SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4487-1
Direct seawater electrolysis offers a cost-effective route to clean hydrogen, but the competitive chlorine evolution reaction (CER) and electrode corrosion impede practical deployment. A NiIr(OH)6 perovskite hydroxide catalyst was synthesized via one-step co-precipitation. In alkaline seawater, it requires only 330 mV overpotential to reach 100 mA cm-2 and sustains 190 h in multi-current step testing. In situ Raman spectroscopy shows that Ir species promote the formation of active NiOOH phases, accelerating oxygen evolution reaction (OER) kinetics. Density functional theory calculations reveal that Ir doping modulates the electronic structure of Ni and Ir sites, strengthening OH adsorption (-2.09 eV) and suppressing Cl- adsorption (-1.38 eV), thereby enhancing OER selectivity. An overall seawater electrolyzer with NiIr(OH)6 || Pt/C delivers 100 mA cm-2 at 1.63 V and operates stably for over 100 h. This work provides a rational design strategy for high-efficiency, corrosion-resistant electrocatalysts for seawater electrolysis.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4394-x
Spiral graphene, characterized by Bernal-stacked layers and unique electronic properties, holds promise for advanced quantum and optoelectronic devices. However, its controlled synthesis remains challenging. Here, we report the self-assembly growth of single-crystal spiral graphene on a liquid heterogeneous substrate via chemical vapor deposition (CVD). A 50-μm-thick Cu foil was placed on a Ni support and heated to 1083 °C, the melting point of pure Cu, ensuring a fully molten Cu layer on solid Ni. Growth proceeded for 30 minutes under optimized conditions. The resulting spiral graphene exhibits a uniform Bernal stacking configuration, as confirmed by transmission electron microscopy and selected-area electron diffraction. Time-of-flight secondary ion mass spectrometry (ToF-SIMS) depth profiling and isotope-labeling experiments reveal that carbon incorporation occurs predominantly at the spiral step edges, following a self-assembly mechanism driven by the liquid substrate's dynamic surface. Control experiments on solid Cu-Ni alloys yield no spiral morphology, underscoring the critical role of the liquid phase. The liquid heterogeneous substrate facilitates rapid carbon diffusion and step-edge attachment, enabling the growth of high-quality single-crystal spirals with controlled layer number. This work provides a scalable route to synthesize spiral graphene with tailored stacking, advancing its application in twistronics and high-performance electronics.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4378-6
Electrical stimulation (ES) is a powerful strategy to mimic endogenous bioelectricity and accelerate complex tissue regeneration, such as chronic wound healing. However, aligning external stimulation with native bioelectrical and biochemical signals for rapid and scarless tissue regeneration remains challenging. Here, we report a wireless bioelectronic dressing (E-dressing) that establishes stable bioelectronic interfaces and precisely modulates cellular physiological activities. Bioactive allylamine-functionalized gold clusterzymes (AM-AuNCs) with intrinsic superoxide dismutase-like activity were designed as functional modifiers to co-polymerize with acrylic acid (AA), forming conductive p(AA-AuNCs) hydrogels. AM-AuNCs impart the hydrogel with superior antioxidant activity, robust interfacial adhesion, and high conductivity, enabling rapid hemostasis, efficient electrical stimulation transmission, and precise fibroblast regulation. Combined with 1.00 V of electrical stimulation, the p(AA-AuNCs) hydrogel significantly promotes fibroblast proliferation, migration, and alignment by upregulating TGF-β, FGF-2, and EGF. Integrated with a biocompatible, flexible zinc-ion battery delivering sustained and tunable electrical signals for over 7 days, the E-dressing precisely guides collagen remodeling, inhibits myofibroblast activation, and maintains Col I/Col III balance, leading to a 5-fold acceleration of wound closure and a 65.5% reduction in scar formation. This multifunctional E-dressing represents a promising bioelectronic device for precise cellular regulation and multimodal regenerative therapy.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4134-6
