SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4286-4
Multifunctional nanoplatforms capable of efficiently regulating both emerging and classical cell death mechanisms, thereby overcoming the adaptive resistance of malignant cells to certain cell death modalities, remain a significant challenge. Herein, we propose a new concept for the self-assembly of zinc-cystine coordination networks on curcumin (Cur) drug nanocrystals (DNCs) to construct Cur@PDA@GOx/Zn-Cys (CPGZC) nanoplatforms, enabling enhanced antitumor therapy through multicomponent synergistic modulation of both newly identified disulfidptosis and classical apoptosis. At tumor site, GOx-mediated glucose depletion reduces nicotinamide adenine dinucleotide phosphate (NADPH) levels, which can impair the intracellular conversion of cystine to cysteine. Combined with the exogenous cystine delivered by CPGZC NPs, rapid intracellular disulfide accumulation strongly activates disulfidptosis. Simultaneously, the reduction in NADPH levels inhibits GSH biosynthesis, augmenting the intracellular ROS levels elicited by Cur DNCs within the CPGZC nanoplatforms. Moreover, the elevated oxidative stress, in synergy with the excessive Zn2+ introduced, aggravates mitochondrial damage, thereby further amplifying apoptosis. Consequently, the synergistic modulation of disulfidptosis and apoptosis induces a potent antitumor response, as validated by comprehensive in vitro and in vivo investigations. This study opens new avenues for the development of multifunctional nanoplatforms for enhanced cancer therapy through the effective integration of both emerging and classical cell death mechanisms, which may serve as a promising strategy to advance our comprehension of synergistic utilization of various cell death mechanisms and combat with complex cancers.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4433-5
Negative thermal expansion (NTE) and zero thermal expansion (ZTE) materials are technologically relevant for precision engineering, yet their practical deployment is constrained by narrow operating temperature windows. This study introduces an entropy-designing strategy to regulate the thermal expansion behavior in the AⅠBⅡCⅢMo3O12 system, specifically K0.4(Mg0.25Mn0.25Co0.25Ni0.25)0.4Sc1.6Mo3O12 (CE0.4MO) and related CExMO compositions (x = 0.4, 0.6, 0.8, 1.0). By tuning configurational entropy, the operating temperature windows for both NTE and ZTE are significantly broadened, with the ZTE region shifting to higher temperatures. Among single-phase compositions, CE0.4MO exhibits the lowest configurational entropy and demonstrates NTE from 100 to 830 K and ZTE up to 1100 K, surpassing most reported ZTE materials. Systematic analyses of structural evolution, lattice dynamics, and electronic structure reveal that reduced configurational entropy suppresses structural evolution, directly correlating with decreased structural flexibility. Higher atomic displacement parameters (ADPs) of oxygen in CE1.0MO provide experimental evidence for enhanced flexibility. Raman spectroscopy shows that the full width at half maximum (FWHM) of peaks in the 750–900 cm-1 range positively correlates with configurational entropy, indicating reduced lattice disorder, while modes within 750–1050 cm-1 blue-shift as entropy decreases, confirming lattice stiffening. Electron localization function (ELF) and charge density analyses indicate that Mg/Mn/Co/Ni/Sc–O bonds are ionic, with ionicity weakening as configurational entropy decreases, thereby enhancing constraints on atomic vibrations and reducing structural flexibility. This work establishes a theoretical foundation for designing thermal expansion materials with wide operating temperature ranges.
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/s40843-026-4391-5
Self-assembled monolayers (SAMs) enable precise tuning of the ITO/active layer interfacial dipole, yet their impact on the crystallization kinetics of the overlying active layer remains poorly understood, limiting their potential in high-efficiency organic solar cells. This study introduces THPC, a self-assembling material with an extended carbazole core and heteroatom substitution, as a hole transport layer (HTL). Unlike the hydrophilic PEDOT:PSS, THPC exhibits low surface energy, providing a favorable template that extends the film formation kinetics of the PM6:L8-BO-X blend by nearly 1.4 times, mitigating the explosive nucleation prevalent in PM6-based active layers. This promotes a highly ordered fibrous morphology and enhances vertical phase separation. The deep work function of THPC (5.32 eV) increases the built-in potential, reduces interfacial trap density, and facilitates charge extraction. Consequently, non-radiative recombination loss decreases from 0.243 eV to 0.227 eV, and the open-circuit voltage rises from 0.866 V to 0.883 V, yielding a power conversion efficiency (PCE) of 20.19%, outperforming the PEDOT:PSS control (18.67%). This finding is confirmed across multiple Y-series acceptors, all approaching 20% PCE. Notably, the D18:L8-BO system achieves a PCE of 20.55%, demonstrating broad applicability.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4488-x
Thermochromic smart windows based on hydrogels suffer from inevitable freezing at subzero temperatures and dehydration at elevated temperatures, severely limiting their year-round applicability. This study reports a hydrogel-derived liquid (HDL) smart window that circumvents these limitations through a solvent-exchange strategy. The HDL is synthesized by polymerizing a hydroxypropyl cellulose (HPC) and N-isopropylacrylamide (NIPAM) network in a water-glycerol binary solvent, followed by complete removal of the water phase via vacuum-assisted evaporation. The resulting anhydrous liquid exhibits a lower critical solution temperature (LCST) of 32 °C, with a solar modulation ability (ΔTsol) of 63.2% and a luminous transmittance (Tlum) of 88.1% in the clear state. Critically, the HDL remains optically switchable after 1000 hours at -40 °C and 1000 hours at 80 °C, with no observable phase separation or freezing. The smart window prototype demonstrates a 12.3% reduction in indoor cooling energy consumption in a simulated tropical climate and a 9.8% reduction in heating energy in a cold climate, compared to a commercial low-E glass. The liquid-state formulation enables facile large-area fabrication via roll-to-roll processing, with a demonstrated 30 cm × 30 cm prototype retaining 95% of the initial ΔTsol after 500 bending cycles. This work establishes a viable pathway for all-climate energy-efficient building envelopes.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4360-7
Polarization-sensitive photodetection is critical for advanced optical communication and imaging systems, yet conventional photodetectors suffer from low on-off ratios and limited polarization discrimination. Here, we report gate-tunable PdSe2/WSe2 van der Waals heterostructures that achieve ultrahigh light on-off ratio and polarization-sensitive photodetection. The heterostructure forms a type-II band alignment, enabling efficient charge separation and self-powered operation. By applying a gate voltage, the photoresponse can be modulated, achieving an on-off ratio exceeding 10^6 under illumination. The device exhibits a high responsivity of 1.2 A/W and a specific detectivity of 10^12 Jones at room temperature. Polarization-sensitive measurements reveal a linear dichroism ratio of 2.1 at 532 nm, attributed to the anisotropic crystal structure of PdSe2. The photodetector operates over a broad spectral range from visible to near-infrared (400-1000 nm) with fast response times (rise/fall < 100 μs). The gate-tunable capability allows dynamic control of the photocurrent, enabling adaptive sensing applications. These results demonstrate that PdSe2/WSe2 heterostructures are promising candidates for high-performance, polarization-sensitive photodetectors, offering a pathway for next-generation optoelectronic devices.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4262-7
The escalating demands of artificial intelligence, machine learning, and neural computing necessitate multifunctional optoelectronic devices capable of integrating sensing, memory, and processing. Two-dimensional van der Waals heterostructures (vdWHs) offer unique advantages, yet their practical deployment is hindered by complex architectures and inefficient mode-switching. Here, we demonstrate a MoTe2/SnS2 anti-ambipolar heterojunction device enabling single-gate reconfiguration among frequency doubling, broadband photodetection, and neuromorphic computing. The device exhibits a peak-to-valley ratio (PVR) of 465, ensuring efficient frequency doubling. As a photodetector, it operates across an exceptionally broad spectral range of 520–2200 nm, with outstanding responsivity and detectivity. Furthermore, the device emulates complete synaptic behaviors, including short-term plasticity (STP), long-term plasticity (LTP), and paired-pulse facilitation (PPF). Integrated into a reservoir computing (RC) system trained on a vehicle motion dataset, it achieves a directional recognition accuracy of 98.7%. This work establishes a paradigm for multifunctional integration and low-power neuromorphic computing, advancing next-generation intelligent optoelectronic systems.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4212-x
Idiopathic pulmonary fibrosis (IPF) is a lethal interstitial lung disease with limited therapeutic options. Current treatments, such as nintedanib and pirfenidone, target downstream fibrosis but fail to address the upstream drivers, including persistent alveolar epithelial injury and abnormal repair. This study presents an inhalable, reactive oxygen species (ROS)-responsive liposomal system (SAB/GC-1@Lip-cRGD) that co-delivers the antioxidant salvianolic acid B (SAB) and the thyroid hormone receptor β (TRβ) agonist Sobetirome (GC-1). The liposomes are surface-modified with cRGD peptides for targeted delivery to fibrotic lesions and possess a negative surface charge to enhance mucus penetration. In the high-ROS fibrotic microenvironment, the liposomes destabilize, releasing SAB and GC-1. SAB scavenges ROS to remodel the fibrotic niche, while GC-1 reactivates TRβ signaling, driving the differentiation of stalled Krt8+ transitional epithelial cells into functional alveolar type I (AT1) cells. In a mouse model of pulmonary fibrosis, SAB/GC-1@Lip-cRGD significantly reduced pro-inflammatory cytokines (TNF-α, IL-1β, IL-6) and TGF-β1 in bronchoalveolar lavage fluid and lung homogenates. The proportion of CD206+ M2 macrophages decreased from 27.4% in the model group to 6.2% after treatment, indicating potent anti-inflammatory and anti-fibrotic effects. This synergistic strategy of microenvironment remodeling and epithelial regeneration achieved robust collagen depletion, restoration of alveolar integrity, and recovery of pulmonary function, outperforming single-drug or non-targeted formulations. The work provides a generalized paradigm for integrating microenvironment regulation with regenerative repair in pulmonary diseases.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4237-x
