediation of LNAPLs in porous aquifers.
Chinese Journal of Environmental Engineering•2026•DOI: 10.12030/j.cjee.202511062
Sediment microbial fuel cells (SMFCs) are a green technology for simultaneous polluted sediment remediation and energy recovery, yet their performance is constrained by insufficient anodic microbial activity and low electron transfer efficiency. This study employed lactate addition combined with composite engineered microbial immobilization to synergistically optimize SMFC performance by enhancing microbial stability and carbon source supply. Results showed that lactate, as an easily utilized electron donor, promoted electrochemical activity, achieving a maximum power density of 22.06 mW·m−2 at 6 mmol·L−1, a 194% improvement over the blank group. Immobilization further enhanced electron transfer efficiency, with the highest output voltage (88.75 mV) being 2.09 times that of the non-immobilized group. For pollutant degradation, the 6 mmol·L−1 lactate group achieved TOC and TN removal rates of 29.02% and 28.4%, respectively, outperforming the control (22.41% and 21.42%). However, high lactate concentrations inhibited microbial metabolism, leading to TOC accumulation. 16S rRNA analysis revealed that the anodic microbial community was dominated by Bacillota and Pseudomonadota, both possessing electroactive and pollutant-degrading capabilities, indicating that lactate and immobilization exert a synergistic effect in SMFCs, simultaneously enhancing electricity generation and pollutant removal efficiency.
Environmental Chemistry•2026•DOI: 10.7524/j.issn.0254-6108.2026022702
This study systematically investigated the occurrence and vertical distribution of per- and polyfluoroalkyl substances (PFAS) in solid waste, leachate, and surrounding groundwater at a municipal solid waste landfill in Fuyang City, Anhui Province, China. A total of 23 PFAS were detected in solid waste, with total concentrations (∑PFAS) ranging from 7.95 to 172.28 ng·g⁻¹. Trifluoroacetic acid (TFA), an ultrashort-chain PFAS, was ubiquitous, contributing on average 59% to the total PFAS mass. PFAS composition varied with depth: long-chain PFAS dominated in middle and upper layers, while short-chain and ultrashort-chain PFAS were more abundant in deeper layers, indicating enhanced downward migration of shorter-chain compounds. Sulfonic acid PFAS exhibited increasing relative abundance with depth. Leachate ∑PFAS concentration was 14.35 μg·L⁻¹, dominated by short-chain compounds such as PFPrS and PFBS, consistent with the composition in bottom-layer waste. Groundwater surrounding the landfill contained multiple PFAS, with concentrations decreasing with distance from the landfill, confirming the landfill as a source of PFAS to the surrounding environment. Multivariate analyses (PCoA and Bray–Curtis dissimilarity) revealed that some groundwater samples closely resembled leachate in PFAS composition, suggesting direct impact via leachate migration. These findings underscore the role of landfills as significant reservoirs and sources of PFAS, particularly ultrashort-chain compounds, and highlight the need for improved leachate management to mitigate groundwater contamination.
Environmental Chemistry•2026•DOI: 10.7524/j.issn.0254-6108.2025050601
China's iron and steel industry has undergone comprehensive ultra-low emission transformation, meeting stringent limits for conventional pollutants, yet the fate of polychlorinated dibenzo-p-dioxins and dibenzofurans (PCDD/Fs) remains unclear. This study combined field sampling and literature review to analyze PCDD/Fs emission characteristics from sintering, converter, and electric arc furnace processes before and after transformation, and calculated national emissions for 2022. Results demonstrate that ultra-low emission transformation effectively reduces PCDD/Fs emissions. Specifically, emission concentrations decreased by 86.5%, 95.1%, and 66.9% for sintering, converter, and electric arc furnace, respectively, with corresponding emission factors dropping to 0.11, 0.009, and 0.014 μg I-TEQ·t−1 product. Under the transformation scenario, total national emissions were 104 g I-TEQ (uncertainty ±26 g), a 94.9% reduction from the unreformed scenario (2049 ± 763 g I-TEQ). Congener profiles shifted from high-chlorinated dominance to low-chlorinated dominance, while toxicity equivalent distribution remained dominated by 2,3,4,7,8-PeCDF (35%–56%). This study quantifies the co-benefit of PCDD/Fs reduction, providing critical data for updating China's emission inventory and formulating toxicity-oriented control policies.
