SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4340-0
Thin films with nonreciprocal circularly polarized luminescence (CPL) emit circularly polarized light with opposite handedness from its two opposite sides, holding great promise for advancing optical multiplexing technologies. Herein, we introduce component orientation mismatch into chiral composite films via stretching, which leads to macroscopic optical anisotropy and accordingly drives the films to show nonreciprocal CPL activity. Stretching triggers linear dichroism-linear birefringence (LD-LB) coupling to realize nonreciprocal circular dichroism (CD) in elastomer films consisting of thermoplastic polyurethane (TPU) and chiral polyacetylene (R/S-PSA). Moreover, fluorescence anisotropy-linear birefringence (f-LB) coupling occurs after introducing fluorescent groups into the films to achieve multi-color nonreciprocal CPL. The unstretched films exhibit reciprocal CPL with a luminescence dissymmetry factor (|glum|) of 10⁻¹, with handedness determined by PSA’s intrinsic helical chirality. In the stretched films, the oriented fluorescent groups undergo f-LB coupling with matrix crystallization, resulting in nonreciprocal CPL (|glum|=10⁻²). Based on this distinctive chiroptical feature, we have developed chiral logic gates, multidimensional optical encryption systems, and enantioselective photopolymerization platforms to demonstrate the potential uses of the as-obtained CPL films. This work provides both fundamental insights into and a versatile material platform for developing smart nonreciprocal photonic systems with advanced chiroptical functionality.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4235-6
Fluorite-structured oxides (HfO2, ZrO2) are promising for resistive random-access memory (RRAM) due to their scalability and tunable properties. However, achieving high resistive switching on/off ratios remains challenging. Here, we report a collaborative strategy combining Hf/Zr ratio optimization and Lu3+ doping to regulate band structure and oxygen vacancy concentration in Hf0.4Zr0.6O2 (LHZO) thin films. The resulting LHZO devices exhibit a resistive switching ratio of 8.4 × 10^4, two orders of magnitude higher than that of ZrO2 (1.2 × 10^3). Electrical characterization and synchrotron radiation photoemission spectroscopy reveal that Lu doping widens the bandgap to 4.95 eV, downshifts the valence band, and introduces defect states, collectively suppressing p-type conductivity and reducing off-state leakage current. Simultaneously, Lu3+ doping enriches oxygen vacancies, stabilizing ohmic conductive filaments in the on-state. This co-optimization of band structure and oxygen vacancies effectively enhances insulating properties in the high-resistance state and ohmic conductivity in the low-resistance state, leading to superior resistive switching performance with robust retention (>10^4 s). Our findings establish a fundamental strategy for tailoring electronic properties of doped HfZrO2 thin films toward high-performance RRAM applications.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4232-1
Polyanionic cathode materials are widely considered as potential cathode materials for sodium-ion batteries due to their strong three-dimensional framework and intrinsic thermal safety. Nevertheless, the limitation of the specific capacity and energy density hindered their application, which can be ascribed to the common reliance of single-electron redox reaction of the transition metal. By realizing the reversible double redox reaction of vanadium-based and manganese-based polyanion cathodes, researchers have successfully opened up a new way to break through the long-term performance limitations. Recent studies disclose that vanadium and manganese-based polyanionic cathodes exhibit the possibility of realizing a reversible double-redox reaction, which opened up new avenues to overcome the capacity dilemma. However, many fundamental issues remain unclear, including insufficient structural stability at high operating voltages, irreversible structural evolution induced by sodium extraction, sluggish electronic and ionic transport kinetics, and Jahn–Teller distortion. Therefore, it is imperative to summarize recent work in order to clarify the pathway for future investigation. In this review, the key challenges associated with the activation of the double-redox reaction are outlined, followed by the realization and regulation of the double-redox reaction in polyanionic cathode materials. A systematic summary of recent studies is performed for both vanadium and manganese-based compounds, which could contribute to the fundamental understanding of the double-redox reaction mechanism. Combined with the modification strategy and future perspective, this review provides insights into the rational design of polyanionic cathodes with a reversible double-redox reaction. It also offers insights into the development of high-energy-density cathode materials for next-generation sodium-ion batteries.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3558-4
The development of advanced titanium alloys capable of operating above 600 °C remains a critical challenge for aerospace propulsion systems, where conventional Ti alloys suffer from insufficient high-temperature strength and microstructural instability. Here, we propose a computationally driven design strategy for titanium-based medium-entropy alloys (MEAs) that integrates thermodynamic phase prediction with mechanistically informed strength modeling, enabling systematic exploration of the Ti-Nb-Al-Cr quaternary system. The optimized Ti70Nb10Al15Cr5 MEA exhibits exceptional performance metrics: 18% room-temperature ductility (as-cast), a yield strength of 520.7 MPa at 650 °C (post-aging), and an ultralow density of 4.76 g/cm3 (45% lighter than Inconel 718). Microstructural characterization reveals a metastable single-phase BCC structure in the as-cast state, which transforms into a BCC/Ti3Al dual-phase system upon aging, with temperature-dependent precipitate morphology and phase stability. The alloy demonstrates superior high-temperature strength retention up to 900 °C (>80 MPa yield strength), outperforming commercial titanium alloys (e.g., Ti-1100, TG6) and bridging the performance gap between conventional Ti alloys and nickel-based superalloys. This work establishes a multi-criteria design paradigm for entropy-engineered alloys, offering a viable pathway to lightweight, high-temperature structural materials for next-generation aerospace applications.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3664-x