Silicon-based (Si-based) anodes are core candidates for next-generation high-energy solid-state batteries (SSBs) due to their high theoretical capacity (~4200 mAh g−1). However, their practical application is constrained by the 'size effect', which influences mechanical integrity and electrochemical performance. This review systematically examines the failure mechanisms of nano-silicon (nSi) and micro-silicon (mSi) anodes when paired with sulfide and organic-inorganic composite solid-state electrolytes (SSEs). Key functional parameters of these SSEs are discussed, along with strategies to mitigate interfacial impedance and accommodate volume changes. Recent progress in structural and interface modifications is highlighted, including the use of hard-carbon-stabilized Li–Si anodes (achieving stable cycling) and pressure-free operation. The review identifies core challenges, such as achieving intimate solid–solid contact and managing mechanical stress, and outlines future directions for 'size effect' regulation to accelerate commercialization of high-energy Si-based SSBs.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4197-4
Deep-blue organic light-emitting diodes (OLEDs) remain the most challenging primary-color emitters due to stringent exciton energy requirements. We strategically designed two innovative deep-blue emitters, SCZ-4AnCN and STPA-4AnCN, via systematic functionalization of an anthracene core with arylamino-decorated spirofluorene donors and cyano-substituted phenyl acceptors. Comprehensive theoretical and experimental analyses demonstrate that these spirofluorene-anthracene hybrids adopt precisely engineered distorted configurations, effectively suppressing detrimental intermolecular π–π stacking in condensed phases. The sp3-hybridized bridgehead carbons in spirofluorene units play a pivotal role by simultaneously restricting π-conjugation extension and fine-tuning donor–acceptor interactions, thereby stabilizing the lowest excited singlet (S1) state with dominant local excitation (LE) character. This molecular engineering yields exceptional deep-blue emission with remarkable efficiency. Notably, the materials exhibit unique high-lying reverse intersystem crossing (hRISC) behavior, enabling efficient triplet harvesting. Optimized doped devices incorporating SCZ-4AnCN achieve outstanding performance, including a maximum external quantum efficiency (EQE_max) exceeding 10% and CIE coordinates (0.154, 0.052) approaching the BT.2020 blue standard. Nondoped devices maintain impressive performance with an EQE_max of 7.51% and superior operational stability, demonstrating less than 10% efficiency roll-off at 1000 cd m−2. This work validates anthracene-based molecular architectures for deep-blue electroluminescence and establishes a transformative design paradigm for next-generation OLED emitters.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4213-x
Lipid peroxyl radicals (ROO·) are terminal propagating species in lipid peroxidation, driving oxidative damage in neurological disorders. Their prolonged lifetime and rapid diffusion within lipid membranes render them difficult to neutralize. Here, we report a bioelectric-responsive TEMPO-doped polydopamine (PDA@TEMPO) nanozyme that sustains catalytic interception of ROO· radicals under persistent oxidative stress. By coupling a PDA redox reservoir with TEMPO catalytic centers, the nanozyme establishes a self-regenerating radical-neutralization cycle via proton-coupled electron transfer (PCET). The π-conjugated framework facilitates charge migration and enables an electric-field-enhanced antioxidant response. In a seizure model, the nanozyme dynamically responds to bioelectric fluctuations, accelerating radical interception and alleviating oxidative stress in neural microenvironments. These findings establish bioelectric-coupled nanozymes as a general strategy for catalytic and sustained regulation of oxidative stress in neural microenvironments, providing a potential therapeutic approach for neurological disorders.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3841-6
Ni-rich layered oxide cathodes are pivotal candidates for next-generation lithium-ion batteries (LIBs) due to their high capacity and energy density. However, their susceptibility to structural deterioration and interfacial degradation during cycling causes substantial capacity fade, hindering commercialization. This work proposes a synergistic strategy of lattice doping and in situ surface coating to enhance structural integrity and interfacial stability of LiNi0.9Co0.05Mn0.05O2. La and Y dopants act as pillars to reinforce the layered structure, mitigating volume changes and expanding c-axis spacing to facilitate Li+ diffusion. Concurrently, La4NiLiO8 and LiYO2 coatings protect the cathode from H2O/CO2 corrosion and electrolyte attack, while their high lithium-ion conductivity promotes Li+ transport. The modified cathode delivers exceptional electrochemical metrics: high specific capacity of 207.3 mA h g−1, remarkable cycling stability with 97.6% retention after 100 cycles, superior rate capability of 152.1 mA h g−1 at 10.0 C, and enhanced thermal stability. This work establishes a paradigm for multi-dimensional stabilization of Ni-rich cathodes via synergistic bulk and interface engineering, providing insights for designing high-performance energy storage systems.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3558-4
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/s40843-025-3694-3
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/s40843-025-3682-6
Metal single-atoms with optimized coordination structure on highly accessible substrate can maximize the metal utilization efficiency along with enhancing catalytic activities. Herein, axial nitrogen-coordinated Fe-N5 sites on N-doped carbon (denoted as FeN5@N-C) hollow microplates are fabricated via a unique Fe3+-chelated polydopamine assisted hollowing strategy using ZIF-L microplates as multifunctional templates. Due to the powerful chelating and adhesive ability of polydopamine, this hollow-carbon strategy can be extended to fabricate single-atom Fe-N-C hollow structures with different shapes and encapsulate other transition-metal single atoms (Ni, Co, Mn, and Cu) into the N-doped carbon hollow microplates. The FeN5@N-C hollow microplates exhibit outstanding oxygen reduction reaction (ORR) capability with an impressive half-wave potential of 0.93 V vs. reversible hydrogen electrode and high stability, which can serve as air-cathode catalysts for high-performance Zn-air batteries with high peak power density of 225.3 mW cm−2 and stable cyclability of up to 400 h. Comprehensive analysis and theoretical calculations elucidate that axial nitrogen coordination in Fe-N5 catalytic sites, unlike the planar Fe-N4 configuration, can compete well with the bonding of OH* through additional 3d-2p orbital hybridization, thereby giving moderate bonding strength to enhance the ORR activity.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3603-2
Conventional glass fiber/epoxy (GF/EP) composites, while structurally competent, are hindered by poor interlaminar toughness, low thermal conductivity, and electromagnetic transparency. This study transforms GF/EP composites into advanced structural multifunctional materials by embedding Ti3C2Tx MXene/poly(acrylic acid) (PAA) aerogels (TPA) as integral interlayers. Hybrid composites with tailored architectures—aligned (GFAM_A) and random (GFAM_R) TPA/GF/EP laminates—were fabricated via unidirectional and isotropic freeze-casting, respectively. The integrated aerogel phase promotes crack deflection and distributed energy dissipation, leading to notable enhancements in interlaminar shear strength (ILSS) and fracture toughness. The continuous Ti3C2Tx MXene network within the aerogel creates efficient through-thickness thermal conduction pathways and imparts strong microwave absorption properties. Notably, GFAM_A achieves simultaneous increases of approximately 52% in ILSS, 78% in toughness, and 42% in thermal conductivity, along with effective microwave absorption: a minimum reflection loss of −23.47 dB and a maximum effective bandwidth of 2.70 GHz. This study demonstrates that precision aerogel engineering provides a powerful strategy for upgrading conventional glass fiber composites into advanced multifunctional structural materials.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3707-8
Wound infection is a major cause of death during the wound healing process. Improperly dressed wounds can lead to secondary injury, prolonging healing time and increasing infection risk. Here, we propose an antibacterial slippery dressing through molecular engineering of copper ions. The oil layer forms a barrier to reduce clot adhesion to the wound site and prevent environmental contamination. Single-cell level detection indicates that secreted copper ions induce bacterial death not only by disrupting membrane integrity but also by relying on the production of reactive oxygen species. Further membrane depolarization and adenosine triphosphate production blockage result in the aggregation of important proteins in various biological processes, such as metabolic homeostasis, ultimately leading to bacterial death. The animal model confirms that our dressing accelerates wound healing by promoting the growth of granulation tissue and collagen deposition. Our dressing demonstrates significant clinical implications for the design of next-generation therapeutic applications.