Environmental Chemistry•2026•DOI: 10.7524/j.issn.0254-6108.2025051502
Contamination of indoor air with illicit drugs poses a serious threat to public health and safety. Accurate and precise methods for monitoring these drugs are crucial for combating drug production, trafficking, and abuse, as well as reducing the risk of occupational exposure in law enforcement and healthcare workers. Current on-site rapid detection techniques for drugs in indoor air primarily include ion mobility spectrometry and electronic nose technology. Chromatography-mass spectrometry techniques are often used in the laboratory. Monitored drug types include heroin, amphetamine-type stimulants, cannabis, cocaine, synthetic cannabinoids, and fentanyl analogs, with concentration ranges ranging from a few ng·m−3 to several hundred µg·m−3. Drug concentrations are influenced by factors such as the drug type, methods involved in production and abuse, intensities of human activity, and ventilation conditions. While it has been demonstrated that long-term exposure to drug-contaminated environments may cause persistent physical discomfort, the specific mechanisms underlying health risks require further investigation. This paper reviews the sources of illicit drugs in indoor air, their detection methods, and typical application scenarios. It also analyzes the shortcomings of existing studies and proposes future research directions. The aim is to provide technical references for the monitoring of drugs in indoor air environments.
Environmental Chemistry•2026•DOI: 10.7524/j.issn.0254-6108.2025041105
Online measurements of volatile organic compounds (VOCs) were conducted in the central urban area of Shenyang from June 1 to August 31, 2022, to analyze concentration levels and ozone formation potential (OFP). The initial concentrations of VOCs were estimated using the photochemical age parameter method to correct for photochemical losses. Positive matrix factorization (PMF) was applied for source apportionment. The average mass concentration of total VOCs (TVOCs) was (27.29 ± 15.96) μg·m−3, with alkanes (50.3%) as the dominant component; key species included propane, ethane, methanethiol, and ethylene. The OFP of TVOCs was (64.30 ± 66.41) μg·m−3, with alkenes (63.5%) as the main contributor; key reactive species were ethylene, propylene, m/p-xylene, toluene, and isoprene. Daytime photochemical loss of VOCs reached 2.40 μg·m−3, with alkenes (67.1%) dominating. PMF based on initial concentrations identified five major sources: vehicle emissions (56.2%), solvent usage (21.5%), combustion sources (8.9%), industrial emissions (7.5%), and natural sources (5.9%). Compared to PMF results based on directly monitored concentrations, contributions from vehicle emissions, combustion sources, and solvent usage decreased, while industrial emissions increased. The organic chemical industry source was not identified, and a new natural source contribution was recognized. These findings underscore the importance of photochemical loss correction in source apportionment and highlight key species and sources for ozone pollution control in Shenyang.
Environmental Chemistry•2026•DOI: 10.7524/j.issn.0254-6108.2025051701
This study investigated the effects of selenium nanoparticles (SeNPs) on the growth, mycelium morphology, copper (Cu2+) removal rate, extracellular polymeric substances (EPS), and intracellular enzyme activity of Aspergillus flavus TL-F3 (A. flavus TL-F3) under Cu2+ stress. Results showed that different concentrations of Cu2+ inhibited the growth of A. flavus TL-F3. The highest Cu2+ removal rate of 56.32% was observed at a Cu2+ concentration of 50 mg·L−1. Under 50 mg·L−1 Cu2+ stress, 0.25 mg·L−1 SeNPs promoted the growth of A. flavus TL-F3, increasing its biomass by 2.71%, and significantly enhanced the fluorescence intensity of EPS, Na+/K+-ATPase activity, and decreased malondialdehyde (MDA) content, reduced superoxide dismutase (SOD) and catalase (CAT) enzyme activities. Additionally, SeNPs stimulated the glutathione (GSH-GSSG) cycle in A. flavus TL-F3, elevating glutathione peroxidase (GPX) and glutathione reductase (GR) activity by 17.2% and 23.94%, respectively, and increasing reduced glutathione (GSH) content by 18.59%, and decreasing the GSH/GSSG ratio, thereby effectively alleviating Cu2+ toxicity. Fourier transform infrared spectroscopy indicated that surface functional groups of A. flavus TL-F3, including carboxylic acid, alcohol, phenol, and phosphate/sulfate functional groups, might bind with Cu2+, enhancing its tolerance to Cu2+. This study enriches the theoretical knowledge of microorganism-heavy metal interactions and provides deeper insights into microbial heavy metal resistance mechanisms.