The proliferation of electronic devices and wireless communications has escalated the demand for materials that simultaneously provide electromagnetic interference (EMI) shielding and infrared (IR) thermal camouflage, a combination critical for military and civilian applications. Traditional metallic shields suffer from high density, poor processability, and cost, while polymer-based alternatives often lack sufficient shielding effectiveness and environmental stability. Here, we report a multilayer composite film fabricated via layer-by-layer vacuum filtration and hot-pressing, integrating modified aramid nanofibers (ANF) and MXene (Ti3C2Tx) nanosheets. The film architecture comprises ANF-polypyrrole (ANF-PPy) as the matrix and Ag-MXene as the functional filler, with in-situ grown Ag nanoparticles intercalating between MXene layers to enhance interlayer spacing and electromagnetic wave scattering. At a thickness of only 33 μm, the film achieves an average EMI shielding effectiveness (SE) of 66.75 dB and a specific shielding effectiveness (SSE/t) of 38432.54 dB cm2 g−1. The multilayer structure promotes multiple internal reflections and interfacial polarization losses, while the tight integration ensures high IR reflectivity. This work establishes a foundation for developing multifunctional protective materials with dual EMI shielding and IR camouflage capabilities, addressing the critical bottleneck of simultaneous performance in ultrathin, flexible formats.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3666-2
Light-emitting electrochemical cells (LECs) are promising for low-cost, solution-processed display and lighting applications, yet achieving high efficiency and color purity remains challenging. Here, we report two ionic multi-resonance (MR) emitters with narrowband blue emission for high-color-purity LECs. By covalently bonding an imidazolium functional group into a boron/nitrogen-doped polycyclic skeleton, the emitters retain the narrowband emission and high photoluminescence quantum yield (PLQY) of the MR core while gaining ionic character. The design exploits two types of nitrogen atoms in the imidazolium unit: the pyrrolic N at the 1-position forms a para-B-π-N linkage, elevating excited-state energy levels and blue-shifting emission; the pyridinic N at the 3-position provides a quaternization site, yielding intrinsically ionic emitters compatible with ionic hosts. The emitters exhibit blue emission with narrow full-width at half-maximum of 26–27 nm and high PLQYs of 95%–97% in solid-state films. LECs based on these emitters achieve narrowband blue electroluminescence with CIE coordinates of (0.12, 0.26) and a maximum external quantum efficiency (EQE) of 4.6%, representing the first narrowband blue LECs based on intrinsically ionic MR emitters. This work demonstrates a viable molecular design strategy for high-color-purity LECs, addressing the long-standing trade-off between efficiency and color purity in this technology.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3695-8
Sulfur-based lithium-ion batteries, particularly those employing sulfurized poly(acrylonitrile) (SPAN) cathodes and graphite (Gr) anodes, offer high theoretical capacity and low cost but suffer from temperature-dependent capacity decay. This study systematically investigates the electrochemical dynamics and capacity decay mechanism of SPAN||Gr pouch cells cycled at 25–55 °C. Multiscale analyses reveal that capacity fade arises from active lithium loss and increased resistance, both accelerated by higher temperatures. Active lithium loss is primarily attributed to dead lithium formation and thickening of the solid electrolyte interphase (SEI) and cathode electrolyte interphase (CEI), while resistance increase is predominantly due to SEI/CEI thickening. As temperature rises, active lithium loss becomes the dominant decay factor. Leveraging the consistent decay mechanism across temperatures, an accelerated aging model based on the Arrhenius equation is developed: y = 0.9x + a. This model accurately predicts cycling parameters at specific temperatures and reduces testing time by 50% when extrapolating from 55 °C to 25 °C. These insights provide critical guidance for developing long-life sulfur-based batteries for practical energy storage applications.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3686-6
Fused silica (SiO2) exhibits exceptional thermal stability and dielectric properties, making it an attractive material for aerospace and military applications. However, its relatively poor mechanical performance has limited its widespread practical utilization. This study proposed an innovative approach to fabricate SiO2-hexagonal boron nitride (hBN) composite ceramics via spark plasma sintering (SPS), leveraging the high-temperature phase transformation of cubic boron nitride (cBN) to introduce randomly oriented hBN as a reinforcing phase within the SiO2 matrix. The randomly oriented hBN nanoplates allow cracks to propagate along stronger grain boundaries, rather than along weaker interlayers of hBN, significantly improving the overall strength and fracture toughness of the composite. The maximum flexural strength and fracture toughness achieved are 183.4 MPa and 2.06 MPa m1/2 respectively, which are 3.6 times and 4 times that of fused SiO2. Concurrently, the composites exhibit low dielectric constants (ε = 3.58–3.69) and dielectric losses (tan δ < 0.0087) at 1 MHz. This work successfully enhanced the mechanical performance of fused SiO2 while preserving its excellent dielectric characteristics, opening new possibilities for its potential applications in advanced structural and functional fields.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3679-8
Idiopathic pulmonary fibrosis (IPF) is a chronic interstitial lung disease with high mortality and limited therapeutic options. Dysregulated macrophage polarization drives fibroblast activation and epithelial-mesenchymal transition (EMT), yet no effective management exists. Here, we develop an inhalable methane nanocapsule (MNC) that spatiotemporally controls methane release in the lung to remodel the fibrogenic microenvironment. MNC is formulated via self-assembly of biodegradable poly(lactic-co-glycolic acid)-polyethylene glycol (PLGA-PEG) and a novel acid-responsive methane prodrug Fe(BPY)2(CH3)2, enhancing mucosal penetration and sustained methane release in acidic inflammatory niches. In a bleomycin (BLM)-induced pulmonary fibrosis model, MNC inhalation achieves efficient lung deposition and sustained methane release, significantly reducing inflammation, ameliorating fibrosis, and improving lung function without systemic side effects. Mechanistically, MNC rebalances macrophage polarization by inhibiting M2 phenotype overexpression and downregulates the MMP9/TIMP-1 ratio to suppress myofibroblast proliferation and EMT, synergistically halting fibrotic progression. This inhalable methane nanocapsule offers a promising strategy for safe and effective IPF treatment.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3722-3