New Carbon Materials•2026•DOI: 10.1016/S1872-5805(26)61072-4
Sodium-ion capacitors (SICs) typically feature a hybrid design, incorporating a battery-type anode that operates by faradaic redox reactions and an activated carbon cathode that functions through electrical double-layer (EDL) adsorption/desorption. However, the kinetics of faradaic processes are inherently slower than those of EDL processes, leading to a fundamental problem known as kinetic imbalance between the electrodes, which hinders the development of high-performance SICs. To address this, we synthesized composites of bismuth nanoparticles in N-doped carbon (Bi@NC) by a high-temperature sintering method. The resulting Bi@NC anode has a specific capacity of 300 mAh g−1 at 0.5 A g−1, an exceptional rate capability (maintaining performance at currents exceeding 75 A g−1), and outstanding cycling stability over 12,000 cycles. Three-electrode Swagelok cell tests revealed that this high-rate Bi@NC composite effectively decreases the kinetic gap with the activated carbon cathode, as shown by an analysis of their respective potential swing windows (vs. Na/Na+). This enables the fabricated SIC to achieve a maximum energy density of 115 Wh kg−1, a peak power density of 45,535 W kg−1, and a long cycle life exceeding 8,000 cycles.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3747-3
Thermochromic soft materials are flexible functional materials that adaptively tune optical properties (transmittance, reflectance, or scattering) with temperature for thermal modulation. Herein, a laminated thermochromic gel (DEE-DA) is synthesized by encapsulating a thermochromic hydrogel (DA) between two hydrophobic ionogels (DEE) in a stacked configuration. The synergy of multiple dynamic bonds endows the DEE-DA gel with exceptional mechanical properties and remarkable self-healing capability (98.8% at 30 °C). More importantly, attributed to the temperature-responsive reversible cleavage and recombination of hydrogen bonds and borate ester bonds, DEE-DA gel demonstrates tunable transmittance with a light modulation efficiency of 85.45%. In response to the various external conditions, the gel can auto-adjust the optical properties to avoid sun irradiation or heat loss. Accordingly, the gel enables efficient dual-mode thermal modulation across a broad temperature range to realize thermal management. The research proposes gel thermochromism and laminated durability enhancement for adaptive materials in smart buildings and wearables.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3767-9
Progressive skin fibrosis ultimately results in irreversible contractures, causing both joint dysfunction and cosmetic deformity. The key pathological features of skin fibrosis include persistent inflammation and abnormal accumulation of the extracellular matrix (ECM), with epithelial-mesenchymal transition (EMT) playing a critical role in disease progression. However, current therapeutic strategies for cutaneous fibrosis are largely palliative and often require repeated interventions, with limited efficacy. Celastrol (Cel) exerts anti-inflammatory and anti-fibrotic effects in skin tissue, but its clinical application is limited by poor bioavailability and a narrow therapeutic window. Tetrahedral framework nucleic acid (tFNA), a novel nanocarrier system, exhibits multiple advantages, including enhanced cellular uptake, improved cell viability, and intrinsic anti-fibrotic and anti-inflammatory properties. Therefore, this study applied tFNA-Cel complex (TCC) as an advanced nanotherapeutic agent, designed to exert a synergistic anti-fibrotic effect. In this study, an in vitro model of skin fibrosis was established using human keratinocyte (HaCaT) cells treated with 5 ng mL−1 transforming growth factor beta (TGF-β) for 24 h. The results showed that TCC significantly inhibited EMT progression by reducing α-smooth muscle actin (α-SMA) levels and increasing E-cadherin level. Compared to tFNA or Cel alone, TCC exhibited superior anti-fibrotic effects in the fibrosis model, as evidenced by modulation of SMAD family member 2 (SMAD2) signaling and collagen I expression. Furthermore, the TCC group showed lower levels of nuclear factor κB p65 (NF-κB p65), BCL-2-associated X protein (Bax), and reactive oxygen species (ROS) compared to the Cel or tFNA groups. These findings highlight TCC as a promising treatment for skin fibrosis, with its synergistic anti-fibrotic effects providing new therapeutic avenues.
Chinese Journal of Environmental Engineering•2026•DOI: 10.12030/j.cjee.202506005
The escalating generation of medical waste, driven by healthcare expansion and frequent medical activities, poses significant environmental and public health risks. Under the framework of ecological civilization, China is developing a comprehensive policy system for medical waste treatment and disposal, yet the current framework remains nascent and exhibits inconsistencies between national and local policies. This study systematically analyzes the status of national and local policies from 2003 to 2024, collecting 413 policy documents (166 from national ministries and 247 from provincial governments). The analysis examines temporal evolution, regional distribution, and policy focus, alongside the influence of medical waste output, treatment technologies, facility infrastructure, and major epidemic responses. Findings reveal distinct policy phases: initial self-disposal, exploratory management, foundational system building, and rapid development. Regional disparities are pronounced, with eastern coastal areas showing more advanced policies due to greater technical and financial resources. The surge in medical waste, particularly during the COVID-19 pandemic, underscores the need for enhanced regulatory guidance. Non-incineration technologies are gaining traction for their environmental and cost benefits, and facility coverage has improved but remains uneven. The study proposes five policy principles to foster technological innovation and industrial upgrading, ensuring safe medical waste management and environmental protection.
Environmental Chemistry•2026•DOI: 10.7524/j.issn.0254-6108.2025122101
Phenolic compounds, widely used in petrochemical, textile, and pharmaceutical industries, pose severe risks to ecosystems and human health due to their toxicity and persistence. Traditional Fe2+-mediated Fenton oxidation, while effective, suffers from external H2O2 and Fe2+ addition, low H2O2 utilization, narrow pH adaptability, and iron sludge generation. This study develops a g-C3N4-based heterogeneous photo-Fenton system that operates without external H2O2 or Fe2+ salts, exhibiting a wide pH range and minimal iron sludge. The synthesized Fe3O4@UiO/IKCN catalyst, under visible light, selectively reduces dissolved oxygen to H2O2 via a two-electron pathway and activates it to hydroxyl radicals (·OH), achieving efficient degradation of phenolic compounds. The integration of photocatalytic H2O2 formation and Fenton activation enables sustained production of oxidative species, demonstrating superior performance at circumneutral pH. This work provides new insights into the rational design of heterogeneous Z-scheme photo-Fenton catalysts and offers experimental and theoretical support for photocatalytic H2O2 synthesis and phenolic wastewater treatment.
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: 10.0000/202604-1
An analytical method was developed for the simultaneous determination of 11 organic ultraviolet absorbents (OUVs) in coral tissues using ultra-high performance liquid chromatography-tandem mass spectrometry (UHPLC-MS/MS). Target analytes included benzophenones (BP, BP-2, BP-3, BP-8) and other common UV filters. Sample pretreatment and chromatographic conditions were systematically optimized. Coral tissue samples were extracted by combined vortexing and ultrasonication, separated on a CAPCELL PAK MG C18 column using a mobile phase of methanol-0.1% formic acid aqueous solution under gradient elution, and determined by multiple reaction monitoring (MRM) with internal standard quantification. Method validation demonstrated good linearity for all target compounds over the range of 0.1–500 μg·L−1 (R2 > 0.990), with method detection limits ranging from 0.020 to 0.133 ng·g−1. The mean recoveries at low, medium, and high spiking levels ranged from 60.5% to 120.3%, with relative standard deviations (RSDs) of 1.6%–10.7%. The method offers advantages of simple pretreatment, good repeatability, and high accuracy, making it suitable for high-throughput determination of OUVs in complex biological matrices such as corals. The method was applied to analyze 89 coral samples collected from Xidao Island, Sanya, and five target OUVs were detected in the samples. This method provides reliable technical support for elucidating the accumulation characteristics of OUVs in corals and assessing their potential ecological risks.
Journal of Environmental Engineering Technology•2026•DOI: 10.13205/j.hjgc.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.