Environmental Chemistry•2026•DOI: 10.7524/j.issn.0254-6108.2026022402
Graphene oxide–silver nanoparticle (GO-AgNPs) nanocomposites synergistically combine the high specific surface area and biocompatibility of graphene oxide with the potent antibacterial and optical properties of silver nanoparticles. This review systematically examines current synthetic strategies—physical, chemical, and biological—and their influence on nanocomposite morphology, loading efficiency, and stability. The biomedical applications of GO-AgNPs are critically analyzed, focusing on antimicrobial activity, anticancer therapy, drug delivery, and biosensing. Mechanistic insights reveal that antimicrobial action involves membrane disruption, oxidative stress, and damage to biomolecules, while anticancer effects are mediated through reactive oxygen species (ROS) generation. The review also addresses challenges such as AgNP aggregation and stability, which are mitigated by GO support. Future directions emphasize the development of multifunctional nanomedicine platforms, with a need for standardized toxicity assessments and scalable synthesis. This comprehensive overview aims to guide further research and clinical translation of GO-AgNPs.
Journal of Environmental Engineering Technology•2026•DOI: 10.13205/j.hjgc.202608013
Eutrophication and cyanobacterial blooms threaten aquatic ecosystems and drinking water safety globally. This study evaluated the efficacy of a compound algicide (PQGA-126, PAC, and red soil) combined with submerged plants (Vallisneria natans and Hydrilla verticillata) for suppressing blooms and restoring eutrophic water. Indoor static experiments used algae-laden water from Nanhu Lake, Gongqingcheng, Jiangxi. Six treatments were established: control, V. natans alone, H. verticillata alone, algicide alone, algicide + V. natans, and algicide + H. verticillata. Results demonstrated that combined treatments significantly reduced total nitrogen (TN), total phosphorus (TP), chlorophyll-a (Chl-a), and turbidity, markedly lowering eutrophication within a short period. The combined approach outperformed single-plant treatments, with algicide + V. natans achieving the greatest reduction in the comprehensive trophic state index. Additionally, the algicide significantly enhanced V. natans growth rate and H. verticillata catalase (CAT) activity, indicating species-specific physiological responses. These findings suggest that integrating compound algicide with submerged plants, particularly V. natans, offers a promising strategy for rapid and effective eutrophic water remediation.
Journal of Environmental Engineering Technology•2026•DOI: 10.13205/j.hjgc.202608014
Fluoride pollution poses a serious threat to public health worldwide, particularly in dispersed residential areas where high-fluoride groundwater is the primary drinking water source. Electroflocculation-based defluorination is a preferable treatment option, but its environmental and economic impacts vary with the water supply scheme. This study established three schemes: centralized undifferentiated (S1), centralized differentiated (S2), and distributed differentiated (S3). Life cycle environmental impact and life cycle cost assessments were conducted. Results show that S1 has the largest negative environmental impact, with indicators ranging from 1.4 to 6.7 times those of S2 or S3, primarily due to electrode consumption and electricity usage. S3 exhibits the lowest water supply cost, achieving a 62% cost reduction compared to S1. The distributed differentiated scheme (S3) offers both lower life cycle environmental impact and the lowest life cycle cost, making it the most advantageous option for dispersed residential areas. This study provides a systematic basis for selecting optimal water supply schemes, promoting the practical application of electroflocculation defluorination in such regions.
