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All Clean Energy & Battery Intelligence (Page 58)

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Published Research Papers

Showing 24 of 1398 peer-reviewed translated articles (Page 58 of 59)

Injectable Hydrogel with Photothermal Antibacterial Properties for Accelerating Infected Wound HealingGraphical AbstractVerified
SCIENCE CHINA Materials2026

Injectable Hydrogel with Photothermal Antibacterial Properties for Accelerating Infected Wound Healing

Bacterial infection and irregular wound morphology are major challenges in clinical wound management. Injectable hydrogels can conform to irregular wound geometries but often lack antimicrobial activity. Here, we report an injectable hydrogel (HPAu gel) formed by sequentially mixing phenylboronic acid-modified hyaluronic acid (HA-PBA) and chloroauric acid under alkaline conditions. The gel's internal multiple crosslinks enable uniform encapsulation of in situ-generated gold nanoparticles. Hydrogen bonds and phenylboronic acid ester bonds confer self-healing, injectability, and adhesion, allowing effective sealing of irregular cavities. In vitro, the hydrogel exhibits long-lasting photothermal stability and eliminates multiple bacterial strains. In a mouse dorsal full-thickness infected wound model, HPAu gel under near-infrared (NIR) irradiation eradicated Staphylococcus aureus, reduced inflammation (TNF-α fluorescence area significantly lower; IL-10 area 12.88‰ vs <2‰ in Blank), promoted vascular regeneration (CD31 and α-SMA expression increased), and accelerated wound healing. This work presents a promising strategy for treating irregular infected wounds.

Read Full Abstract10.1007/s40843-026-4150-2
Electronic regulation via d-p coupling between ruthenium nanoclusters and ReS2 nanosheets for enhanced green hydrogen production performanceGraphical AbstractVerified
SCIENCE CHINA Materials2026

Electronic regulation via d-p coupling between ruthenium nanoclusters and ReS2 nanosheets for enhanced green hydrogen production performance

Green hydrogen production via electrocatalytic water splitting is pivotal for sustainable energy, yet the high cost and scarcity of platinum (Pt) catalysts impede large-scale adoption. Ruthenium (Ru)-based materials emerge as promising alternatives, but their performance requires enhancement. Two-dimensional transition metal dichalcogenides (TMDs), particularly ReS2, offer intrinsic 1T' phase with good conductivity and stability, yet suffer from inert surfaces limiting water adsorption. Here, we report a heterostructure comprising Ru nanoclusters anchored on ReS2 nanosheets (Ru/ReS2) to modulate electronic structure via d-p coupling. This design enhances water dissociation kinetics and optimizes hydrogen adsorption free energy (ΔG_H*). The Ru/ReS2 catalyst exhibits superior hydrogen evolution reaction (HER) activity in acidic media, achieving an overpotential of 47 mV at 10 mA cm−2 and a Tafel slope of 38 mV dec−1, outperforming commercial Pt/C (overpotential 54 mV, Tafel slope 45 mV dec−1). Notably, it demonstrates exceptional stability, with negligible degradation after 10,000 cyclic voltammetry cycles, contrasting with Pt/C's 54 mV overpotential increase. Density functional theory calculations reveal that d-p coupling between Ru and ReS2 optimizes the electronic structure, facilitating water adsorption and dissociation. This work provides a rational strategy for designing efficient, durable, and cost-effective HER electrocatalysts for green hydrogen production.

Read Full Abstract10.1007/s40843-026-4181-6
A metabolizable benzothiazole-based covalent organic framework nanodot enables photothermal-boosted cuproptosis for synergistic cancer therapyGraphical AbstractVerified
SCIENCE CHINA Materials2026

A metabolizable benzothiazole-based covalent organic framework nanodot enables photothermal-boosted cuproptosis for synergistic cancer therapy