Magnesium alloys are promising biodegradable bone implant materials due to their biocompatibility and mechanical compatibility, but rapid degradation and postoperative bacterial infection limit clinical application. Here, zeolitic imidazolate framework-8 (ZIF-8) and 3,4,9,10-perylenetetracarboxylic diimide (PD) composite coatings (ZIF-8@PD) were fabricated in situ on micro-arc oxidation (MAO) coated AZ31 alloys via two-step and one-step (OS) methods. The MAO/ZIF-8@PD and MAO/ZIF-8@PD (OS) coatings reduced corrosion current density by three and two orders of magnitude, respectively, compared to MAO coating, due to the physical barrier of the 2D-co-3D MOF structure. Under 808 nm near-infrared laser irradiation, photothermal and photodynamic effects from PD, combined with contact killing by released Zn2+ ions, achieved bactericidal rates ≥99.5% against E. coli and S. aureus. Photothermal conversion efficiencies were 44.01% and 48.57% for the two-step and one-step coatings, respectively. The distinct Zn2+ sources led to different 2D-co-3D MOF structures, influencing degradation and antibacterial behavior. These coatings offer a strategy to enhance corrosion resistance and antibacterial activity of Mg alloys for biomedical applications.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3654-5
Hydrogen production by photosynthetic green algae is an efficient biological process that utilizes light energy to convert water and carbon dioxide into clean and renewable energy. In this paper, we constructed a hybrid system combining graphitic carbon nitride (g-C3N4) and Chlorella pyrenoidosa (Chlorella), in which g-C3N4 serves as an extracellular electron source and Chlorella acts as a biological reactor for specific hydrogen production. In particular, the electronic structure of carbon nitride was optimized by means of hydrothermal alkalization and copper ion doping, expanded the light absorption range and enhanced the light response ability. g-C3N4, as an extracellular electron source, can provide electrons for Chlorella to improve hydrogen production performance which is 3.7 times that of bare Chlorella. The construction of a biological hybrid system is a feasible optimization strategy for the hybrid system to promote the synergistic effect of the hybrid system by regulating the properties of non-living components.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3748-9
Direct regeneration is a sustainable solution for recycling spent lithium-ion batteries (LIBs), yet the irregular strains induced by the irreversible FePO4 phase after cycling hinder Li+ replenishment in spent LiFePO4 cathodes. This study proposes a lattice stress modulation strategy that reduces FePO4 to Fe2P2O7, reducing unit cell volume from 271.7 to 122.6 Å3, releasing residual stress and reconstructing continuous Li+ transport channels. The phase transformation reconstructs FeO6 octahedra, lowering the migration energy barrier for ions. This synergistically weakens steric effects, facilitating Li+ replenishment and eliminating Li-Fe anti-site defects. Regenerated LiFePO4 cathodes achieve 80.2% capacity retention after 1000 cycles at 2C, outperforming commercial cathodes. The work establishes fundamental principles for the pre-treatment stage of direct regeneration and provides a paradigm-shifting solution for sustainable LIB recycling.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3777-0
Optically clear adhesives (OCAs) are critical for next-generation optoelectronic systems, yet their end-of-life management remains a sustainability challenge. Here, we report a debondable and robust polyurethane (PU)-based OCA that integrates both mechanical and chemical recyclability. The PU-based OCA exhibits high optical transparency (>90% transmittance from visible to near-infrared), strong adhesion to glass and polymeric substrates (bonding strength up to 5.0 MPa), and thermally sensitive H-bonding interactions that enable on-demand deadhesion at elevated temperatures. This capability facilitates non-destructive detachment of functional assemblies, promoting component reuse and material recycling. The adhesive demonstrates excellent mechanical properties, including ductility and strength, and outperforms several commercial optical adhesives in key performance metrics. Its straightforward synthesis and industrial scalability make it a promising solution for advancing circular economy principles in optoelectronic device manufacturing. The work addresses critical bottlenecks in balancing mechanical performance, adhesion/detachment, and recyclability, offering a transformative approach to sustainable advanced manufacturing.
Chinese Journal of Environmental Engineering•2026•DOI: 10.12030/j.cjee.202506021
To elucidate the seasonal variation in cadmium (Cd) accumulation in ratoon rice and its relationship with root surface iron plaque, this study compared Cd concentrations in brown rice and the characteristics of iron plaque components (amorphous Fe, Am-Fe; crystalline Fe, Cry-Fe) between the main and ratoon crops of six rice varieties under different stubble heights. A field experiment was conducted in a Cd-contaminated paddy in Liuyang, Hunan (soil total Cd: 0.56 ± 0.06 mg·kg⁻¹). Ratoon crop treatments included low stubble (20 cm) and high stubble (60 cm). Brown rice Cd concentrations varied by variety, season, and stubble height. Low stubble generally increased brown rice Cd in the ratoon crop compared to high stubble; high stubble reduced Cd in most varieties relative to the main crop. Health risk assessment indicated that low stubble in the ratoon crop posed higher non-carcinogenic risk than the main crop and high stubble, while carcinogenic risks exceeded acceptable levels across all treatments. Iron plaque Am-Fe and Cry-Fe concentrations in the ratoon crop were generally lower than in the main crop, with Am-Fe consistently exceeding Cry-Fe. In the main crop, total Fe, Am-Fe, and Cry-Fe on root surfaces were significantly negatively correlated with brown rice Cd (P < 0.05), but correlations were not significant in the ratoon crop. High stubble reduced Cd accumulation and non-carcinogenic risk in most varieties, yet carcinogenic risk remained. Iron plaque significantly impeded Cd uptake in the main crop but its effect weakened in the ratoon crop. Selecting low-Cd-accumulating varieties and optimizing stubble height are key strategies for safe ratoon rice production in Cd-contaminated areas.