Journal of Environmental Engineering Technology•2026•DOI: 10.13205/j.hjgc.202608026
Biochar and microbial inoculants are widely used for agricultural soil amendment. To investigate the effects of different straw biochars and Bacillus subtilis inoculant, applied individually or combined, on nitrogen transformation in dryland soil, a 60-day laboratory incubation experiment was conducted with six treatments: control (CK), 4% rice straw biochar (S), 4% rapeseed straw biochar (Y), 4% rice straw biochar plus 5 mg/kg inoculant (SJ), 4% rapeseed straw biochar plus 5 mg/kg inoculant (YJ), and inoculant alone (J). Results showed that rice straw biochar significantly increased soil nitrate nitrogen content by 148.74%–152.68% compared to CK, enhancing nitrification. Combined application with inoculant further increased average net nitrogen mineralization rate by 77.28%–99.38%. Conversely, rapeseed straw biochar decreased nitrate nitrogen by 51.66%–57.61%, and combined application reduced net nitrogen mineralization rate by 82.07%–84.73%. Treatments S, Y, SJ, and YJ promoted microbial biomass nitrogen (MBN) synthesis, with S and Y increasing MBN by 2.02- and 2.20-fold over CK, respectively. Combined treatments further increased MBN by 103.26%–149.44% relative to single biochar treatments. These findings indicate that biochar type governs nitrification and net nitrogen mineralization, while combined application exerts synergistic effects on MBN. For comprehensive dryland soil improvement, YJ treatment is optimal, reducing inorganic nitrogen loss risk and enhancing microbial nitrogen activity.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-4100-9
Shape memory droplet manipulation platforms have attracted significant attention due to their programmable droplet control capabilities. Current research primarily focuses on superhydrophobic surfaces and slippery lubricant-infused porous surfaces (SLIPS); however, these approaches suffer from vulnerable surface micro/nanostructures and loss of lubricant oils. Here, we report a shape memory quasi-liquid polydimethylsiloxane (PDMS) brush surface that overcomes these limitations. The surface is fabricated by introducing a SiO2 layer as a 'bridge' on a shape memory epoxy substrate, providing abundant functional groups for grafting PDMS brushes. By precisely controlling the SiO2 layer thickness and grafting conditions, the surface exhibits good shape memory properties and low adhesion to diverse liquids with varying surface tensions. Reversible anisotropic/isotropic droplet sliding control for both water and organic droplets is demonstrated through dynamic introduction/removal of groove structures, proving excellent droplet manipulation based on the combination of shape memory and low adhesion of PDMS brushes. Furthermore, the material can be applied as a functional coating on diverse substrates to impart anti-fouling and self-cleaning properties. This work introduces a nanoscale SiO2 layer as a 'bridge', offering a strategy to graft PDMS brushes onto polymer surfaces. Given the advantages of quasi-liquid PDMS brushes and programmable controllability of shape memory polymers, this work provides fresh ideas for developing droplet manipulation platforms.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-4017-y
Lattice distortion via entropy engineering can significantly optimize thermoelectric performance by intensifying phonon scattering. However, excessive lattice distortion in high-entropy materials inevitably hinders carrier transport, limiting the wide-temperature average ZT (ZTave). To enhance the wide-temperature thermoelectric performance of low-cost PbS-based compounds, this work introduces moderate lattice distortion by controlling entropy around 1.0R (R is the gas constant) to balance phonon and carrier transport, alleviating restrictions on carrier mobility. Substantial Se and Te alloying in PbS induces rock-salt lattice distortion, effectively impeding phonon propagation, thus suppressing lattice thermal conductivity (κlat) from 2.41 W m−1 K−1 in PbS to 0.66 W m−1 K−1 in PbS0.5Se0.35Te0.15 at 300 K. Additionally, Cu interstitials are introduced into the lattice-distorted PbS0.5Se0.35Te0.15 to further optimize carrier density and weighted carrier mobility (μW), leading to significant improvement in μW/κlat parameter at 300–773 K. Finally, a room-temperature ZT of 0.53 and a maximum ZT of 1.44 are obtained in PbS0.5Se0.35Te0.15-1%Cu sample, contributing to an impressive ZTave of 1.08 at 300–773 K and a maximum power generation efficiency (ηmax) of 7.5%. The results outperform previously reported cost-effective PbS-based compounds and highlight the importance of lattice distortion regulation in enhancing wide-temperature thermoelectric performance.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-4044-3
Efficient sequestration of radioactive iodine species (I2, CH3I, I3−) is vital for nuclear safety and environmental protection. However, developing multifunctional adsorbents that remain effective under diverse conditions remains a significant challenge. Herein, we report two functionalized PD-COFs (PD-WS and PD-WY) with moderate crystallinity, outstanding thermal stability, and robust chemical resistance. They exhibit superior adsorption performance in both gas and liquid phases. Specifically, at 75°C, PD-WY achieves capacities of 4.88 g g−1 for I2, 1.55 g g−1 for CH3I, and 5.55 g g−1 for the I2/CH3I mixture, while high capacities are also retained at room temperature. In solution, PD-WY adsorbs up to 3.56 g g−1 of I3− in water and 2.00 g g−1 of iodine in cyclohexane. These COFs display rapid kinetics (K80% = 3.25 g g−1 h−1 for I2 and 7.89 g g−1 h−1 for I3−) and excellent selectivity. Mechanistic studies indicated that the excellent iodine affinity of PD-COFs arises from their rich electronic structures, abundant active sites, and charge transfer interactions. These findings position PD-COFs as highly promising adsorbents for nuclear waste treatment and environmental remediation.