Copper-based synergistic therapy integrating chemodynamic therapy (CDT) and cuproptosis holds promise for tumor treatment but faces clinical translation hurdles including long-term toxicity, low catalytic efficiency, off-target effects, and copper ion efflux. Here, we developed metabolizable ultrasmall benzothiazole-based covalent organic framework nanodots (COF NDs) via click condensation followed by liquid exfoliation. The dense donor-acceptor configurations confer a high photothermal conversion efficiency of 51.16%, while bisthiazole motifs enable specific Cu2+/Cu+ chelation (0.56:0.44), facile PEGylation, and mitochondrial targeting. These features enhance physiological stability and enable tumor-specific photothermal-catalytic synergy. Mitochondrial accumulation elevates intracellular copper to a critical threshold, inducing cuproptosis and suppressing tumor growth and metastasis. The NDs are efficiently excreted via renal and fecal pathways, demonstrating favorable biocompatibility and clinical potential as copper-based nanotherapeutics.

Read Full Abstract10.1007/s40843-025-4026-0
Application of Biotin-DFYIGSRGD Hydrogel in the Construction of an Islet Culture PlatformGraphical AbstractVerified
SCIENCE CHINA Materials2026

Application of Biotin-DFYIGSRGD Hydrogel in the Construction of an Islet Culture Platform

The low survival rate and compromised functionality of β cells present significant obstacles in islet transplantation for diabetes management. Recent studies indicate that the sensitivity of β cells to their microenvironment may be a contributing factor. In this study, Biotin-DFYIGSRGD hydrogel (Supragel) was employed to replicate the microenvironment of mouse β cells (MIN6 cells) and human islets, enhancing cell viability, functionality, and structural integrity. Compared with conventional two-dimensional cell culture methods utilizing cell plates, MIN6 cells cultured on the gel adhered and self-organized into cell spheroids, resulting in increased synthesis of insulin and glucagon. Furthermore, the hydrogel effectively preserved the integrity of human islets and extended their in vitro culture period. This improvement may be attributed to the optimal hardness of the gel, which facilitated cell adhesion and promoted vascularization. Additionally, the gel exhibited sustained in vivo retention over 120 days, undergoing gradual degradation without eliciting significant inflammatory responses. These properties establish it as a promising encapsulation material for pancreatic islet cells or organoids, supporting long-term cell survival, function, and integration with host tissues. The study highlights the potential of Biotin-DFYIGSRGD hydrogel as an islet culture platform for diabetes treatment.

Read Full Abstract10.1007/s40843-026-4071-3
Moisture-resistant and long-life fiber-shaped zinc-air batteries via electrolyte engineeringGraphical AbstractVerified
SCIENCE CHINA Materials2026

Moisture-resistant and long-life fiber-shaped zinc-air batteries via electrolyte engineering

Fiber-shaped zinc-air batteries (FZABs) with aqueous electrolytes combine intrinsic safety, high energy density (1086 Wh kg−1), and environmental compatibility, making them attractive for wearable applications. However, free water in the electrolyte induces severe anode degradation while being a critical reactant for cathode redox, presenting a dilemma between anode stability and cathode functionality. The semi-open structure of FZABs allows airborne water to permeate and migrate to the anode, causing interfacial instability, while high surface area accelerates solvent evaporation, leading to increased internal resistance and salt crystallization. Consequently, typical cycle life is limited to <50 h. To overcome these challenges, we report a polymer electrolyte that captures atmospheric water as a solvent through the semi-open structure, achieved by introducing acetamide (AA), identified via unsupervised clustering algorithms, into the poly(vinylidene fluoride-hexafluoropropylene)/zinc trifluoromethanesulfonate (PVDF-HFP/Zn(OTf)2) system. AA incorporation preserves solvent-retention capability while reconstructing the Zn2+ coordination structure, promoting salt dissociation and polymer-segment mobility. Low adsorption energy of AA on zinc surfaces suppresses parasitic reactions from ambient moisture, and preferential adsorption across zinc crystal planes directs Zn2+ deposition along the (002) face, leading to uniform plating morphology. The exogenous aqueous polymer electrolyte exhibits superior mechanical properties, enabling stable output even after compression by a 1.7-t vehicle. As proof-of-concept, FZABs integrated with fiber solar cells and sensors in clothing enabled real-time health monitoring and sustainable energy utilization, demonstrating promising practical applications.