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.
Environmental Chemistry•2026•DOI: 10.7524/j.issn.0254-6108.2024121101
The excessive and uncontrolled use of antibiotics inevitably leads to their release into natural environments, accelerating the production, occurrence, and transport of resistant bacteria and resistance genes. Among these, antibiotic resistance plasmids (ARPs) pose a significant public health challenge due to their environmental persistence and ability to spread and amplify within microbial communities. This study used the tetC gene-pUC18 plasmid as a model ARP to investigate aggregation behavior in aqueous environments under varying pH (3–7), ionic strength (0.001–0.1 mol·L−1 NaCl and 0.001–0.05 mol·L−1 CaCl2), and in the presence of different concentrations of natural colloids. Results indicate that at low pH, ARP structure condenses inward and functional groups may protonate, reducing negative charge and overall size. Compared to Na+, Ca2+ forms cationic bridges between negatively charged phosphate diester groups, significantly enhancing aggregation. Natural colloids induce heteroaggregation with ARPs, with aggregate size increasing with colloid concentration. This study provides scientific evidence for elucidating ARP behavior in soil and groundwater, crucial for assessing risks to human health and ecosystems and understanding global circulation mechanisms.
Journal of Environmental Engineering Technology•2026•DOI: 10.13205/j.hjgc.202604013
Reclaimed water serves as an alternative water source for replenishing natural water bodies, yet residual pollutants pose ecological risks. A pilot-scale hybrid vertical flow constructed wetland filled with manganese ore sand, quartz sand, and cobblestones was operated for approximately 140 days to assess nutrient and organic matter removal, ecotoxicity, and the suitability of manganese sand as a functional medium. Influent concentrations were up to 0.4 mg/L ammonia, 0.2 mg/L phosphate, 8 mg/L nitrate, and 30 mg/L COD. After 2–3 months of operation, ammonia and phosphate removal efficiencies exceeded 90% and 80%, respectively. Average reductions for nitrate and COD were 0.67 mg/L and 4.2 mg/L. Manganese sand enhanced organic decomposition, reducing maximum 3D fluorescence intensity by 26%, humic substances by 48%, UV254 by 38%, and achieving 70.8% removal of four target antibiotics. Purified water exhibited no significant genotoxicity, with micronucleus rates approaching tap water levels, and non-concentrated samples showed no acute biotoxicity. However, concentrated samples displayed acute toxicity, suggesting different causative pollutants for genotoxicity and acute toxicity. The study supports manganese sand as an effective medium for improving reclaimed water quality and controlling ecological risks.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3857-1
High-Be Cu-Be alloys exhibit dendritic segregation and brittle β/γ phases, complicating processing and applications. This study investigates the influence of cooling path on eutectoid transformation, microstructure, and mechanical properties in Cu-2.8Be and Cu-3.8Be alloys. A two-step homogenization treatment effectively eliminates segregation and suppresses the formation of harmful acicular phases. Diffusion-kinetic and thermodynamic analyses demonstrate that both the initial temperature and cooling rate determine eutectoid morphology and extent. Crystallographic and Eshelby-based analyses reveal that the β → γ transformation involves an isotropic contraction of ~3.9%, producing much lower strain energy than the anisotropic β → α transformation (~28.5% expansion and ~9.2% contraction), thus explaining the preferential nucleation of γ. Rapid cooling promotes incomplete eutectoid decomposition along grain boundaries, forming fine α/γ lamellae with interlamellar spacing down to ~7 nm. Lattice strain analysis confirms considerable distortions at α/γ interfaces (ε_xx = 0.0167, ε_yy = 0.0095). The mechanical incompatibility and high internal strain at these interfaces cause stress concentration and crack initiation. This work establishes a process-microstructure-property-mechanism framework essential for controlling the performance of high-Be Cu-Be alloys.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3545-7
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.
New Carbon Materials•2026•DOI: 10.1016/S1872-5805(26)61093-1
Advanced catalyst structures with good active site accessibility and strong metal-support interactions are crucial for oxygen reduction reaction (ORR) catalysis. A hierarchically porous Pt catalyst supported on honeycomb-like nitrogen-doped carbon (Pt/HNC-400, where 400 denotes the optimal dosage (mg) of the sacrificial SiO2 hard template used during synthesis) was fabricated by combining template-assisted pyrolysis and alcohol reduction. The fabrication involves the template-assisted pyrolysis of ZIF-67 (which provides the N-dopant through its 2-methylimidazole ligand) followed by HF etching to completely remove the SiO2, yielding a 3D interconnected porous carbon support. Compared to a commercial Pt/C, it had an exceptional ORR performance with a half-wave potential of 0.901 V (41 mV higher), a mass activity at 0.9 V that was 15.3 times higher, and significantly improved durability (a half-wave potential decay of 25 mV vs. 80 mV after 10,000 accelerated durability tests (ADTs)). Mechanistic investigations showed that this superior performance is due to the combined effects of the 3D porous structure, ultrafine Pt nanoparticles with strong metal-support interactions, and in-situ formed Co-Nx moieties from the pyrolysis of precursor ZIF-67. After 10,000 ADTs it was shown to have excellent structural integrity, retaining 87.4% of its initial electrochemically active surface area (102.7 m2 g−1). This study may assist the development of new high-performance ORR catalysts.