Journal of Fuel Chemistry and Technology•2026•DOI: 10.1016/S1872-5813(26)60666-4
The catalytic hydrogenation of CO2 to ethanol is a pivotal technology for carbon neutrality and high-value chemical production. Cobalt-based catalysts, with their unique electronic structure and tunability, are promising for this reaction, yet challenges persist: low single-pass CO2 conversion, ethanol selectivity below 60%, and rapid deactivation. This review systematically analyzes recent progress, establishing the thermodynamic and kinetic framework, and dissecting molecular-level mechanisms, particularly C–C bond formation and controlled oxygen removal. It critically evaluates synergistic effects among metallic Co, Co2C, CoOx, and bimetallic configurations, emphasizing structure-activity relationships influenced by supports and promoters. Inverse catalysts and tandem systems are reviewed, along with water's role as a hydrogen source. The review identifies shortcomings and advocates for advanced in situ/operational characterization and theoretical modeling to guide next-generation catalyst design. Key findings from cited studies include: Co/La4Ga2O9 achieving high selectivity (reference [85]); K-loaded Cu/CoOx boosting ethanol production (reference [86]); Ga-promoted CuCo catalysts with Cu-CoGaOx interfacial sites (reference [88]); and Mo-tailored CoFe alloys suppressing over-carburization (reference [89]). These insights provide a framework for developing efficient cobalt-based systems, deepening mechanistic understanding, and accelerating sustainable ethanol production.
Journal of Fuel Chemistry and Technology•2026•DOI: 10.1016/S1872-5813(26)60721-9
Methane (CH4), the primary component of natural gas, is an ideal feedstock for producing high-value chemicals and clean fuels due to its high hydrogen-to-carbon ratio. However, its chemical inertness poses significant challenges, and traditional thermal catalytic reforming processes suffer from long reaction pathways and high energy consumption. Photocatalytic technology enables highly selective CH4 conversion under mild conditions, even at room temperature, offering environmental and economic benefits. This review systematically summarizes recent advances in room-temperature photocatalytic systems for direct CH4 conversion. It begins by elucidating the mechanisms, product distributions, and inherent challenges of four key reaction pathways: partial oxidation, non-oxidative coupling, oxidative coupling, and oxidative carbonylation. The discussion then addresses the critical role of catalyst architecture, focusing on semiconductor supports, metal site modulation, and advanced porous frameworks. Furthermore, reactor design and process intensification strategies are examined, including batch and continuous-flow reactors, novel structured reactors, and photo-electro and photo-thermo synergistic approaches. Finally, reaction mechanisms are summarized. Despite progress, challenges remain in fundamental understanding, performance evaluation, and technological integration. Future efforts should focus on mechanistic studies, standardization of evaluation protocols, development of non-noble metal catalysts, system optimization, and comprehensive sustainability assessments.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-4029-4
Chemical sensing technology is pivotal in modern industry and daily life, with sensor performance critically reliant on nanomaterials. While sensors based on traditional nanomaterials, such as inorganic semiconductors and organic conductive polymers, have achieved commercialization, they face persistent challenges. As an emerging subclass, conductive metal-organic frameworks (c-MOFs) not only inherit the core advantages of traditional MOFs—high specific surface area, porosity, and tunable composition/structure—but also offer adjustable electrical conductivity, rendering them ideal for sensing applications. This review systematically elucidates the construction and properties of c-MOFs across microscopic crystalline and macroscopic micro-nano structural scales. Special emphasis is placed on the structural design and regulation of c-MOFs for analytical sensing, and the intrinsic structure-performance relationship is clarified to achieve higher sensitivity, selectivity, response speed, and long-term stability, as well as other performance metrics. Finally, we comprehensively summarize the typical applications of c-MOFs-based sensors, covering environmental and safety monitoring, photoelectric detection, and