Read Full Abstract10.1007/s40843-026-4147-9
Self-assembled theranostic nanoplatform-mediated calcium-overload for enhanced sonodynamic therapyGraphical AbstractVerified
SCIENCE CHINA Materials2026

Self-assembled theranostic nanoplatform-mediated calcium-overload for enhanced sonodynamic therapy

Sonodynamic therapy (SDT) faces limited efficacy due to robust antioxidant systems in tumors that scavenge reactive oxygen species (ROS). To overcome this, we developed a pH/ultrasound-responsive theranostic nanoplatform, Mn-CaCO3@NGQDs/PAA, via self-assembly of nitrogen-doped graphene quantum dots (NGQDs), Mn-doped CaCO3, and polyacrylic acid (PAA). This platform synergistically combines SDT with calcium overload. Under ultrasound irradiation, it generates abundant singlet oxygen (1O2), while the acidic tumor microenvironment triggers sustained Ca2+ release, inducing calcium overload. The combined effects amplify oxidative stress, suppressing tumor growth. Additionally, the nanoplatform exhibits dual-mode T1/T2-weighted magnetic resonance imaging (MRI) performance, enabling tumor localization. In vivo studies demonstrated significant tumor inhibition and apoptosis, with no notable toxicity. This integrated strategy maximizes therapeutic efficacy, offering a promising approach for enhanced tumor therapy.

Read Full Abstract10.1007/s40843-025-4024-1
Rapid Reconstruction of Commercial Bulk Niobium Oxide for Highly Stable Electrochemical Uranium Extraction in the Presence of FluorineGraphical AbstractVerified
SCIENCE CHINA Materials2026

Rapid Reconstruction of Commercial Bulk Niobium Oxide for Highly Stable Electrochemical Uranium Extraction in the Presence of Fluorine

Electrochemical uranium extraction from fluorine-containing nuclear wastewater is critical for nuclear fuel recovery, yet current electrode materials suffer from limited scalability and insufficient long-term stability. Here, we report a bulk monoclinic Nb2O5−x (H-Nb2O5−x) derived from commercial bulk niobium oxide via rapid reconstruction, exhibiting exceptional activity and robustness for electrochemical uranium extraction in fluorine-rich environments. The intrinsic active pairs of low-valent Nb4+ and compact oxygen structure strongly bind with dominant uranyl fluoride species (UO2F+, UO2F2, UO2F3−, UO2F4^2−), facilitating efficient separation. In a 30 g L−1 fluoride solution, H-Nb2O5−x achieved a uranium extraction efficiency of 99.1%. Notably, in a 10-L real nuclear wastewater test, the bulk material maintained stable performance over 40 days, reducing uranium concentration from 1372.3 mg L−1 to 0.93 mg L−1. This work demonstrates a scalable, durable electrode material for industrial electrochemical uranium extraction, addressing the bottlenecks of complexation and stability in fluoride-containing waste streams.

Read Full Abstract10.1007/s40843-025-4185-6
Morphology-manipulated topological insulator Bi2Se3 nanosheets for integrated microwave absorption and thermoelectric conversionGraphical AbstractVerified
SCIENCE CHINA Materials2026

Morphology-manipulated topological insulator Bi2Se3 nanosheets for integrated microwave absorption and thermoelectric conversion

The proliferation of high-frequency communication technologies has escalated electromagnetic (EM) pollution, posing risks to health and device reliability. Conventional microwave absorbers dissipate EM energy as heat, creating thermal management burdens and energy waste. This study introduces Bi2Se3 nanosheets, a topological insulator with surface conductivity and internal insulation, as a dual-functional material capable of both microwave absorption and thermoelectric conversion. Nanosheets with controlled morphology were synthesized via a polyol reduction method, with thickness and lateral size tuned by preparation conditions. The resulting composites exhibited excellent microwave absorption, achieving a broad absorption bandwidth of 2.95 GHz at sub-millimeter thickness. A multilayered structure design enabled full-band absorption from 2 to 18 GHz using a single absorbent. The Seebeck coefficient, derived from temperature differences up to 110 °C, was -152 μV/K, indicating efficient conversion of absorbed EM energy into electrical energy. This work demonstrates the potential of Bi2Se3 nanomaterials for self-powered electromagnetic devices, addressing both EM pollution and energy supply challenges.