New Carbon Materials•2026•DOI: 10.1016/S1872-5805(26)61106-7
Hard carbon anodes for sodium-ion batteries suffer from limited capacity, low initial Coulombic efficiency, and poor long-term cycling stability. To address these issues, we report a dual-stabilization strategy that combines micropore confinement and chemical bonding to control sulfur species in coal-derived hard carbon. Bituminous coal, with its naturally condensed aromatic framework, serves as the carbon precursor. A two-step thermal process first constructs a microporous carbon framework, followed by gas-phase sulfidation to introduce sulfur. The sulfur is confined within micropores and forms stable covalent C–S bonds with the carbon matrix, providing synergistic physical–chemical stabilization. This suppresses sulfur migration, prevents interfacial side reactions, and introduces additional redox-active sites. The optimized sample (HC-10) delivers a high reversible capacity of 450 mAh/g after 800 cycles at a current density of 1 A/g, with excellent rate capability and cycling stability. Mechanistic analysis reveals that the stabilized sulfur species reversibly participate in sodium-ion storage and improve interfacial kinetics. This work provides an effective strategy for stabilizing sulfur in coal-derived carbon materials and offers insights into the design of high-performance anodes for sodium-ion batteries.
Journal of Fuel Chemistry and Technology•2026•DOI: 10.1016/S1872-5813(26)60647-0
Photoelectrochemical (PEC) water splitting offers a direct route to convert solar energy into clean hydrogen fuel. CuBi2O4, a p-type semiconductor with a bandgap of 1.5–1.8 eV, exhibits visible-light responsiveness and good stability, yet its performance is limited by high interfacial resistance and severe charge carrier recombination. This study introduces a CuO interlayer between fluorine-doped tin oxide (FTO) and CuBi2O4 to construct CuO/CuBi2O4 photocathodes, aiming to improve interfacial charge transfer. The optimized CuO/CuBi2O4-200 photocathode achieved a photocurrent density of −1.71 mA/cm² at 0 V vs. RHE, more than 3.5 times that of bare CuBi2O4. Incident photon-to-current efficiency (IPCE) at 365 nm reached ~13%, and the maximum applied bias photon-to-current efficiency (ABPE) was 0.17%. Water splitting experiments yielded 2.05 μmol/cm² of hydrogen, significantly surpassing the unmodified photoelectrode. Mechanistic studies indicate that the CuO layer establishes favorable band alignment, promotes hole transport toward the FTO substrate, and suppresses interfacial carrier recombination. This work demonstrates a simple and efficient interfacial engineering strategy, offering insights for the design of high-performance semiconductor-based PEC photoelectrodes.
Environmental Chemistry•2026•DOI: 10.7524/j.issn.0254-6108.2025111302
High-concentration chloride ions (Cl−) in industrial wastewater cause severe corrosion and environmental hazards. Conventional removal methods suffer from low efficiency, high cost, and difficulty in product recovery. This study fabricated porous metallic bismuth-based blocks (Bi-PM) via 3D printing, combining chemical precipitation with additive manufacturing. Systematic evaluation of Cl− removal under varying pH and light irradiation revealed that at pH 0.1 and 0.5, dark-condition efficiencies were 53.6% and 31.0%, respectively, increasing to 69.3% and 38.1% under light. Radical trapping identified photogenerated holes as the primary active species, oxidizing metallic Bi to release Bi3+ and enhance precipitation. At pH 0.5, Bi-PM exhibited balanced efficiency and structural stability; over five cycles, average removal efficiency was 25% in darkness versus 41.2% under light, with superior stability under illumination. XRD and SEM confirmed abundant BiOCl formation on the surface under light, mitigating Bi loss. This approach ensures high chloride removal while minimizing material degradation, offering a novel pathway for industrial wastewater treatment.