Oral leukoplakia (OLK) is a prevalent premalignant lesion with malignant transformation risk. Current adhesive hydrogels lack lesion-specific adhesion and precision therapy. We synthesized DNA hydrogels via co-crosslinking of thiolated gelatin and thiolated oligonucleotide through disulfide bonds, incorporating Mn2+ and chlorin e6 (Ce6) via thiol-metal coordination and physical entrapment. Low-frequency ultrasound (LFUS) anchored complementary oligonucleotides onto the lesion surface, enabling site-specific bioadhesion through base pairing. Under high-frequency ultrasound (HFUS), Ce6 generated reactive oxygen species, triggering mitochondrial DNA (mtDNA) release in hyperproliferative epithelial cells. Concurrent HFUS accelerated Mn2+ release, potentiating cGAS recognition of cytosolic mtDNA and activating the cGAS-STING pathway. This induced dendritic cell maturation, priming naïve T cells into cytotoxic T lymphocytes, reversing the immunosuppressive microenvironment. The modality induced immunological memory, restraining OLK recurrence and impeding malignant transformation. This study introduces the first DNA-directed hydrogel bioadhesion strategy and proposes unprecedented cGAS-STING pathway-associated immunotherapy against OLK.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4217-y
Rational design and construction of effective photocatalysts is a promising way for green and sustainable chemistry, but still a great challenge. Herein, taking triphenylamine-containing aldehydes as reactants, two covalent triazine frameworks (CTFs), tris(4-formylphenyl)amine (TPA)-CTF and tris(4-formylbiphenyl)amine (TBPA)-CTF, were rationally constructed. The strong electron donor property of the triphenylamine moieties derived from the initial reactants and the strong electron acceptor nature of the in-situ formed built-in triazine rings in CTFs endowed these robust triphenylamine-based CTFs with donor-acceptor (D-A) or donor-π-acceptor (D-π-A) structure features. Photocatalytic experiments revealed that, compared with the controlled phenyl analogue CTF, 1,3,5-tri(p-formylphenyl)benzene (TFPB)-CTF, both of the triphenylamine-based CTFs exhibited superior photocatalytic activity not only in photocatalytic hydrogen peroxide generation, but also in photocatalytic aerobic oxidations of diverse organic substrates. Theoretical studies further confirmed that their enhanced photocatalytic performance should be attributed to their unique D-A or D-π-A features in the constructed triphenylamine-based CTFs. This work successfully demonstrated that rational selection of reactants containing electron donor moieties to construct CTFs should be a reliable way for the construction of effective photocatalysts for photocatalytic oxidation reactions.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3709-4
Photoelectrocatalytic (PEC) detoxification of ofloxacin in hyposaline wastewater is hindered by weak built-in electric fields (IEF) and rapid charge recombination. Here, we report a crystal dipole engineering strategy using high-valence Mo-doped BiVO4 to enhance IEF and PEC activity. Mo incorporation breaks lattice symmetry, increasing the crystal dipole moment and amplifying IEF to 2.05 times that of pristine BiVO4. This promotes directional carrier migration, improving electron-hole separation efficiency. The optimized 4% Mo-BiVO4 photoanode achieves 96.5% ofloxacin degradation within 60 minutes and maintains 91.9% degradation efficiency in natural lake water containing saline and organic interferents, demonstrating exceptional anti-interference capability. This work provides a strategy for boosting photocatalytic performance through unit-cell dipole engineering, aiming to enhance sustainability in wastewater treatment.
Chinese Journal of Environmental Engineering•2026•DOI: 10.12030/j.cjee.202506020
The rotary kiln roasting of lepidolite for lithium extraction faces challenges of unstable lithium conversion rates and high energy consumption. To address this, a multi-objective optimization method coupling improved neural network simulation with a multi-objective genetic algorithm was proposed, targeting the synergistic optimization of lithium conversion rate (TRLi) and natural gas consumption intensity (EIng). Using long-term industrial time-series data of batching parameters and kiln operating variables, back-propagation (BP) neural network and its particle swarm optimization (PSO) improved variant were developed to model TRLi and EIng. The PSO-BP model demonstrated superior accuracy in capturing the complex nonlinear relationships, reducing mean absolute percentage errors (MAPE) to 0.278 and 0.284 for TRLi and EIng, respectively. Subsequently, the non-dominated sorting genetic algorithm II (NSGA-II) was employed to construct a multi-objective optimization model, yielding a Pareto-optimal set of process parameters that maximize TRLi and minimize EIng. The results revealed that under NSGA-II optimized conditions, TRLi could be stabilized between 82.45% and 87.96%, an average increase of 3.61 percentage points over baseline operations, while EIng could be reduced to 53.7 m3 per ton of clinker. For an annual processing capacity of 3.2×105 tons of lepidolite concentrate and sulfate mixture, this corresponds to an additional 127.1 tons of lithium metal recovery, a reduction of 1,964,912 m3 in natural gas consumption, and a decrease of 3,763.84 tons in CO2 emissions annually. This study provides theoretical and technical support for the green, high-quality, and low-carbon supply of critical raw materials for the lithium battery new energy industry.