Read Full Abstract10.1007/s40843-025-4222-9
A H2O2-triggered NIR chemiluminescence nanoprobe with aggregation-induced emission properties for in vivo inflammation imaging and tumor theranosticsGraphical AbstractVerified
SCIENCE CHINA Materials2026

A H2O2-triggered NIR chemiluminescence nanoprobe with aggregation-induced emission properties for in vivo inflammation imaging and tumor theranostics

Real-time, in situ imaging of hydrogen peroxide (H2O2), a key reactive oxygen species implicated in various diseases, remains challenging due to limitations of existing probes, such as short emission wavelengths and reliance on external excitation. To address these issues, we developed an H2O2-triggered near-infrared (NIR) chemiluminescence (CL) nanoprobe with aggregation-induced emission (AIE) characteristics for in vivo inflammation imaging and tumor theranostics. This nanoprobe, denoted as CPPO@TN NPs, was constructed by co-encapsulating a tailored AIE photosensitizer (TN) with strong NIR emission and high singlet oxygen (1O2) generation, a H2O2-responsive chemiluminescent substrate (CPPO), and soybean oil (as a retarder) within F-127 micelles. Upon encountering H2O2, the nanoprobe undergoes a persistent chemically initiated electron exchange luminescence (CIEEL) process that activates AIEgens, resulting in intense NIR chemiluminescence and sustained 1O2 production without the need for external irradiation. Leveraging this mechanism, CPPO@TN NPs achieved highly sensitive and specific imaging of drug-induced liver injury and peritonitis in murine models, with exceptional tissue penetration and signal-to-noise ratio. Furthermore, the nanoprobe facilitated effective self-luminescent imaging and photodynamic therapy of tumors, significantly inhibiting tumor growth in a 4T1 tumor-bearing mouse model. This platform provides an external light excitation-free theranostic strategy for H2O2-associated diseases.

Read Full Abstract10.1007/s40843-026-4117-y
Cracking-Directed Dynamic Liquid Bridging for Autonomous Microdroplet Recession and EnrichmentGraphical AbstractVerified
SCIENCE CHINA Materials2026

Cracking-Directed Dynamic Liquid Bridging for Autonomous Microdroplet Recession and Enrichment

The precise manipulation of microdroplets (diameter < 20 μm) on solid substrates is critical for applications in environmental monitoring, targeted drug delivery, clinical diagnostics, and public health. A major challenge is contact angle hysteresis (CAH), which pins droplets and impedes mobility. Here, we introduce a crack-mediated capillary bridging strategy for efficient capture and directional transport of microdroplets. The approach employs a stretchable elastomeric substrate with island-like microstructures. Under longitudinal tensile stress, controlled fracture generates densely packed, directionally oriented surface cracks. These fissures induce localized capillary forces that counteract adhesion-induced resistance, enabling programmable droplet motion. Experiments capturing airborne pathogenic agents demonstrated a 14.2-fold enhancement in enrichment efficiency compared to flat surfaces. This work integrates fracture mechanics with capillary-driven fluid dynamics, establishing a framework for next-generation microfluidic systems. The findings offer promising avenues for biosensing, pollutant analysis, and interdisciplinary applications.

Read Full Abstract10.1007/s40843-026-4175-3
Unraveling the bilayer-cooperative transformation mechanism at the α/β-Si3N4 interface via machine-learning simulationsGraphical AbstractVerified
SCIENCE CHINA Materials2026

Unraveling the bilayer-cooperative transformation mechanism at the α/β-Si3N4 interface via machine-learning simulations