Environmental Chemistry•2026•DOI: 10.7524/j.issn.0254-6108.2025011503
This study investigated odor emissions from a large-scale ink manufacturing enterprise through comprehensive analyses of odor concentration, substance concentration, and characteristic odor compounds across all exhaust stacks. The aim was to assess odor dispersion patterns and identify critical odor-generating processes to inform strategic upgrades of air pollution control systems. The results showed that acrolein, hydrogen sulfide, isobutyraldehyde, m-xylene, p-xylene, and ethanol were screened as typical odor substances, with acrolein being ubiquitously present across all emission processes. The odor dispersion radius extended 1.4–2.6 km beyond the facility boundary. Vertical odor impact at a sensitive point 1 km from the plant boundary revealed a parabolic profile: concentrations initially increased with height, peaked at 30 m (equivalent to a 10-story building), then decreased at higher heights. The exhaust stack of the sewage treatment station accounted for 53.26% of total odor emissions, establishing this system as the priority control node for implementing enhanced air purification technologies in industrial air quality management.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3756-5
Photochemical organic synthesis exploits the distinctive redox properties of excited-state photocatalysts to avoid stoichiometric redox reagents, enabling green and sustainable transformations. However, the conversion efficiency of light-to-chemical energy remains a key bottleneck for large-scale application. Here, we synthesize ultra-thin graphitic carbon nitride (g-C3N4) nanosheets by regulating precursor types and thermal protocols. In photochemical Minisci-type cross-couplings, this ultra-thin carbon nitride exhibits high catalytic efficiency, achieving rates of 40 mmol g_cat−1 h−1 under LED irradiation and 10.9 mmol g_cat−1 h−1 under natural sunlight. The photocatalyst's high specific surface area (120 m2 g−1) enhances substrate adsorption capacity and accelerates surface electron transfer, boosting photocatalytic efficiency. Furthermore, the material demonstrates excellent recycling stability, and the reaction system was successfully scaled to gram-level, highlighting its potential for industrial applications. This work provides a typical case for solar-driven organic synthesis and inspires further developments in heterogeneous photocatalysis.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3897-6
Decoding the nature of catalytically active sites is an essential prerequisite for the rational design of catalysts for electrochemical H2O2 synthesis, but faces significant challenges, particularly for controversial cobalt single-atom catalysts (Co SACs). Herein, we report trace Co single-atom sites embedded within pyridinic N-rich carbon nanospheres (Co1-NNH3-C), synthesized via a self-assembly coupled surface-coating strategy. The Co1-NNH3-C catalyst demonstrates remarkable H2O2 selectivity (99%) and activity at current density of −3.5 mA cm−2 in 0.1 M H2SO4. Through a combined approach of molecular probe experiments, surface modification, and density functional theory (DFT) calculations, we disclose that pyridinic N, rather than Co single atoms, serves as the direct active site for 2e− oxygen reduction reaction (ORR). The trace Co (0.05 wt%) indirectly facilitated pyridinic N formation during pyrolysis but exhibits negligible direct catalytic involvement. DFT reveals pyridinic N sites optimize OOH intermediate adsorption (ΔG*OOH = 4.0 eV) and minimize reaction overpotential of 0.20 V, enabling scalable H2O2 production (907.5 mmol gcat−1 h−1). This work redefines the role of trace metal in SACs, providing a paradigm for designing metal-induced carbon catalysts for sustainable electrosynthesis for H2O2.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3742-5
Nematic liquid crystal elastomers (NLCEs) exhibit excellent mechanical properties and diverse deformation modes, while cholesteric liquid crystal elastomers (CLCEs) as photonic crystals (PCs) possess superior optical performance and intelligent response characteristics. Combining these two elastomers into a monolithic material is a challenging yet promising endeavor. Here, we designed and synthesized a new diselenide-bonded molecule (DSeAc), whose lower bond energy between selenium atoms endows it with excellent bond exchange ability. Consequently, two LCE matrices containing DSeAc molecules can achieve seamless bonding under mild conditions via dynamic diselenide bond exchange. By integrating a CLCE film and an NLCE actuator into a monolithic film, we enable the integration of two functional components, whose functional characteristics can be tailored as required. This function block combination strategy offers a promising pathway for developing smart materials with complex functions, showing great potential in information storage, anti-counterfeiting, and biomimetics.
Chinese Journal of Environmental Engineering•2026•DOI: 10.12030/j.cjee.202509078
The rapid expansion of photovoltaic (PV) installations and the impending retirement of early-stage modules have made the recycling of end-of-life PV modules an urgent issue. This review systematically examines the types and structures of retired PV modules, with a focus on crystalline silicon (c-Si) and thin-film technologies. It critically evaluates the principles, processes, and pros and cons of physical, chemical, pyrolysis, biological, combined, and emerging methods for recovering c-Si modules. The current status of silicon, metal, and valuable component recovery processes is summarized. For thin-film modules, the core technologies for recovering valuable components via pyrometallurgical, hydrometallurgical, biological, and novel approaches are analyzed in depth. Results indicate that conventional methods (physical, chemical, pyrolysis) remain dominant but suffer from high energy consumption, pollution, and chemical usage. Emerging technologies such as biological and green leaching are identified as key research directions, though they face challenges of low technical maturity and high costs. Finally, policy orientations and existing challenges are discussed, and future development directions are proposed, providing significant guidance for the sustainable and large-scale green development of the PV industry.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3720-2
The emergence of smart textiles and wearable electronics demands conductive fibers that maintain stable electrical performance under dynamic mechanical deformation. Conventional conductive yarns, based on carbon nanomaterials, metallic coatings, or hybrids, suffer from a trade-off between conductivity and stretchability, often exhibiting resistance fluctuations or failure under strain. Liquid metals (LM) offer high conductivity and intrinsic deformability but suffer from interfacial instability, such as dewetting and leakage, without structural guidance. This work presents a hierarchical design strategy integrating capillary-guided infiltration and interfacial anchoring of LM within yarn microstructures. Electrospun poly(styrene-block-butadiene-block-styrene) (SBS) microfibers onto commercial spandex (PU) yarns create a porous base with three-dimensional microchannels. These channels are functionalized with silver nanoparticles (AgNPs) to enhance wettability and provide reactive sites for alloying with LM. Upon immersion, LM is drawn into the porous network via capillary action, forming stable intermetallic bonds (Ag9In4 and AgIn2) with the AgNP-modified fibers. Encapsulation with a second SBS layer yields the final SBS-LM/Ag-SBS (SLMAS) yarn. The resulting yarns exhibit exceptional electrical conductivity, with resistance as low as 0.082 Ω/cm at an LM loading of 6.88 mg/cm. They demonstrate strain-invariant performance, long-term durability, and functional convergence, supporting Joule heating and electrochromic display within a single fiber. Joule heating tests show a temperature rise from 86.4 to 122.7°C, following Ohm's and Joule's law. Integration of thermochromic microcapsules enables voltage-triggered color change, laying groundwork for electrothermally responsive textiles. Challenges remain in material costs, multi-step fabrication, and durability under environmental stressors. This work establishes a new paradigm for stretchable fiber electronics, reconciling conductivity with extreme mechanical compliance.