health monitoring and diagnosis. At the same time, the key challenges existing in this field, such as the controllable preparation of high-quality single-crystal materials, the theoretical analysis of intrinsic electrically conductive mechanisms, and the balance between macroscopic material stability and the processing performance of devices, were evaluated. The future research directions should focus on developing new ligands and metal combinations to optimize the band structure, deepening the exploration of the mechanisms of emerging physical effects such as piezoelectricity, and promoting the integration and application of materials in practical scenarios such as flexible electronics and wearable devices.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-4162-0
The urea oxidation reaction (UOR) offers a low-energy pathway for hydrogen production via water electrolysis, but Ni-based catalysts suffer from Ni self-oxidation reaction (NSOR) that wastes energy and poisons active sites via strong CO2 adsorption. Here, we design MoN/Ni heterostructures to optimize the electronic structure of Ni sites, suppressing NSOR. X-ray photoelectron spectroscopy and X-ray absorption spectroscopy confirm the formation of electron-rich Mo and electron-deficient Ni active pairs. In-situ spectroscopy, electrochemical tests, and density functional theory calculations reveal that electron-rich Mo sites enhance urea adsorption, while electron-deficient Ni sites prevent NSOR, facilitating urea activation, intermediate conversion, and CO2 desorption. The synergistic effect yields a current density of 100 mA cm−2 at only 1.39 V vs. RHE in 1 M KOH + 0.33 M urea, outperforming many NiOOH-based catalysts. This work introduces a novel high-performance catalyst with electron-rich/electron-deficient active pairs for efficient UOR.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-4163-y
Liquid metals (LMs) are promising catalyst systems due to their unique interfacial properties, yet migration and aggregation of active species cause performance degradation. Here, we report a composition optimization strategy using a Ga-In eutectic liquid metal support to reduce surface energy and achieve homogeneous incorporation of Cu species (GaIn-Cu). Comprehensive characterizations confirm uniform Cu dispersion, which inhibits migration and formation of CuGa2 intermetallic phases during CO2 electroreduction (CO2RR). The GaIn-10-Cu catalyst achieves a maximum CH4 Faradaic efficiency of 73.49% at -0.8 V vs. RHE, significantly higher than Ga-Cu (61.49%). Moreover, GaIn-10-Cu exhibits enhanced stability for CH4 generation over 40 h of continuous operation. In-situ spectroscopic studies reveal that GaIn-10-Cu favors formation and protonation of key *CHO and *OCH3 intermediates, steering selectivity toward CH4. This work demonstrates that tuning LM composition modulates catalytic site performance, offering a strategy for durable and selective LM-based electrocatalysts.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4088-y
Silicon nitride (Si3N4) is a strong, thermally stable covalent ceramic typically regarded as brittle with limited deformability. Recent experimental and density functional theory (DFT) studies indicate that the α/β interface undergoes a β→α transformation via sliding followed by bond-switching, suggesting a pathway to achieve plasticity, but DFT's spatiotemporal reach prevents a full mechanistic picture. Here, we develop a physics-informed high-accuracy neural network interatomic potential (NNAP) model with DFT-level accuracy for phase transformations and use it to perform large-scale atomistic simulations. NNAP-guided simulations show that structural relaxation during relative sliding between α- and β-phases at the interface triggers pronounced atomic-layer rearrangements and lowers the energy barrier by nearly 60%. We further find that the ensuing phase transformation does not proceed by isolated layer-by-layer switching but instead follows in-plane nucleation and growth mediated by a bilayer cooperative mechanism, which further reduces kinetic barriers and facilitates the transformation. CI-NEB calculations reveal that the bilayer cooperative pathway has an energy barrier of 0.018 eV/Ų, lower than the independent layer-by-layer manner (0.020 eV/Ų), indicating enhanced kinetic accessibility. These results provide new atomistic insights into interface-driven phase transformations in dual-phase Si3N4 and offer guidance for designing more deformable covalent ceramics.