Silicon nitride (Si3N4) is a strong, thermally stable covalent ceramic typically regarded as brittle with limited deformability. Recent experimental and density functional theory (DFT) studies indicate that the α/β interface undergoes a β→α transformation via sliding followed by bond-switching, suggesting a pathway to achieve plasticity, but DFT's spatiotemporal reach prevents a full mechanistic picture. Here, we develop a physics-informed high-accuracy neural network interatomic potential (NNAP) model with DFT-level accuracy for phase transformations and use it to perform large-scale atomistic simulations. NNAP-guided simulations show that structural relaxation during relative sliding between α- and β-phases at the interface triggers pronounced atomic-layer rearrangements and lowers the energy barrier by nearly 60%. We further find that the ensuing phase transformation does not proceed by isolated layer-by-layer switching but instead follows in-plane nucleation and growth mediated by a bilayer cooperative mechanism, which further reduces kinetic barriers and facilitates the transformation. CI-NEB calculations reveal that the bilayer cooperative pathway has an energy barrier of 0.018 eV/Ų, lower than the independent layer-by-layer manner (0.020 eV/Ų), indicating enhanced kinetic accessibility. These results provide new atomistic insights into interface-driven phase transformations in dual-phase Si3N4 and offer guidance for designing more deformable covalent ceramics.

Read Full Abstract10.1007/s40843-026-4088-y
Adaptive Molecular Weaving for Efficient Isotope SeparationsGraphical AbstractVerified
SCIENCE CHINA Materials2026

Adaptive Molecular Weaving for Efficient Isotope Separations

Isotope separations, particularly the separation of water isotopologues (H2O, HDO, D2O), are critical yet challenging due to their nearly identical physicochemical properties. Conventional methods such as distillation and electrolysis are energy-intensive and inefficient. Here, we report a molecularly woven porous polymer (PWPN-1) that achieves efficient room-temperature separation of water isotopologues via adaptive framework dynamics. PWPN-1 is constructed from interlaced two-dimensional woven layers linked by B←N coordination nodes, forming a three-dimensional flexible framework. Upon activation, it undergoes reversible contraction along the crystallographic c-axis, exhibiting a breathing behavior that creates differentiated adsorption sites favoring D2O retention. Gas-phase breakthrough experiments demonstrate markedly different retention times for H2O (223 min g−1) and D2O (686 min g−1), with clearly resolved breakthrough curves for H2O/HDO/D2O mixtures under continuous flow. The material is synthesized on a 100-gram scale with ~95% yield and remains stable over multiple adsorption-desorption cycles. Single-crystal structure analyses, combined with path-integral molecular dynamics and DFT calculations, reveal that D2O exhibits slightly stronger binding energies (by 1–2 kJ mol−1) and higher diffusion barriers, arising from nuclear quantum effects. These small energetic differences are amplified by the flexible woven topology, enabling efficient isotope separation under ambient conditions. This work represents a conceptual advance in materials design, transposing macroscopic weaving to the molecular scale for practical isotope enrichment.

Read Full Abstract10.1007/s40843-026-4049-0
Boosting efficiency to 13.07% in flexible Cu2ZnSn(S,Se)4 solar cells via heterojunction regulation of defects and stressGraphical AbstractVerified
SCIENCE CHINA Materials2026

Boosting efficiency to 13.07% in flexible Cu2ZnSn(S,Se)4 solar cells via heterojunction regulation of defects and stress

Flexible Cu2ZnSn(S,Se)4 (CZTSSe) solar cells are promising for lightweight and mechanically pliable photovoltaics, yet their performance is limited by severe non-radiative recombination and residual stress. Here, we report a sealed constant temperature (SCT) annealing strategy that simultaneously optimizes the CZTSSe/CdS heterojunction and alleviates stress. Under uniform mild thermal conditions (85°C, 5 h), SCT annealing promotes gradient diffusion of Cd2+ into the absorber, partially substituting Zn2+, which optimizes band alignment, passivates interface defects, and suppresses near-interface CuZn defects. This reduces open-circuit voltage loss and improves fill factor. The flexible device achieves a power conversion efficiency of 13.07%, a significant improvement over the reference (12.1%). The SCT strategy also enhances mechanical flexibility by reducing residual stress. Our findings provide a controllable route to advance both efficiency and flexibility of flexible CZTSSe solar cells.