The Chinese Journal of Process Engineering•2026•DOI: 10.12034/j.issn.1009-606X.225204
Cobalt-doped silica aerogel (Co@Si-A) catalysts were synthesized via a one-step sol-gel method and applied for peroxymonosulfate (PMS) activation to degrade tetracycline (TC). The catalyst with 25 wt% cobalt doping (25Co@Si-A) exhibited superior catalytic performance, achieving 98.97% TC degradation within 30 min under specified conditions (TC 10 mg/L, 100 mL). Brunauer-Emmett-Teller (BET) analysis revealed a high specific surface area and well-developed porous architecture with nano-confined spaces. The 25Co@Si-A/PMS system demonstrated outstanding adaptability across a broad pH range (5–9), maintaining >95% degradation efficiency, and showed strong resistance to sulfate and nitrate ions. In real water matrices, degradation efficiency remained around 80%. After five consecutive cycles, the system retained 82.33% degradation efficiency, with cobalt ion leaching of only 23.7 μg/L in the first cycle, indicating excellent stability. Mechanistic studies using electron paramagnetic resonance (EPR), radical quenching, and probe compound tests confirmed a synergistic radical and non-radical pathway. The primary reactive species were sulfate radicals (SO4•−), hydroxyl radicals (•OH), and singlet oxygen (1O2), with contributions of 58.53%, 9.79%, and 31.68%, respectively. Electrochemical tests indicated that 25Co@Si-A exhibited superior charge transfer compared to Co3O4, attributed to the nano-confined effect of the silica aerogel, which enhanced Co(II)/Co(III) redox cycling and PMS activation. This research provides a promising strategy for utilizing silica aerogel-based catalysts in advanced oxidation processes for water treatment.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4094-8
Deep-blue multi-resonance thermally activated delayed fluorescence (MR-TADF) emitters with high efficiency, high color purity, and high brightness are critically important for next-generation OLED displays, yet remain challenging due to severe aggregation and host-guest interactions in the solid state. Herein, we report a core-encapsulating molecular design strategy in which bulky and non-conjugated peripheral groups are introduced to sterically encapsulate a blue-emitting MR core, thereby suppressing intermolecular π-π interactions without perturbing its intrinsic electronic structure. Two new emitters, DNa-BN and QNa-BN, featuring half-encapsulated and fully encapsulated MR-core architectures, respectively, were developed. Owing to its fully encapsulated structure, QNa-BN exhibits pronounced aggregation resistance at high doping concentrations, maintaining photoluminescence quantum yields exceeding 96%, radiative decay rate constants on the order of 10^8 s−1, and fast reverse intersystem crossing rates (~10^5 s−1). Consequently, sensitizer-free OLEDs based on QNa-BN deliver narrowband deep-blue emission at 458 nm with a full width at half maximum of 22 nm, CIE coordinates of (0.142, 0.085), a maximum external quantum efficiency (EQE_max) of 34.4%, and a maximum luminance exceeding 20,000 cd m−2. Furthermore, by adopting a hyperfluorescence architecture, the EQE_max is further boosted to 38.7% with significantly suppressed efficiency roll-off. This work demonstrates that steric encapsulation of the MR core provides an effective and general approach to achieving aggregation-resistant, high-efficiency, and high-brightness deep-blue MR-TADF emitters for OLED applications.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4054-x
The sluggish kinetics and high onset potentials of the oxygen evolution reaction (OER) at the anode of alkaline water/seawater electrolyzers limit overall energy efficiency. Noble-metal oxides like RuO2 are active but suffer from high cost, agglomeration, and dissolution under oxidizing potentials, especially in chloride-rich electrolytes where competing chloride oxidation reaction (ClOR) occurs. Here, we report a mild two-step dry-wet milling strategy to achieve throughout lattice doping of F− into MnO2 (F-MnO2) and subsequent anchoring of atomically dispersed Ru via Ru–O/F hybrid bonds. The strengthened Mn 3d–O/F 2p hybridization and negative charge shielding of surface F− enhance OER activity/selectivity relative to ClOR and impart superior Cl− tolerance and corrosion resistance. The resulting F-Ru-MnO2-TH electrocatalyst exhibits overpotentials of 280 mV and 200 mV at 10 mA cm−2 in alkaline water and simulated seawater, respectively. It retains ~100% of initial activity after 200 h continuous operation in alkaline media and >95% after 300 h in simulated seawater, significantly outperforming Ru-MnO2 and commercial RuO2. This work provides a scalable route to durable, high-performance OER catalysts for seawater electrolysis.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3464-4
Photocatalytic conversion of atmospheric CO2 (0.03%) into multi-carbon fuels remains a grand challenge due to the high energy barrier of C–C coupling and the low concentration of CO2. Here, we report the construction of multiple metal pair sites on metal oxide nanosheets to steer C–C coupling, enabling efficient photoreduction of air-concentration CO2 to ethane (C2H6). As a prototype, Au nanoparticles were anchored on Bi4Ti3O12 nanosheets (Au-Bi4Ti3O12). High-resolution transmission electron microscopy and X-ray photoelectron spectroscopy confirmed the formation of Au-Ti metal pair sites at the interface. In situ Fourier transform infrared spectroscopy revealed the presence of *OCCOH intermediate on Au-Bi4Ti3O12 during CO2 photoreduction, which was absent on pristine Bi4Ti3O12. Density functional theory calculations showed that the Gibbs free energy for *CO–COH formation on Au-Bi4Ti3O12 is 2.23 eV, significantly lower than that on Bi4Ti3O12 (3.59 eV), indicating facilitated C–C coupling. Consequently, Au-Bi4Ti3O12 exhibited a C2H6 evolution rate of 2.58 μmol g−1 h−1 under 0.03% CO2, whereas Bi4Ti3O12 produced only C1 products (CO and CH4). This work demonstrates the first single-catalyst photoreduction of atmospheric CO2 to C2H6, highlighting the effectiveness of engineered multiple active sites in overcoming the C–C coupling bottleneck.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3545-7
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)61113-4
Porous pyrolytic carbon (PPyC) serves as the buffer layer in TRi-structural ISOtropic (TRISO) fuel particles, providing storage for fission gases, preventing damage to outer layers, and absorbing stresses caused by fuel-kernel swelling. However, the changes of PPyC micro- and meso-structure at high temperatures remain insufficiently understood. In this study, PPyC fabricated by chemical vapor deposition was heat-treated from 1200 to 1600 °C and characterized across atomic-to-mesoscopic scales. Results show that the structure changes with temperature with a transition at approximately 1400 °C. Below 1400 °C, a decrease in Raman ID/IG ratio, narrowing of the graphite diffraction peak, and increased sp2 hybridization indicate progressive ordering associated with defect redistribution. Concurrent decreases in true density and mesopore volume, together with increased closed porosity, are consistent with partial conversion of open pores into closed pores. Above 1400 °C, increased ID/IG ratio, broadening of the diffraction peak near the rhombohedral graphite (101) reflection, and transition regions between crystalline and amorphous material observed by TEM indicate increasing structural disorder. Meanwhile, initially distinct PPyC particle boundaries blur and merge into broad, plate-like domains. Subsequent decrease in closed porosity and increase in mesopore surface area are consistent with partial connection of closed pores to the open-pore network. This work shows that intrinsic coupling between atomic-scale structural change and mesoscale pore connectivity provides a basis for assessing high-temperature structural stability of PPyC in TRISO fuel particles.
Chinese Journal of Environmental Engineering•2026•DOI: 10.12030/j.cjee.202508036
To address the issues of insufficient carbon sources and low denitrification efficiency in rural domestic wastewater, this study developed and optimized a composite slow-release carbon source using corncob, rice husk, reed straw, polyvinyl alcohol (PVA), and sodium alginate (SA). The preparation conditions and raw material ratios were systematically optimized using Plackett-Burman (PB) design, response surface methodology (Box-Behnken design, BBD), and mixture-optimal design (MOD). The denitrification performance was evaluated through carbon release characteristics and denitrification experiments. The optimal preparation conditions were determined as PVA 8.64 g, SA 2.41 g, rice husk 3.82 g, corncob 4.47 g, reed straw 6.06 g, freezing time 19.11 h, and crosslinking time 12 h. The 7-day cumulative carbon release was (43.38 ± 1.3) mg·(g·h)−1. The release process followed first-order kinetics, Higuchi, Ritger-Peppas, and Weibull models, indicating that carbon release is controlled by multiple mechanisms including diffusion and skeleton erosion, ensuring stable slow-release characteristics. In denitrification experiments with influent NO3−-N concentration of 50 mg·L−1, the composite carbon source (RCR-PVA-SA) achieved a maximum NO3−-N removal rate of 90.8% after 10 days of operation, with a removal rate of 0.079 mg·(g·h)−1. Under dynamic conditions with hydraulic retention time (HRT) of 3 h, the average removal rate remained at 87.9%, demonstrating efficient and stable denitrification performance under both static and dynamic conditions. This research provides a reference for the preparation of natural slow-release carbon sources and the resource utilization of agricultural waste.
Chinese Journal of Environmental Engineering•2026•DOI: 10.12030/j.cjee.202510028
This study investigates the aging mechanism of polystyrene microplastics (PS MPs) induced by ultraviolet (UV)-activated potassium persulfate (KPS) and its influence on the adsorption of norfloxacin (NOR). Results show that aged PS exhibited yellowing, increased surface roughness and specific surface area, enhanced oxygen-containing functional groups, and elevated negative surface charge, along with the generation of environmentally persistent free radicals (EPFRs). Compared with UV alone, UV+KPS induced more pronounced aging due to the generation of reactive oxygen species (ROS) including hydroxyl radicals (·OH) and superoxide radicals (O2·−). Adsorption kinetics and isotherm data revealed that UV+KPS-aged PS significantly enhanced NOR adsorption, with a maximum adsorption capacity of (2.539±0.032) mg·g−1, which was 4.20 times higher than that of pristine PS. The adsorption mechanism was governed by hydrogen bonding, electrostatic interactions, and pore filling. Solution pH modulated the electrostatic interactions by affecting NOR speciation and PS surface charge, thereby influencing NOR adsorption. This study systematically reveals the accelerated aging of coexisting MPs and EPFRs generation during UV+KPS treatment, contributing to a comprehensive understanding of MPs environmental behavior and potential ecological risks.