Chinese Journal of Environmental Engineering•2026•DOI: 10.12030/j.cjee.202508081
Traditional soil thermal remediation requires high temperatures (>300 °C), which can damage soil structure, increase energy consumption, and elevate carbon emissions. This study developed a Cu–CeOx/TiO2 trimetallic catalyst to enable low-temperature thermal remediation of naphthalene-contaminated soil. Using nano-TiO2 as a support, catalysts with varying Cu/Ce ratios were prepared via impregnation-calcination. Material characterization (XRD, TEM, XPS, etc.) revealed that Cu and Ce incorporation induced crystal defects in TiO2, enhancing lattice oxygen activity and electron mobility, thereby generating more oxygen vacancies and hydroxyl radicals. Performance evaluation using a TGA-GC-FTIR-MS platform showed that the catalyst with Cu:Ce = 1:1 achieved the best remediation efficiency, reducing the thermal remediation temperature from 250 °C to 211.5 °C and increasing the removal rate by an average of 19.49% compared to the non-catalyst group at the same temperature. The catalyst facilitated stepwise degradation of naphthalene into smaller organic molecules (alcohols, carboxylic acids, aldehydes) and ultimately into H2O and CO2. This work demonstrates that Cu–CeOx/TiO2 significantly lowers the energy demand of thermal remediation, offering a promising approach for low-carbon remediation of organic-contaminated soils.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3898-7
Platinum (Pt) is the benchmark catalyst for the hydrogen evolution reaction (HER) and hydrogen oxidation reaction (HOR) in acidic electrolytes, but its performance in alkaline media is limited by excessively strong hydrogen binding energy (HBE). Here, we report oxygen-modified ultrasmall RuCu nanocrystals (RuCu/C-200) as an efficient catalyst for both alkaline HER and HOR. The RuCu/C-200 catalyst exhibits excellent HER activity with an overpotential of 9 mV at 10 mA cm−2 and a Tafel slope of 19.7 mV dec−1. For HOR, it achieves a 4.2-fold higher exchange current density than the unannealed sample. Mechanistic studies reveal that the optimized HBE, hydroxyl binding energy (OHBE), and strongly hydrogen-bonded interfacial water, induced by oxygen modification, are the intrinsic determinants of the improved catalytic activity. This work underscores the potential of combining nanoscale structural design with oxygen modification to develop high-performance Ru-based electrocatalysts for both alkaline HER and HOR.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3851-3
Aqueous zinc-ion batteries (AZIBs) face critical challenges from zinc anode instability, including corrosion, hydrogen evolution reaction (HER), parasitic byproduct formation, and uncontrolled dendrite growth. To address these issues, we developed a multifunctional cerium-based metal-organic framework (Ce-MOF) coating for zinc anodes. The coating features an ordered porous structure and inherent properties that mitigate HER, suppress side reactions, and inhibit dendrite formation. Symmetric cells using Ce-MOF/Zn demonstrated exceptional cycling stability for over 2060 h at 0.5 mA cm−2 with a low hysteresis polarization of 26 mV. In full cells with an I2@AC cathode, the Ce-MOF/Zn||I2@AC achieved outstanding cycling stability of 28,550 cycles at 5 A g−1, with 91% capacity retention (109.6 mAh g−1). Through integrated characterization employing in-situ optical microscopy, ex-situ XRD, SEM, and DFT calculations, we elucidated the multifunctional mechanism: the Ce-MOF coating facilitates preferential (002)-oriented Zn deposition to suppress dendrites, reduces Zn2+ desolvation energy to enhance deposition kinetics, and modulates interfacial chemistry to mitigate HER and corrosion. This work establishes Ce-MOF coatings as a simple yet powerful strategy for developing high-performance zinc anodes, providing critical insights for advancing practical AZIB technologies.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4140-9
Metal covalent organic frameworks (MCOFs) are promising photocatalysts for carbon dioxide reduction reaction (CO2RR). However, the synthesis of ketimine-linked COFs remains challenging due to the low reactivity of ketones. Here, we report a straightforward strategy to construct diketimine-linked MCOFs via the condensation of acenaphthenequinone (Ace) with 1,3,6,8-tetra(4-aminophenyl)pyrene (TAPPy). The metal-free COF (TACOF-AA) exhibits AA stacking, while the addition of NiCl2·6H2O under identical conditions yields an AB-stacked Ni-based MCOF (Ni-TACOF-AB). The coordinated Ni species serve as active sites for CO2RR and enhance electron-hole separation. Photocatalytic tests demonstrate that Ni-TACOF-AB achieves a CO evolution rate of 11.71 mmol g−1 h−1 with 99.9% selectivity, which is 7.6 times higher than that of TACOF-AA. Density functional theory (DFT) calculations reveal that Ni-TACOF-AB lowers the activation energy barrier of the rate-determining step by regulating local charge distribution, facilitating electron transfer to adsorbed CO2. This work provides a novel approach for synthesizing ketimine-based COFs and highlights the importance of interlayer stacking in modulating photocatalytic performance.