Read Full Abstract10.1007/s40843-026-4216-7
Carbon Networks Enable Durable Alloy Anodes for Na-ion BatteriesGraphical AbstractVerified
SCIENCE CHINA Materials2026

Carbon Networks Enable Durable Alloy Anodes for Na-ion Batteries

Sodium-ion batteries (NIBs) are increasingly recognized as a promising technology for large-scale energy storage and heavy-duty electric vehicles, owing to the global abundance and cost-effectiveness of sodium resources. While gravimetric energy density has been the focus of battery research, the burgeoning demand for compact energy storage in space-constrained applications has shifted priorities toward volumetric energy density. In this context, alloy-based anodes—particularly metallic tin (Sn)—offer a compelling theoretical capacity (847 mAh g−1) and a high tap density that far exceeds that of conventional hard carbon. However, the commercialization of micrometre-sized Sn has been chronically hindered by two intrinsic material limitations: the “cold welding” effect during manufacturing, caused by its extreme Mohs softness (1.5), leading to agglomeration of the electrode material, and the rapid structural pulverization resulting from massive volume expansion (~420%) during sodiation/desodiation cycles, causing the electrode particles to lose electrochemical activity and resulting in capacity fading. Conventional mitigation strategies, such as nanostructuring and addition of high weight-percentage carbon additives, often sacrifice initial Coulombic efficiency (ICE), volumetric capacity, and material scalability. Addressing the fundamental challenge of how to maintain stable electrical connectivity and structural integrity in micrometre-scale alloy particles without compromising the energy density of the entire electrode represents a significant research endeavor. Recently, Hu’s group introduced single-walled carbon nanotubes (SWCNTs) as a conductive cross-linker, termed “9226-SWCNT”, configured as (92 wt% Sn, 2 wt% SWCNTs, and 6 wt% carboxymethyl cellulose (CMC) binder). This specific ratio creates a robust three-dimensional cross-linked network. Unlike zero-dimensional carbon black (acetylene black), the high-aspect-ratio SWCNTs act as a flexible “nano-bandage” that wraps around the micrometre-scale Sn particles. This transforms the electrical connectivity from inefficient point contact to stable “face-to-face” contact. This network offers a dual benefit: the SWCNTs serve as a mechanical barrier that prevents Sn particles from cold welding during the mixing process, and they function as an elastic scaffold that maintains electrical continuity despite the drastic volume fluctuations of the Sn particles. When the conventional acetylene black-based electrodes fail rapidly, the 9226-SWCNT system demonstrates 87.6% capacity retention after 6000 cycles at 2 A g−1, proving that the mechanical architecture of the conductive network is as vital as its electronic properties. The Sn electrode transforms into a three-dimensional porous coral-like structure upon sodiation, which facilitates Na+ diffusion and buffers the mechanical stress induced by volume expansion. The authors compared the effects of different proportions of SWCNTs. To characterize the resulting morphological evolution, they introduced topological analysis and machine learning (ML), using the first Betti number (β1) as a metric to quantify the coral-like structure by counting the closed loops within the sodiated Sn anode. The 9226-SWCNT electrode maintains a significantly higher β1 value during cycling compared to the 9046-SWCNT (4 wt% SWCNT) sample. This reveals that a higher content of conductive additive (4% vs. 2%) actually results in fewer structural pores; that is, an excessive amount of SWCNTs hinders the topological evolution of Sn and consequently impedes its sodiation process. The authors further explain this through the “exposure effect”: initially, Sn particles are “embedded” and shielded by the SWCNT-CMC network. If the network is too dense, it restricts the necessary morphological transformation, underscoring the critical balance between conductive additive content and electrochemical performance.

Read Full Abstract10.1007/s40843-026-4135-3
Synergistic regulation of entropy effect and interface engineering to boost metal fluoride cathode performance in lithium-ion batteriesGraphical AbstractVerified
SCIENCE CHINA Materials2026

Synergistic regulation of entropy effect and interface engineering to boost metal fluoride cathode performance in lithium-ion batteries

Transition metal fluorides (TMFs) are promising cathode materials for lithium-ion batteries (LIBs) due to their high theoretical capacity and energy density, yet their practical application is hindered by low utilization rates stemming from particle sizes exceeding the effective Li+ transport distance (<20 nm). This work introduces a multiphase metal fluoride composite (MMFC) synthesized via a hydrothermal method, leveraging high-entropy concepts and interface engineering to enhance electrochemical performance. The MMFC, after annealing at 400°C (MMFC-400), exhibits high specific capacity, excellent rate capability, and cycling stability. The multiphase interfaces accelerate Li+ migration kinetics and provide additional active sites, addressing the limitations of conventional TMF cathodes. This study proposes a multiphase interfacial energy storage strategy for advanced TMF cathodes, offering a pathway to high-performance LIBs.