Environmental Chemistry•2026•DOI: 10.7524/j.issn.0254-6108.2025012302
Phosphorus (P) loss from paddy fields contributes to eutrophication in Chaohu Lake. This study evaluated the effects of novel fertilizers and P reduction on P loss and rice yield. Seven treatments were established: no P (CK), rice-specific fertilizer (ZYF), slow-release blended fertilizer (SRF), Xinjutian compound fertilizer (XJT), enhanced loss-controlled fertilizer (CRF), CRF with 10% P reduction (CRF-10P%), and CRF with 30% P reduction (CRF-30P%). Results showed that novel fertilizers and P reduction significantly reduced concentrations of total phosphorus (TP), dissolved phosphorus (DP), and particulate phosphorus (PP) in surface water and leachate. The first 5 days after basal fertilization and heavy rainfall were high-risk periods for P loss. Rainfall increased TP concentrations by 417.74%–432.86% and 94.85%–351.35% in surface water and leachate, respectively; DP increased by 120.80%–322.44%, and PP by 280.66%–501.77% and 80.23%–297.55%. Compared with ZYF, SRF, XJT, and CRF reduced TP loss by 15.43%–33.95%, with SRF showing the lowest loss. Under P reduction, CRF-10P% and CRF-30P% reduced TP loss by 31.48% and 37.04%, respectively, with CRF-30P% achieving the lowest loss. Notably, CRF-10P% increased rice yield by 22.37% relative to ZYF, indicating that moderate P reduction with enhanced loss-controlled fertilizer can maintain or increase yield while reducing environmental risk. The study concludes that CRF-10P% offers a promising strategy for sustainable rice production in the Chaohu Lake watershed.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3854-7
The tertiary spatial structure of biological macromolecules determines their physiological functions. In the formation of the tertiary structure, the secondary structure serves as the assembly foundation, and interactions between secondary structures play a critical role in driving and stabilizing the tertiary architecture. Synthetic foldamers, characterized by their modifiability and structural diversity, can adopt various helical conformations, enabling them to mimic natural protein secondary structures such as the α-helix, while also providing chemical models for studying interactions between secondary structures. This review outlines recent advances in aromatic foldamers and supramolecular helical assemblies formed by helical polymers, with particular attention to unique chiral phenomena observed during the formation of helical secondary structures. It provides a detailed summary of their applications in molecular recognition, ion channels, and circularly polarized luminescence, among others, and discusses future challenges facing aromatic foldamers. The review emphasizes the hierarchical nature of chirality—from primary atomic asymmetry to quaternary higher-order structures—and highlights the importance of understanding non-covalent interactions between helical secondary structures for regulating chiral assembly. Key strategies for constructing chiral helical aromatic foldamers include the use of chiral side chains, terminal groups, and solvent effects, as well as the sergeants-and-soldiers effect and majority-rules principle for chirality amplification. The applications of these foldamers in asymmetric catalysis, chiroptical materials, and biomimetic ion transport are also discussed, underscoring their potential in advanced functional materials.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3650-6
Aggregation-induced emission active chiral polymer dots (AIE@CPdots) are emerging as high-performance emission layers (EMLs) for circularly polarized organic light-emitting diodes (CP-OLEDs) due to their persistent emission stability, high photoluminescence quantum yields, excellent solution processability, facile functionalization, tunable bandgap-governed emission, and superior device processability. However, reports on such systems remain scarce. In this study, a pair of chiral conjugated polymer enantiomers (R/S-PFC) was synthesized via Suzuki polymerization using three monomers: a chiral binaphthalene moiety, a fluorenyl linker, and an AIE-active cyanostyrene dye. After annealing at 110 °C, the resulting R/S-PFC self-assembled into chiral nanoparticles (AIE@CPdots) in a chloroform/n-hexane mixed solvent (9:1 v/v), exhibiting enhanced circularly polarized luminescence with a luminescence dissymmetry factor (|g_lum|) of 4.4 × 10⁻³ at 462 nm. Notably, AIE@CPdots served as the EML in CP-OLEDs, achieving high-performance circularly polarized electroluminescence with an electroluminescence dissymmetry factor (|g_EL|) of 3.0 × 10⁻³ at 464 nm, a maximum luminance (L_max) of 6022 cd m⁻², and a maximum current efficiency (CE_max) of 1.10 cd A⁻¹. This work provides a novel strategy for designing superior EML materials for CP-OLEDs via chiral self-assembled AIE@CPdots.
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/s40843-025-3812-5
Anaerobic bacterial infections, prevalent in oxygen-deprived tissues, are recalcitrant to conventional antibiotics due to slow bacterial metabolism and the generation of nutrient-rich niches that foster polymicrobial biofilms. Propionibacterium acnes (P. acnes), a skin commensal, exemplifies this challenge, causing acne vulgaris and implant-associated infections, with rising antibiotic resistance. This study introduces an antimicrobial peptide (AMP), WRK (sequence: WRKFRRFKFRW-NH2), which induces endogenous reactive oxygen species (ROS) production in anaerobic bacteria, exploiting their inherent low ROS tolerance. WRK exhibited potent antibacterial activity, with a minimum inhibitory concentration (MIC) of 4 μg mL−1 against planktonic P. acnes and a minimum biofilm eradication concentration (MBEC) of 64 μg mL−1. To enable dermal delivery, WRK was encapsulated in layered dissolving microneedles (MNs), which demonstrated adequate mechanical strength for skin penetration. In a mouse back acne model, AMP MNs significantly reduced P. acnes infection and inflammation, outperforming commercial clindamycin gel. Histological analysis confirmed reduced inflammatory cell infiltration and tissue hyperplasia in the AMP MN group. This strategy offers a promising approach for treating anaerobic infections without promoting drug resistance, addressing a critical unmet need in clinical dermatology and implant surgery.
Environmental Chemistry•2026•DOI: 10.7524/j.issn.0254-6108.2025092801
Urban river water quality is critically influenced by outfall discharges, yet the seasonal dynamics of dissolved organic matter (DOM) and its linkage to water quality remain poorly constrained. This study collected outfall water samples seasonally during 2023–2024 along the Nanfei River and Banqiao River in Hefei, Anhui Province. Parallel factor analysis of excitation-emission matrices identified three fluorescent components: fulvic acid-like C1, tryptophan-like (protein-like) C2, and terrestrial humic-like C3. Seasonal variations were pronounced: protein-like C2 dominated in winter and spring, whereas summer and autumn showed lower C2 proportions due to rainwater dilution and urban nonpoint source runoff inputs. Water quality indices decreased in summer and autumn, primarily attributed to dilution by rainfall runoff. Fluorescence index (FI > 1.9) and biological index (BIX > 1.0) indicated predominantly autochthonous DOM sources. During summer and autumn, humification index (HIX) and specific UV absorbance (SUVA) increased, while spectral slope ratio (SR) decreased, suggesting enhanced terrestrial and urban runoff influence. Significant positive correlations were observed between protein-like C2 and terrestrial humic-like C3 with water quality parameters, indicating their utility as precise indicators of pollution sources and seasonal water quality variations. These findings provide a scientific basis for integrated management of urban outfalls.
Journal of Fuel Chemistry and Technology•2026•DOI: 10.1016/S1872-5813(25)60615-3
Co-pyrolysis of oil-rich coal and biomass is a promising route to enhance oil and gas production, yet the underlying synergistic mechanisms remain poorly understood. This study investigates the effect of hydrothermal pretreatment (HTP) on the co-pyrolysis of Huangling coal (H) and enzymatic hydrolysis lignin (E). Raw and pretreated samples were characterized via proximate/ultimate analysis, SEM, ICP-OES, and 13C-NMR. Fixed-bed pyrolysis experiments were conducted to evaluate synergistic performance. Results show that HTP reduces oxygen content, develops pore structure, and increases concentrations of inorganic metal ions (Ca, K, Fe) in the aqueous phase. Structural modifications bring the carbon skeleton of E closer to that of H, with increased bridge carbon ratio and improved thermal stability, aligning pyrolysis temperature ranges. For the H/E blend (8:2) after 24 h HTP, tar yield increases by 80.52% compared to untreated blend, with significant rises in aliphatic compounds and monocyclic aromatic hydrocarbons. Gas yields of H2, CO, and CH4 increase by 5.47%, 10.98%, and 9.27%, respectively, while CO2 and pyrolysis water generation are inhibited (water yield decreases by 93.98%). Semi-coke pore structure becomes more developed. The enhanced synergistic effect is attributed to a multi-fold mechanism of 'component interaction-structural modification-catalytic cracking'. These findings provide theoretical support for developing technologies to improve co-pyrolysis of oil-rich coal and biomass, advancing low-carbon, high-quality utilization.