The Chinese Journal of Process Engineering•2026•DOI: 10.12034/j.issn.1009-606X.225188
Driven by the urgent demand for green and low-carbon technologies, the development of high-performance and cost-effective rare-earth free permanent magnets has emerged as a key research focus for sustainable energy and advanced electronic applications. Among various candidates, M-type strontium ferrites have attracted considerable attention due to their excellent thermal stability, high magnetocrystalline anisotropy, and abundant raw material availability. In this study, Sr0.41La0.36Ca0.23Fe11.8Co0.2O19 was selected as the base system, and a series of samples were synthesized via a solid-state reaction combined with high-energy ball milling. The synergistic effects of varying CeO2/La2O3 mass ratios (0:10 to 10:0) and pre-sintering temperatures (1150-1200°C) on the microstructure and magnetic properties were systematically investigated. Microstructural analyses revealed that moderate Ce substitution effectively induced controlled lattice distortion and promoted densification, which inhibited abnormal grain growth and refined the microstructure. Such structural modulation not only enhanced domain wall pinning but also improved magnetocrystalline anisotropy, leading to a remarkable increase in coercivity. Magnetic measurements confirmed that the composition with a CeO2/La2O3 mass ratio of 2:8 and pre-sintered at 1180°C achieved the most balanced magnetic performance, exhibiting enhanced coercivity, sufficient remanence, and stable saturation magnetization. This work provides new insights into the cooperative effects between rare-earth doping ratios and thermal processing parameters, clarifying how lattice defects, grain boundary characteristics, and microstructural evolution collectively govern the magnetic properties of M-type ferrites. The findings establish a practical strategy for tailoring the microstructure-property relationship in rare-earth free permanent magnets, opening an optimized processing window for scalable fabrication of environmentally friendly, high-performance ferrite materials.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3633-5
High-temperature interfacial diffusion in Half-Heusler (HH) thermoelectric devices poses significant challenges for practical applications, particularly the diffusion of Ag from conventional solders, which degrades material performance and device stability. This study reveals anomalous Ag diffusion through a Cr powder barrier layer into Ti0.5Zr0.5NiSn0.98Sb0.02, driven by Sn phase penetration. In contrast, employing a Cr foil barrier layer pre-densified the material, effectively preventing Sn phase penetration and eliminating Ag diffusion pathways, thereby preserving junction integrity. After aging at 973 K for 30 days, the Cr foil junction maintained a clean interface with a low contact resistivity of 0.27 μΩ cm2. Benefiting from this interfacial design, a Hf-free HH module achieved a high conversion efficiency of 10.4% at a hot-side temperature of 976 K, alongside long-term stability. This work addresses critical bottlenecks in developing high-performance, low-cost HH modules, facilitating their commercial application in waste heat recovery.