Read Full Abstract10.1007/s40843-026-4169-9
Boosting the cycling stability of P2-type layered oxide cathodes via a synergistic high sodium and Li/Mg co-doping strategyGraphical AbstractVerified
SCIENCE CHINA Materials2026

Boosting the cycling stability of P2-type layered oxide cathodes via a synergistic high sodium and Li/Mg co-doping strategy

Sodium-ion batteries (SIBs) are emerging as a cost-effective alternative to lithium-ion batteries due to the abundance of sodium resources. Among cathode materials, P2-type layered oxides (Na_xTMO_2) offer high ionic conductivity and rate capability but suffer from low initial sodium content and Na+/vacancy ordering, leading to structural degradation and capacity fading. This study proposes a synergistic strategy combining high sodium content with Li/Mg co-doping to enhance the cycling stability of P2-type cathodes. The high sodium content increases the sodium reservoir, reducing the depth of desodiation for a given capacity, while Li/Mg co-doping mitigates Na+/vacancy ordering and stabilizes the crystal structure. The optimized cathode exhibits significantly improved cycling performance, retaining 82.3% of its initial capacity after 500 cycles at 1C, compared to 65.4% for the undoped counterpart. Furthermore, the co-doped material demonstrates enhanced rate capability, delivering 112 mAh/g at 5C, and suppressed phase transitions, as evidenced by in-situ X-ray diffraction. This work provides a rational design pathway for high-performance P2-type cathodes, addressing key bottlenecks in SIB commercialization.

Read Full Abstract10.1007/s40843-026-4208-8
Upcycling spent LiFePO4 via a fluorine doping-assisted direct regeneration strategy for high-rate lithium-ion batteriesGraphical AbstractVerified
SCIENCE CHINA Materials2026

Upcycling spent LiFePO4 via a fluorine doping-assisted direct regeneration strategy for high-rate lithium-ion batteries

The escalating retirement of lithium-ion batteries (LIBs) necessitates efficient recycling technologies to recover cathode materials, particularly lithium iron phosphate (LFP), which dominates the traction battery market. Conventional pyrometallurgical and hydrometallurgical methods are energy-intensive and environmentally burdensome. Here, we report a fluorine doping-assisted direct regeneration strategy for spent LFP (SLFP) cathodes, yielding a regenerated LFP-F (RLFP-F) with a hybrid structure of ordered crystalline and disordered domains. Fluorine doping reduces the Li+ diffusion energy barrier, as evidenced by density functional theory calculations, and strengthens Fe–O bonding, suppressing Fe migration and anti-site defect formation. The O 2p band center shifts downward, increasing the Fe 3d–O 2p energy separation from 3.23 eV in pristine LFP to 3.46 eV in RLFP-F, enhancing structural stability and electronic conductivity. Electrochemical tests demonstrate that RLFP-F delivers a high-rate capability and excellent cycling stability. Life-cycle assessment reveals that direct regeneration consumes only 9.986 MJ kg−1 and emits 0.324 kg CO2-equivalent per kg of cell, significantly outperforming pyrometallurgy and hydrometallurgy. Economic analysis based on 2025 Chinese market prices indicates a net profit of $397.15 per ton of SLFP battery recycling, attributed to the closed-loop cathode-to-cathode design. This work provides a sustainable and economically viable route for upcycling spent LFP batteries.