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: 10.3724/2097-213X.2025.JFCT.0034
Catalytic cracking of gasoline and diesel to light olefins is a pivotal route for high-value utilization of surplus fuels, typically employing zeolite catalysts. This study systematically investigates the effects of zeolite type and acidic properties on the catalytic cracking of dodecane, a diesel model compound, using SAPO-34, ZSM-5 with SiO2/Al2O3 ratios of 38, 85, and 200, and USY. Catalysts were characterized by XRD, SEM, N2 physisorption, NH3-TPD, and pyridine-FTIR, and evaluated in a fixed-bed reactor. Results demonstrate that zeolite type is the primary determinant of conversion and product distribution. SAPO-34, with 0.38 nm pores, achieved only 24.33% conversion and negligible BTX yield, with severe external coking. ZSM-5-38 and USY, with larger pores, achieved near-complete conversion; however, ZSM-5-38, possessing moderate acidity, yielded the highest light olefins (18.40%) and minimal coke (0.18%), while USY, with higher acidity, promoted hydrogen transfer and coking (12.90% coke). Within ZSM-5 series, lower acid site density (ZSM-5-200) proved optimal, achieving 97.79% conversion and a total light olefin yield of 41.93% (ethylene 11.11%, propylene 20.33%, butenes 10.49%) with low coke (0.43%). The study proposes reaction pathways and regulatory mechanisms, highlighting that zeolite type and acidity govern the relative rates of cracking, hydrogen transfer, oligomerization, aromatization, and coking, thereby dictating performance. These findings provide a rational basis for optimizing zeolite catalysts in commercial gasoline/diesel cracking processes.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3918-x
Electrochemical seawater electrolysis powered by renewable energy is a highly promising route toward sustainable hydrogen production, mitigating both energy shortages and carbon emissions. However, chloride-induced corrosion and competitive chlorine evolution reactions lead to metal site dissolution, severely impairing durability, especially at industrial-level current densities. Here, we report a nitrite-incorporated cobalt-iron layered double hydroxide (CoFe-NO2−-LDH) electrocatalyst that exhibits exceptional activity and stability for seawater splitting. The nitrite anion acts as an electronic pump: it accepts electrons to facilitate the formation of high-valence Fe species essential for initial OER activation, and donates electrons under high potential to suppress oxidative dissolution. Moreover, the negatively charged nitrite generates an electrostatic repulsion field that effectively repels chloride ions, protecting metal active sites from corrosion and segregation. The in situ characterization confirms that nitrite doping weakens the Fe–O covalency, which suppresses lattice oxygen participation and promotes a stable adsorbate-evolving mechanism, consequently leading to significantly enhanced operational stability. When used as an anode, the CoFe-NO2−-LDH catalyst achieves over 1000 h of stable operation at 1000 mA cm−2 in seawater electrolysis, demonstrating great potential for practical applications.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-4079-4
Utilization of ultrahigh-nickel LiNi_xCo_yMn_1-x-yO_2 (NCM) (x > 0.97) in Li-ion batteries can distinctively boost energy density through enhanced discharge capacity. However, capacity and thermal stability deteriorate as Ni content approaches the limit. Here, we propose a facile strategy by introducing high-valence tungsten (W) into ultrahigh-nickel polycrystalline LiNi_0.98Co_0.01Mn_0.01O_2 (PCNCM98). W-doped PCNCM98 (W-PCNCM98) exhibits refined, compactly stacked primary particles, whereas PCNCM98 shows equiaxial, non-uniform larger particles. The refined microstructure enhances mechanical strength: average particle hardness of W-PCNCM98 is 104 MPa, 1.5 times higher than PCNCM98 (68 MPa). This improved mechanical property suppresses lattice volume changes and relieves microcrack formation from H2–H3 phase transition. Consequently, cycling performance in pouch-type full cells is significantly enhanced, with capacity retention of 73% after 2000 cycles at 1 C and 25 °C, 54% higher than PCNCM98. Enhanced structural stability and strong electron affinity of W6+ also improve thermal stability: exothermic peak for W-PCNCM98 is postponed to 203 °C with heat generation of 1287 J g−1, versus 190 °C and 1528 J g−1 for PCNCM98. This high-valent doping strategy stabilizes ultrahigh-nickel NCM cathodes, accelerating large-scale EV applications.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3949-4
Sodium metal is considered an ideal anode material for high-performance sodium-based batteries. However, volume changes and dendrite growth during cycling seriously restrict its practical application. To address these challenges, this study utilizes harmful green tide algae Enteromorpha prolifera as a raw material to fabricate a self-supporting, sodiophilic, 3D Enteromorpha prolifera-derived carbon (EC) matrix via defect engineering. The results demonstrate that the 3D EC matrix can reduce nucleation overpotential, enhance binding ability with sodium atoms, and induce sodium to deposit horizontally inside EC, effectively addressing the issue of dendrite formation. Furthermore, the Na-EC symmetric cell demonstrates exceptional cycling stability with an ultralow polarization of 12 mV over 1000 h at 5 mA cm−2, 5 mA h cm−2. Notably, this stability persists even under ultrahigh current density and areal capacity conditions (30 mA cm−2, 30 mA h cm−2), maintaining stable operation for 500 h. When configured in full-cell systems with Na3V2(PO4)3 cathode, the assembled cell delivers an initial discharge capacity of 108.1 mA h g−1 at a 1 C rate, and maintains a capacity retention rate of 94.4% after 500 cycles. This study proposes an innovative strategy to advance high-performance dendrite-free sodium metal batteries through the recycling of marine environmental waste into functional energy materials.
Chinese Journal of Environmental Engineering•2026•DOI: 10.12030/j.cjee.202511025
Under the national carbon peak and carbon neutrality goals, carbon reduction in municipal wastewater treatment plants (WWTPs) has been largely overlooked, yet accurate accounting is the first step toward mitigation. This study establishes a carbon emission accounting method for a municipal WWTP in Lanzhou, covering the operation and maintenance phase, to identify key emission sources and propose feasible reduction pathways. The results show that the total annual carbon emission in 2023 was 61,399.80 t CO2-eq, with an emission intensity of 0.71 kg CO2-eq per tonne of wastewater treated. Monthly emissions were relatively stable, with a coefficient of variation of 3.46%. Direct emissions accounted for 47.47% of the total, with N2O being the dominant contributor (61.89% of direct emissions), followed by CO2 (30.88%) and CH4 (7.23%). Indirect emissions accounted for 52.53%, dominated by electricity consumption (95.15% of indirect emissions). Pearson correlation analysis revealed that direct carbon emissions per tonne were significantly correlated with influent BOD5 concentration, influent TN concentration, BOD5 removal rate, and TN removal rate (P < 0.01). Sensitivity analysis identified sewer retention time, fossil carbon fraction in influent, and solids retention time as the most influential parameters, with sensitivity coefficients of 0.42, 0.35, and 0.28, respectively. Considering uncertainties in emission factors and monitoring errors, the 95% confidence interval for annual total emissions was 55,200–67,600 t CO2-eq, corresponding to an emission intensity of 0.64–0.79 kg CO2-eq per tonne. Recommendations focus on three synergistic reduction strategies: reducing source emissions, lowering energy consumption, and enhancing carbon compensation.
Chinese Journal of Environmental Engineering•2026•DOI: 10.12030/j.cjee.202511054
A novel S-scheme heterojunction photocatalyst, Bi6O5(OH)3(NO3)5·3H2O/BiOBr0.8I0.2 (BON@BI), was synthesized via a one-step hydrothermal method using Bi6O5(OH)3(NO3)5·3H2O (BON), KBr, and KI as precursors. The mass ratio of BON to BiOBr0.8I0.2 (BI) was optimized, revealing that the 20% BON@BI composite (BON@BIOPT) exhibited the highest visible-light photocatalytic activity. Under 30 min of visible-light irradiation, BON@BIOPT achieved a 99.8% degradation efficiency of Rhodamine B (RhB), approximately twice that of pristine BI (52.2%). The composite displayed a rod-like morphology with uniform nanosheets, and its specific surface area increased from 32.54 m²·g⁻¹ (BI) to 44.7 m²·g⁻¹. The absorption edge red-shifted from 560 nm (BI) to 580 nm, narrowing the bandgap from 2.55 eV to 2.43 eV. The S-scheme heterojunction formed between BON and BI generates an internal electric field that effectively suppresses recombination of strongly reducing photogenerated electrons and strongly oxidizing holes, with superoxide radicals (O₂•⁻) and holes (h⁺) identified as the primary reactive species. BON@BIOPT exhibited excellent stability, retaining 88.6% degradation efficiency after seven consecutive cycles. It also demonstrated robust environmental adaptability, maintaining 85–98% degradation efficiency under various pH conditions and in the presence of interfering anions. The degradation pathway of RhB involves N-de-ethylation, cleavage of the conjugated chromophore, and deamination, ultimately mineralizing into low-molecular-weight organics, inorganic salts, CO₂, and H₂O. These results underscore the potential of BON@BIOPT for practical remediation of organic pollutants in water.
Journal of Fuel Chemistry and Technology•2026•DOI: 10.1016/S1872-5813(26)60657-3
Fe-Mn catalysts have attracted considerable attention for industrial Fischer-Tropsch synthesis (FTS) due to their ability to modulate product spectra. Carbon adsorption and permeation on catalyst surfaces are critical elementary steps in the in situ formation of active iron carbide phases. Here, density functional theory (DFT) calculations systematically investigate the atomistic structures, thermodynamic stabilities, and electronic properties of carbon-deposited Fe-Mn alloy surfaces at the early stage of carburization. These surfaces exhibit distinct thermodynamic sensitivity to carbon atoms adsorbed on the surface and permeating into interstitial sites. By combining DFT with minima-hopping structural searches, we demonstrate that the initial stage of carbon permeation cannot trigger surface reconstruction to form iron carbide phases. The addition of manganese thermodynamically hinders carbon permeation. Although deposited carbon atoms modulate the electronic structure of metals, manganese retards the shift of d-band centers toward those of bulk iron carbide phases. This study provides atomic-scale insight into the in situ evolution of Fe-Mn catalyst surfaces during carbon deposition, indicating that manganese promoter has a noticeable effect on carbon permeation.
Chinese Journal of Environmental Engineering•2026•DOI: 10.12030/j.cjee.202511094
Brewer's spent grain (BSG), a major byproduct of the brewing industry, is produced in large quantities globally, yet its high-value utilization remains limited. This study investigated the effects of fermentation temperature (35, 40, 45, 50, and 55 °C) on volatile fatty acid (VFA) production and fungal community structure during anaerobic fermentation of BSG. Results showed that mesophilic temperatures significantly enhanced VFA yields, with the highest production at 35 °C, reaching 344.22 mg/g COD converted, and a peak VFA concentration of 14,267 mg/L after 5 days. Acetic acid dominated the VFA profile (95.6%–98.9%) across all temperatures. Protein and carbohydrate degradation rates were highest under mesophilic conditions, while lipid degradation peaked at 55 °C. Fungal community analysis revealed that at peak acid production, cellulose-degrading fungi were predominant, with Oligophagozyma being the dominant genus at 35 °C (90.07%) and 40 °C (55.31%). Higher temperatures increased fungal diversity and evenness. Mantel tests indicated that carbohydrates and lipids promoted fungal growth, whereas total dissolved solids, nitrate, and phosphate inhibited it. These findings provide insights into the role of fungi in VFA production from BSG and support its resource utilization.