Environmental Chemistry•2026•DOI: 10.0000/202605-2
Surface sediment samples were collected from 28 stations in the intertidal zones of Xiangshan Harbor, Sanmen Bay, and the southern coast of Hangzhou Bay, major fishery waters in Ningbo, to assess heavy metal pollution and ecological risk. Concentrations of Cu, Pb, Zn, Cd, Cr, Hg, and As were determined. Results showed that Cu and Cr were the primary超标 factors, with mean concentrations exceeding the Class I standard (GB 18668-2002) by factors of 1.03 and 1.1, respectively, in Xiangshan Harbor; in Sanmen Bay, Cr exceeded by 1.1 times, while Cu did not. In Hangzhou Bay, Cu and Cr were elevated but below the standard. Coefficients of variation (CV) for five metals in Hangzhou Bay exceeded 30%, indicating strong external influence. In Xiangshan Harbor, As showed strong variation, and in Sanmen Bay, Hg showed strong variation. The potential ecological risk indices (RI) were 38.5, 36.7, and 31.1 for Xiangshan Harbor, Sanmen Bay, and Hangzhou Bay, respectively, all indicating low ecological risk. Spatial distribution in Hangzhou Bay revealed a decreasing gradient from a chemical industrial park, suggesting industrial discharge as a primary source. The study provides baseline data for environmental management and recommends source control and bioremediation in high-risk areas.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3786-8
Conventional cancer diagnostic techniques, such as tissue sampling and microscopy, are invasive and prone to misdiagnosis, driving the need for non-invasive, precise alternatives. Chiral biophotonics, exploiting circularly polarized light (CPL), offers unique polarization-selective interactions with biological tissues, enabling higher imaging contrast and molecular-level discrimination. However, current CPL detection technologies are passive and single-mode, lacking dynamic tunability and parallel processing capabilities. Meanwhile, AI-assisted diagnostics rely on separated sensing and computing units, suffering from poor integration and transmission inefficiency. Here, we report a near-infrared (NIR) chiral organic synaptic photodiode with electrically tunable dual-mode operation, enabling simultaneous CPL detection and neuromorphic processing. Under negative bias, the device operates as a highly sensitive CPL detector for chiroptical signal acquisition. Under positive bias, it exhibits history-dependent synaptic behavior with photocurrent dissymmetry factor (g_ph) dynamically tunable up to -0.06. By integrating this device into an optical convolutional neural network (OCNN), we achieved intelligent cancer detection with CPL-based imaging. Experimental results demonstrate that CPL detection accuracy reaches 83%, approaching the theoretical 87%, significantly outperforming natural light detection at 65%. The device enhances image contrast and feature extraction, laying a foundation for intelligent, adaptive diagnostic systems.
Environmental Chemistry•2026•DOI: 10.7524/j.issn.0254-6108.2025120801
The interaction between microplastic-derived dissolved organic matter (PSDOM) and iron oxides in soil environments can modulate its photosensitization effects, yet the underlying mechanisms remain elusive. This study investigated the influence of hematite with distinct morphologies—flake-shaped (HNPs) and cubic (HNCs)—on the photosensitization of polystyrene-derived dissolved organic matter (PSDOM). Under 500 W mercury lamp irradiation, both hematite morphologies promoted PSDOM degradation, with HNCs exhibiting superior performance: total organic carbon (TOC) decreased from 18.4 mg·L−1 to 12.3 mg·L−1 within 90 min, compared to 13.3 mg·L−1 for HNPs. Three-dimensional fluorescence spectroscopy indicated that hematite alters the humification process, thereby modifying photosensitization. Electron paramagnetic resonance (EPR) spectroscopy identified the generation of singlet oxygen (1O2), hydroxyl radicals (·OH), and carbon-centered radicals (CH3C(=O)OO·). HNCs significantly enhanced 1O2 production, while HNPs favored ·OH generation; both inhibited CH3C(=O)OO· formation. Quantitative analysis via high-performance liquid chromatography revealed that the steady-state concentration of 1O2 was highest with HNCs, reaching 2.80 times that of the PSDOM control, whereas ·OH concentration peaked with HNPs at 1.98 times the control. Notably, the steady-state concentration of 1O2 was approximately three orders of magnitude higher than that of ·OH. These findings elucidate the morphology-dependent role of hematite in PSDOM photosensitization, providing mechanistic insights into the environmental fate of microplastic-derived organic matter in complex soil systems.