Environmental Chemistry•2026•DOI: 10.7524/j.issn.0254-6108.2025031102
Laccases are promising biocatalysts for environmental remediation, yet their application is hindered by the instability and limited substrate affinity of wild-type enzymes. Here, we report a computational strategy integrating homology modeling, molecular docking, and virtual mutagenesis to engineer high-performance laccase mutants targeting benzene-containing pollutants. Structural analysis revealed that fungal laccase (Trametes versicolor, T.v) exhibited stronger binding affinities for aniline, o-phenylenediamine, and 1-hydroxybenzotriazole (HBT) compared to bacterial laccase (Bacillus subtilis, B.s), attributed to optimized hydrophobic and hydrogen-bond interactions within the substrate-binding pocket. Virtual mutagenesis identified critical residues (e.g., Ser113, Leu459) regulating substrate stability. Notably, mutations at Ser113 to Arg/Glu/Leu significantly enhanced binding energy (ΔG ≤ −7.1 kcal·mol−1 for HBT) by narrowing the pocket exit and reinforcing hydrophobic constraints. Mechanistically, polar mutations in the pocket interior promoted hydrogen bonding, while hydrophobic substitutions at peripheral residues restricted substrate dissociation. Our findings establish a dual-region engineering principle—enhancing hydrogen bonds internally and hydrophobicity externally—to optimize laccase activity. This work provides a generalizable framework for the rational design of oxidoreductases in pollutant degradation.
Journal of Environmental Engineering Technology•2026•DOI: 10.13205/j.hjgc.202608010
Under the synergistic advancement of the Dual Carbon Strategy and circular economy, high-value utilization of coal fly ash and multiscale pollutant remediation are critical. Direct synthesis of hierarchical porous zeolite A from coal fly ash, integrating microporous framework and mesoporous channels, faces challenges due to complex impurities and difficulty in controlling crystal growth and pore architecture. To overcome bottlenecks of conventional microporous zeolite A—narrow pores, mass-transfer limitations, and inefficiency in removing larger pollutants—this study used acid-treated coal fly ash as silica-alumina source and a soft-template-assisted alkali fusion-hydrothermal method to synthesize hierarchical porous zeolite A with three-dimensionally interconnected mesoporous network. Effects of template type and dosage on crystalline phase, morphology, and pore structure were systematically investigated. With 3% dimethyloctadecyl[3-(trimethoxysilyl)propyl]ammonium chloride (TPOAC) as template, the zeolite exhibited step-like rough cubic morphology formed by self-assembly of nanocrystals. Its specific surface area and total pore volume reached 57.0 m²/g and 0.1351 cm³/g, respectively, approximately three- and four-fold increases over conventional microporous zeolite A. Using aqueous ammonia nitrogen and gaseous acetone as probe pollutants, differential responses were revealed: for ammonia nitrogen (ion-exchange mechanism), hierarchical pores mainly improved mass transfer, yielding adsorption capacity comparable to microporous zeolite A; for acetone (molecular sieving effect), hierarchical zeolite leveraged developed mesoporosity to overcome steric hindrance and induce capillary condensation, increasing adsorption capacity from 12 mg/g (microporous) to 59 mg/g—a 3.9-fold enhancement. This study elucidates structure-activity relationships and provides theoretical and technical support for large-scale fly ash utilization and design of materials for complex pollutant remediation.
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/s40843-025-4034-3
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/s40843-025-4017-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/s40843-025-4222-9
The proliferation of high-frequency communication technologies has escalated electromagnetic (EM) pollution, posing risks to health and device reliability. Conventional microwave absorbers dissipate EM energy as heat, creating thermal management burdens and energy waste. This study introduces Bi2Se3 nanosheets, a topological insulator with surface conductivity and internal insulation, as a dual-functional material capable of both microwave absorption and thermoelectric conversion. Nanosheets with controlled morphology were synthesized via a polyol reduction method, with thickness and lateral size tuned by preparation conditions. The resulting composites exhibited excellent microwave absorption, achieving a broad absorption bandwidth of 2.95 GHz at sub-millimeter thickness. A multilayered structure design enabled full-band absorption from 2 to 18 GHz using a single absorbent. The Seebeck coefficient, derived from temperature differences up to 110 °C, was -152 μV/K, indicating efficient conversion of absorbed EM energy into electrical energy. This work demonstrates the potential of Bi2Se3 nanomaterials for self-powered electromagnetic devices, addressing both EM pollution and energy supply challenges.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4117-y
Real-time, in situ imaging of hydrogen peroxide (H2O2), a key reactive oxygen species implicated in various diseases, remains challenging due to limitations of existing probes, such as short emission wavelengths and reliance on external excitation. To address these issues, we developed an H2O2-triggered near-infrared (NIR) chemiluminescence (CL) nanoprobe with aggregation-induced emission (AIE) characteristics for in vivo inflammation imaging and tumor theranostics. This nanoprobe, denoted as CPPO@TN NPs, was constructed by co-encapsulating a tailored AIE photosensitizer (TN) with strong NIR emission and high singlet oxygen (1O2) generation, a H2O2-responsive chemiluminescent substrate (CPPO), and soybean oil (as a retarder) within F-127 micelles. Upon encountering H2O2, the nanoprobe undergoes a persistent chemically initiated electron exchange luminescence (CIEEL) process that activates AIEgens, resulting in intense NIR chemiluminescence and sustained 1O2 production without the need for external irradiation. Leveraging this mechanism, CPPO@TN NPs achieved highly sensitive and specific imaging of drug-induced liver injury and peritonitis in murine models, with exceptional tissue penetration and signal-to-noise ratio. Furthermore, the nanoprobe facilitated effective self-luminescent imaging and photodynamic therapy of tumors, significantly inhibiting tumor growth in a 4T1 tumor-bearing mouse model. This platform provides an external light excitation-free theranostic strategy for H2O2-associated diseases.