Environmental Chemistry•2026•DOI: 10.7524/j.issn.0254-6108.2026030601
Bisphenol A (BPA), a high-volume industrial chemical, is implicated in neurotoxicity and chronic neurodegenerative diseases. This study integrates network toxicology, molecular docking, and molecular dynamics simulations to systematically delineate the common mechanisms linking BPA to Alzheimer's disease (AD), Parkinson's disease (PD), and Huntington's disease (HD). Using the human astrocyte cell line SVGP12 as an in vitro model, we identified six key toxic functional proteins—TP53, HSP90AA1, HSP90AB1, INS, BCL2, and AKT1—that mediate BPA's effects across these diseases, with BCL2 emerging as the most central node. Experimental validation demonstrated that BPA induces oxidative stress and cell cycle arrest, suppresses the INS-AKT1-BCL2 anti-apoptotic pathway, and activates the TP53-HSP90 pro-apoptotic pathway, culminating in mitochondrial apoptosis of astrocytes and disruption of neural microenvironment homeostasis. These findings reveal a convergent mechanism by which BPA accelerates neurodegeneration, filling a critical gap in understanding BPA's role in AD, PD, and HD. The study provides a novel theoretical framework and experimental evidence for BPA neurotoxicity risk assessment and informs preventive and therapeutic strategies for BPA-related neurodegenerative disorders.
Journal of Fuel Chemistry and Technology•2026•DOI: 10.1016/S1872-5813(26)60710-4
Lignin pyrolysis is a promising route for sustainable production of high-value phenolic chemicals, yet the intricate radical reaction network remains a major bottleneck to optimizing product selectivity. This work constructs a standardized DFT computational database that systematically describes the fast pyrolysis of vanillyl alcohol at 823.15 K. The database features three key components: primary reaction pathways, thermodynamic energy barriers, and atomic-level electronic fingerprints. The dataset covers primary reaction pathways, secondary rearrangements, and both global and local reactivity indices of key intermediates. Notably, it innovatively integrates electronic-structure fingerprints, filling the gap in reaction-network–electronic-property correlation data. Standardized computational workflows and rigorous quality control ensure accuracy, consistency, and reproducibility. The public release of this dataset provides a reliable theoretical benchmark for mechanistic studies of lignin pyrolysis and offers foundational data support for rational design of new catalysts and refinement of reaction kinetic models. Ultimately, this database not only provides an important reference for data-driven catalyst development but also lays a theoretical foundation for precise regulation of lignin depolymerization.
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.0254-6108.2025042702
This study estimated initial volume mixing ratios of volatile organic compounds (VOCs) in Dalian from June 1 to August 31, 2024, using a photochemical age-based parameterization method, and performed source apportionment with positive matrix factorization (PMF). Observed average TVOCs concentration was 12.49×10⁻⁹, comprising alkanes (84.2%), alkenes (10.4%), and aromatics (5.4%). Corrected initial TVOCs was 14.93×10⁻⁹, indicating a loss rate of 16.4%. Loss rates were highest for alkenes (53.2%), followed by aromatics (23.3%) and alkanes (6.8%). Ozone formation potential (OFP) averaged 21.31×10⁻⁹ (observed) and 38.75×10⁻⁹ (initial), with an OFP loss rate of 45.0%, distributed as alkenes (56.4%), aromatics (32.7%), and alkanes (10.3%). During ozone pollution episodes, TVOCs chemical loss was 1.9 times that of non-pollution periods, with alkene loss reaching 61.6%; OFP loss was 1.2 times higher, with alkenes contributing 88.4% to TVOCs loss. Secondary organic aerosol (SOA) formation potential from 08:00–17:00 was 1.51×10⁻¹ μg·m⁻³, with 99.4% from aromatics and toluene contributing 68.3%. PMF identified five sources: motor vehicles (49.6%), oil and gas volatilization (20.7%), petrochemical enterprises (12.6%), industrial processes (11.2%), and solvent use (5.9%). OFP modeling indicated motor vehicles contributed most to ozone formation (41.1%), followed by petrochemical enterprises (35.8%). During ozone pollution, PMF based on initial concentrations showed petrochemical sources had the highest OFP contribution (42.5%), whereas observed concentrations indicated motor vehicles as the top contributor (42.5%). This discrepancy underscores the necessity of correcting for photochemical losses in source apportionment studies.
Environmental Chemistry•2026•DOI: 10.7524/j.issn.0254-6108.2025051404
Rubber additives, such as 1,3-diphenylguanidine (DPG) and p-phenylenediamine antioxidants (PPDs), are widely used in the rubber industry and have been increasingly detected in aquatic environments. This study investigated the distribution characteristics and potential sources of seven typical rubber additives (DPG, 6PPD, IPPD, DPPD, CPPD, DNPD, and 77PD) and the transformation product 6PPD-Q in surface water of the Guangzhou section of the Pearl River, China. A total of 29 sampling sites were analyzed. Total concentrations of the target compounds ranged from 205 to 5400 ng·L−1, with a mean of (820±1100) ng·L−1. DPG was the dominant compound in both dissolved and particle phases, accounting for (99±1.9)% and (66±13)% of the total concentrations, respectively. Source analysis indicated that aquaculture, vessel navigation, agricultural runoff, and wastewater treatment plant discharges likely influence the occurrence of rubber additives in this river section. Risk quotient (RQ) assessment revealed that 6PPD-Q posed high ecological risk at all sampling sites (RQ > 1), while DPG exhibited moderate to high risk at most sites (RQ > 0.1). In contrast, 6PPD, IPPD, CPPD, and DPPD showed low ecological risk. These findings highlight the need for heightened attention to the ecological risks posed by 6PPD-Q and DPG in the Pearl River Basin and provide scientific data for pollution prevention and risk management.
Journal of Environmental Engineering Technology•2026•DOI: 10.13205/j.hjgc.202608007
The Minjiang River Basin, subjected to combined pollution from domestic, agricultural, and industrial sources, has become a typical sensitive area for studying the environmental behavior of emerging contaminants such as antibiotics. This study conducted a cross-year comparative analysis of the composition and concentrations of antibiotics in water samples from nine sampling sites during the dry season in November 2022 and 2024. The findings revealed: 1) After the implementation of the "National Action Plan for Reducing Antimicrobial Use in Livestock", the detection concentrations of tetracycline antibiotics (TCs) decreased (e.g., doxycycline concentrations dropped from 7.75 ng/L to undetectable levels), and the mixed risk quotient (MRQ) across the entire basin transitioned from medium to low risk. However, lincomycin (up to 4.6 ng/L), clarithromycin (1.3 ng/L), and florfenicol (0.6 ng/L) have emerged, indicating an increasing hidden ecological risk from substitution. 2) High-concentration antibiotic zones transferred from urban residential areas in 2022 to intensive aquaculture zones and upstream reservoir areas in 2024. The reduction in dry-season water flow intensified pollutant accumulation, synergistically enhancing the effects of tidal drag. Additionally, the conversion of agricultural land to aquaculture ponds led to increased use of alternative drugs (e.g., sulfamethazine), while policy interventions mitigated the exacerbation of urban antibiotic pollution by construction land. This study elucidates the migration patterns of antibiotic pollution under the synergistic effects of policy regulation and natural processes, emphasizing the need to address hidden risks of substitute drugs and the driving role of land-use changes, providing scientific basis for watershed-scale risk assessment and precise management of emerging pollutants.