Chinese Journal of Environmental Engineering•2026•DOI: 10.12030/j.cjee.202512064
With increasingly stringent discharge standards for fluoride-containing wastewater, there is an urgent need for cost-effective, easily operable adsorbents capable of rapid adsorption and separation for deep defluorination. In this study, a novel adsorbent, Ce-FMSY, was successfully prepared by co-precipitation of cerium (Ce) and Fe3O4 onto Y-type molecular sieve (MSY). The effects of Ce/Fe mass ratio, adsorption time, initial solution pH, and coexisting anions on adsorption performance were systematically investigated. Results showed that at a Ce loading of 1.0% and Ce/Fe mass ratio of 2:1, Ce-FMSY rapidly adsorbed 86.2% of F− within 30 min, with a maximum adsorption capacity of 4.139 mg·g−1. The saturated magnetization of Ce-FMSY was 13.4 emu·g−1, enabling rapid solid-liquid separation. The adsorbent maintained a stable fluoride removal rate of 77.1%–96.8% over an initial pH range of 3–9. Adsorption kinetics and isotherm fitting indicated that F− adsorption onto Ce-FMSY followed pseudo-second-order kinetics and the Freundlich model, suggesting chemisorption as the dominant mechanism, involving rapid diffusion, surface complexation, and valence transformation reactions. After five adsorption-desorption cycles, the adsorption capacity slightly decreased and then stabilized, with F− removal efficiency maintained at approximately 72.3% of the initial value. This study provides data support and theoretical reference for deep fluoride removal from wastewater.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-4034-3
The local concentration and configuration of active sites critically influence the selectivity of CO2 electroreduction, yet constructing well-defined structures to probe this relationship remains challenging. Here, we report a molten salt-assisted strategy to synthesize Ce-Ov-Cu cascade catalysts with tunable configurations and relative concentrations of Cu and Ce-Ov sites. Two distinct geometries were engineered: one with dense Cu sites surrounding Ce-Ov (Cu10CeOx) and another with isolated Cu centers encapsulated by Ce-Ov (CuCe10Ox). These configurations direct key intermediates (*CHO or *COH) toward either C-C coupling or deep hydrogenation, thereby switching product selectivity. CuCe10Ox achieves a CH4 Faradaic efficiency (FE) of 61.7% at -1.6 V vs. RHE, whereas Cu10CeOx favors C2 production with a maximum FE of 61.5% at -1.4 V vs. RHE. Mechanistic studies reveal that locally concentrated Cu sites exhibit strong *CO2 binding affinity, enhancing *CO surface coverage and facilitating *CO-*COH coupling. In contrast, Ce-Ov-rich regions with isolated copper centers supply abundant *H, promoting deep protonation of *CHO toward CH4. This work provides insights into catalyst design, demonstrating that manipulating structural chemistry can guide CO2RR toward targeted products.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4040-0
High-performance organic second-order nonlinear optical (NLO) crystals face a persistent challenge: molecular designs that enhance hyperpolarizability often crystallize into centrosymmetric or nonpolar arrangements, suppressing bulk second-order response, while simultaneously reducing optical bandgaps, enforcing a trade-off between nonlinearity and transparency. We report a chirality-driven polar lattice engineering strategy that couples molecular asymmetry with directional intermolecular interactions to promote polar ordering. A binaphthyl-based chromophore (S-3) crystallizes in the polar space group P2₁, exhibiting strong second-harmonic generation (~3.53 × KDP), wide transparency (3.91 eV), phase-matchable birefringence (Δn = 0.15), high laser damage threshold (742.6 MW cm⁻²), and thermal stability up to 210 °C. Theoretical calculations reveal a 69% enhancement in first-order hyperpolarizability (β_tot) relative to the unfunctionalized derivative, with a net intramolecular electron transfer of 0.16 e⁻ from the chiral scaffold to the benzoate acceptor. Crucially, enantiomeric crystals exhibit identical NLO responses, confirming that bulk nonlinearity is governed by engineered lattice polarity, not molecular handedness. This work establishes chirality as an active tool for crystal engineering and provides a general design paradigm for high-performance organic NLO materials.
SCIENCE CHINA Materials•2025•DOI: 10.1007/s40843-025-3509-0
The optimization of device performance through tunable elemental doping is a critical aspect of semiconductor engineering. This study employs plasma-enhanced chemical vapor deposition to fabricate Sn-doped Ga2O3 films with Sn concentrations ranging from 0 to 1.14 at.%. The oxygen vacancy (OII) concentration is found to modulate the conductivity and the atypical Schottky-type junction behavior at the Ti/Sn-Ga2O3 interface, thereby influencing carrier transport and the detection performance of Au/Ti/Sn-Ga2O3/Ti/Au photodetectors. At an OII concentration of 38.88%, the interfacial Schottky barrier height decreases to 0.54 eV, facilitating electron tunneling and yielding a responsivity of 1880 mA/W. Conversely, a reduced OII concentration of 30% reinforces the barrier height to 0.70 eV, restricting dark current to 28.4 pA while improving detectivity to 1.44×10^13 Jones and the photo-to-dark current ratio to 3.42×10^4. These results underscore the trade-off between doping concentration and performance optimization, demonstrating the potential of interface engineering in regulating electronic transport and device performance.