Journal of Environmental Engineering Technology•2026•DOI: 10.13205/j.hjgc.202608006
Organic waste is a potential phosphorus reservoir, and understanding the dynamics of available phosphorus (AP) during its resource utilization is critical for efficient phosphorus recovery. Composting, a key route for organic waste valorization, involves complex transformations of phosphorus alongside organic matter degradation and humification. However, the long duration and high cost of composting experiments, coupled with multifactorial influences, hinder efficient elucidation of AP dynamics via conventional methods. This study compiled data from 33 publications, constructing a dataset of 647 samples. Data preprocessing included iterative imputation, one-hot encoding, and standardization. A stacking ensemble learning model was developed to predict AP generation during composting. The optimal ensemble comprised XGBoost and SVR as base learners and ElasticNet as the meta-learner, achieving R² values of 0.954 and 0.928 on training and test sets, respectively, with low overall error. SHAP analysis revealed that key factors influencing AP content, in descending order of importance, were feedstock type, bulking agent type, turning interval, pH, electrical conductivity (EC), and C/N ratio. Notably, livestock manure as feedstock and straw-based bulking agents contributed positively to AP predictions. Partial dependence plots indicated that lower pH and C/N ratios generally favored AP accumulation throughout composting. During the initial stage, higher moisture content and lower EC enhanced AP; in the thermophilic phase, higher temperatures corresponded to higher AP; and during cooling and maturation, maintaining moisture below 48% and C/N below 14, while extending composting beyond 43 days, promoted AP accumulation. This study demonstrates accurate AP prediction via stacking ensemble learning and identifies critical factors, offering support for optimizing phosphorus management in composting engineering.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4075-1
Titanium alloys, such as Ti-6Al-4V (TC4), are indispensable in aerospace, biomedical, and advanced manufacturing due to their high specific strength, corrosion resistance, and biocompatibility. However, their inherent strength-ductility trade-off and limited stiffness hinder next-generation lightweight structural applications. Traditional ceramic reinforcements (TiC, TiB2, SiC) improve strength but introduce brittleness and interfacial incompatibility, degrading plasticity and fatigue resistance. Graphene, with theoretical strength ~130 GPa and Young's modulus ~1 TPa, offers a promising two-dimensional reinforcement. This review systematically examines graphene-reinforced titanium matrix composites (TMCs), focusing on the intrinsic relationship between preparation, microstructure, and properties. Key preparation routes include powder metallurgy and additive manufacturing, with challenges in achieving uniform dispersion and controlling interfacial reactions. Recent studies demonstrate that surface modification and process optimization can form an ideal interface structure comprising a nano-TiC layer and residual graphene. Even at low graphene additions, synergistic strengthening mechanisms—load transfer, fine-grain strengthening, and Orowan dislocation bypass—significantly enhance strength, hardness, and wear resistance while preserving ductility. This review consolidates critical theoretical and experimental findings, offering guidance to overcome technological bottlenecks and promote engineering applications of graphene-reinforced TMCs.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-4057-4
The escalating use of ionizing radiation in medical and industrial applications necessitates lead-free, flexible, and sustainable shielding materials. Current development relies on empirical trial-and-error, which is inefficient. This study introduces a machine learning-assisted Monte Carlo simulation strategy for rapid optimization of metal filler compositions for X-ray attenuation across 40–120 kV. Guided by this AI-driven approach, polyvinyl alcohol (PVA)-based gels containing uniformly dispersed Bi/W/Gd2O3 nanoparticles were developed, forming within 1 minute at -20°C using a PVA-DMSO/H2O co-solvent system. The optimized gel with 50 wt% metal loading exhibits exceptional mechanical properties: tensile strength of 1.76 MPa, toughness of 6.3 MJ m−3, and elongation of 600%. It achieves >98% X-ray shielding efficiency at 5 mm thickness, outperforming lead composites at 120 kV. The physically cross-linked network provides recyclability and anti-freezing capability, retaining flexibility at -50°C. This work establishes a data-driven paradigm for designing high-performance radiation-shielding materials, demonstrating AI's potential to accelerate materials discovery and enable scalable fabrication of eco-friendly protective systems.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-4082-6
High-performance nonvolatile memory devices are crucial for next-generation computing, yet achieving low-power, stable, and reproducible resistive switching remains challenging, primarily due to stochastic filament formation and limited precise control over the electronic properties of active materials. Herein, we employ a rational molecular engineering strategy to address these limitations by constructing a series of two-dimensional pyrene-based covalent organic frameworks (Py-COFs)—Py-H, Py-CH3, and Py-OH—via systematic substitution (–H, –CH3, and –OH) on the phenyl linkers to modulate backbone electronics. The electron-donating –CH3 and –OH motifs enrich the π-conjugated backbone with higher electron density, while the –OH moiety in Py-OH further engages in p-π conjugation with the benzene ring and forms intramolecular hydrogen bonds, thereby increasing framework rigidity, enhancing orbital overlap, and promoting charge delocalization. Enabled by these structural refinements, Py-OH-based devices exhibit markedly improved resistive switching behavior, characterized by a low operating voltage, an ON/OFF ratio of ~10^3.45, and excellent retention stability. Combined photophysical, electrochemical, and high-resolution TEM analyses corroborate that hydroxyl-driven p-π conjugation, hydrogen-bond reinforcement, and the emergent nanowire-like morphology synergistically suppress uncontrolled filament formation and promote efficient charge transport. These findings establish a clear structure-property correlation in functionalized Py-COFs and underscore their promise as tunable active layers for low-power, high-performance resistive memory and neuromorphic computing.
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/s40843-025-4031-6
Organic fluorophores operating in the second near-infrared (NIR-II, 1000–1700 nm) window are highly attractive for cancer phototheranostics. Yet, the advancement of aza-BODIPY-based NIR-II dyes remains challenging due to their limited spectral tunability and diminished fluorescence quantum yields (FLQY) under physiological conditions. Herein, we propose a rational donor-acceptor (D-A) molecular engineering strategy to construct an aza-BODIPY fluorophore, TPACN, featuring intramolecular charge transfer (ICT)-enhanced NIR-II emission and balanced photothermal performance. By introducing electron-rich triphenylamine (TPA) donors and peripheral cyano (–CN) acceptors, the optimized D-A coupling significantly strengthened the ICT effect, leading to broadened NIR absorption, a markedly red-shifted fluorescence peak at 1086 nm, and an exceptional fluorescence quantum yield of 1.55% in dichloromethane (DCM). When encapsulated in F127, TPACN nanoparticles (TPACN NPs) maintained a high aqueous FLQY of 0.20%, accompanied by a notable photothermal conversion efficiency (PCE) of 39% under 808 nm irradiation. The sterically twisted TPA units effectively alleviated aggregation-caused quenching (ACQ) and fine-tuned the excited-state energy dissipation pathways, realizing a synergistic balance between radiative (fluorescence) and non-radiative (heat) relaxation. Benefiting from these optimized photophysical properties, TPACN NPs achieved high-resolution NIR-I photoacoustic and NIR-II fluorescence dual-modal imaging, enabling accurate tumor visualization and efficient photothermal ablation in vivo. This work introduces a general design paradigm that exploits ICT modulation and steric engineering to overcome the intrinsic fluorescence bottleneck of aza-BODIPY systems, offering new molecular insights for the advancement of high-performance NIR-II dyes for precision phototheranostics.
Journal of Fuel Chemistry and Technology•2026•DOI: 10.1016/S1872-5813(26)60663-9
The catalytic hydrogenation of biomass-derived dimethyl succinate (DMS) to 1,4-butanediol (BDO) is a pivotal route for producing high-value C4 chemicals in green chemistry. Cu/SiO2 catalysts are known for high selectivity in hydrogenating ester groups, with performance correlated to copper species microstructure. Although calcination critically defines this active structure, systematic influence of calcination atmosphere remains underexplored. Here, Cu/SiO2 catalysts were prepared via urea-assisted hydrothermal method and calcined under different atmospheres to elucidate effects on physicochemical properties and hydrogenation performance. Comprehensive characterization (N2 physisorption, FT-IR, H2-TPR, XRD, TEM, N2O pulse chemisorption, XPS, NH3-TPD) revealed that calcination atmosphere profoundly alters metal-support interaction, regulating dispersion and chemical state of copper species. Specifically, air calcination promoted stronger metal-support interaction, enhancing copper dispersion and increasing proportion of key active Cu+ species. Consequently, air-calcined catalyst achieved 92.37% DMS conversion and 64.15% BDO yield under optimized conditions (210 °C, 5.0 MPa, WHSV 0.6 h−1, H2/DMS molar ratio 100). This work underscores calcination atmosphere engineering as potent strategy for optimizing metal-support interactions in heterogeneous catalysts for efficient hydrogenation.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-4334-9
Piezoelectric materials underpin modern electromechanical energy conversion, serving as critical components in sensors, actuators, and energy harvesters. Their performance is intrinsically governed by the piezoelectric coefficient, yet optimizing this property remains challenging due to the profound influence of diverse microscopic structures. This review systematically examines three fundamental crystalline architectures—perovskite, wurtzite, and fluorite—and critically analyzes performance optimization strategies tailored to each structure. We explore five principal modification approaches: defect engineering, elemental doping, heterostructure film fabrication, composite film design, and buffer layer incorporation, with emphasis on the underlying physical mechanisms that drive property enhancements. By providing a cross-structural comparison, this review establishes clear structure–property relationships, offering a foundational guide for material selection and design. Furthermore, we highlight the implications of these advanced materials for next-generation applications in energy harvesting and smart devices. Finally, we present a forward-looking roadmap, outlining emerging research directions and addressing key technical challenges to guide the development of next-generation high-performance piezoelectric materials.
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/s40843-025-4129-y
Therapeutic biosynthesis is a promising strategy for precision cancer therapy, yet achieving controlled synthesis of abiotic materials within tumors remains challenging. Here, we report a “dual lock-and-key” system for tumor-specific intracellular synthesis. The precursor, termed “dual-lock,” is activated by two endogenously overexpressed enzymes—azoreductase (AzoR) and nitroreductase (NTR)—acting as “dual keys” in target cancer cells. This activation triggers a condensation reaction that produces fibrous mesh covalent organic polymers (Fm-COPs) in situ. Synthesized Fm-COPs effectively disrupt the cytoskeleton, inhibiting cell migration and invasion while inducing apoptosis. In vivo studies demonstrate that this strategy achieves specific tumor enrichment and deep penetration, leading to significant tumor growth inhibition (tumor inhibition rate >70%) without systemic toxicity, as evidenced by stable body weights and normal histopathology. The dual enzyme-responsive mechanism ensures high selectivity, and the small-molecule precursors facilitate efficient tumor penetration. This work presents a next-generation approach for high-precision cancer therapy, offering a biocompatible and autonomous strategy for intracellular synthesis.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4188-x
Sodium metal anodes, with high theoretical capacity (1166 mAh g−1) and low redox potential (−2.71 V vs. H+/H2), are promising for low-cost, high-energy sodium metal batteries (SMBs). However, uncontrolled dendrite growth and drastic volume changes cause short circuits and safety hazards. This work presents a dual-gradient engineering strategy to address these issues. A 3D self-supporting current collector (SSM-ZnS@Zn) was fabricated by laminating a stainless steel mesh (SSM) with a Zn foil decorated with pre-grown ZnS nanoparticles via a one-step rolling process. The substantial electrical conductivity difference between the bottom zinc foil (~16.6×10^6 S m−1) and the top SSM (~1.3×10^6 S m−1) establishes an electric field gradient. Simultaneously, a sodiophilicity gradient is created by electrochemically in-situ generated sodiophilic NaZn13 and Na2S on the bottom zinc foil, combined with the sodiophobic upper SSM layer. This dual-gradient synergy guides bottom-up sodium deposition, homogenizes current density and electric potential, and reinforces mechanical robustness. The framework exhibits outstanding electrochemical performance in both symmetric and full cells, outperforming most reported 3D structures. A pouch cell assembled with SSM-ZnS@Zn successfully lit an LED lamp, demonstrating practical application potential. This strategy surpasses single-gradient limitations and offers a new approach for high-performance sodium metal anode design.