Read Full Abstract10.1007/s40843-026-4229-6
An In-Situ Oxidation Routine for Reliable Low-Voltage 2D FeFETsGraphical AbstractVerified
SCIENCE CHINA Materials2026

An In-Situ Oxidation Routine for Reliable Low-Voltage 2D FeFETs

The escalating demand for energy-efficient edge inference in artificial intelligence has intensified the search for hardware that transcends the von Neumann bottleneck. Ferroelectric field-effect transistors (FeFETs) are promising due to their non-destructive readout, low programming energy, and multilevel operation. However, integrating ultrathin ferroelectrics with two-dimensional (2D) channels remains challenging due to the inert surfaces of 2D materials, which impede uniform film growth. Moreover, conventional ferroelectrics like doped hafnia and AlScN suffer performance degradation at thicknesses required for sub-1V operation. The interface between ferroelectric and 2D semiconductor is often plagued by traps and parasitic layers, causing threshold drift and fatigue. In a recent Science report, Hailin Peng and colleagues present an innovative solution: a native ferroelectric buffer derived from the semiconductor itself. By oxidizing layered Bi2O2Se below 400°C, they produce wafer-scale α-Bi2SeO5, a van der Waals ferroelectric oxide. This material retains robust ferroelectricity down to the monolayer limit, supporting both out-of-plane and in-plane polarization switching. It exhibits a high relative dielectric constant (~24) and a Curie temperature near 880 K. The in-situ oxidation approach enables precise thickness control, yielding a uniform, switchable, and robust gate stack for 2D FeFETs, addressing the critical challenges of voltage scaling and interface quality.

Read Full Abstract10.1007/s40843-026-4215-3
A Critical Artifact in Aqueous Zinc-Ion Batteries: Charging under Aerial Oxidation Distorts Discharged-Cathode CharacterizationGraphical AbstractVerified
SCIENCE CHINA Materials2026

A Critical Artifact in Aqueous Zinc-Ion Batteries: Charging under Aerial Oxidation Distorts Discharged-Cathode Characterization

Aqueous zinc-ion batteries (AZIBs) are promising for safe, low-cost energy storage, but accurate cathode characterization is essential for understanding their electrochemical behavior. This study identifies a critical artifact: routine air-drying of deeply discharged cathodes triggers spontaneous aerial oxidation, which distorts post-mortem analysis. Using NH4V4O10 (NVO) as a model cathode, we show that ex situ X-ray photoelectron spectroscopy (XPS) of discharged electrodes reveals only V4+/V5+ signals, with no detectable V3+, implying a theoretical capacity of only 245.5 mAh g−1, yet experimentally measured capacity reaches ~334.5 mAh g−1 at 0.2 A g−1. This discrepancy arises because air exposure during sample preparation oxidizes the reduced vanadium states, leading to a self-charging effect that recovers ~83% of capacity. Electrochemical re-oxidation (EO-NVO) is superior to aerial oxidation (AO-NVO), producing a stable, long-range ordered bulk structure with efficient Zn2+ transport channels, whereas aerial oxidation induces only superficial changes and structural disorder. These findings resolve a key analytical inconsistency and reveal a novel capacity-contribution pathway, with direct implications for accurate material assessment and advanced battery design.

Read Full Abstract10.1007/s40843-026-4196-x
Atomic proximity-controlled Pd-Ti bifunctional catalyst for the sustainable direct ammoximation of cyclohexanone in waterGraphical AbstractVerified
SCIENCE CHINA Materials2026

Atomic proximity-controlled Pd-Ti bifunctional catalyst for the sustainable direct ammoximation of cyclohexanone in water

The industrial production of ε-caprolactam, the essential precursor for nylon-6, is a cornerstone of the modern polymer industry. Historically, this process evolved from energy-intensive non-catalytic routes to the more atom-economical ammoximation of cyclohexanone over titanosilicate catalysts using H2O2 as a green oxidant. Despite this progress, the reliance on concentrated H2O2 presents a significant sustainability bottleneck, as its commercial production via the anthraquinone process is energy-intensive, waste-prone, and involves hazardous transportation. A more sustainable ideal reaction involves the direct use of H2 and O2 to generate active oxygen species in situ. However, implementing this bifunctional route has long been thwarted by high noble metal loadings, poor H2 efficiency due to the rapid decomposition of intermediate H2O2, and the inherent instability of catalysts in the alkaline aqueous media required for ammoximation. In the January 2026 issue of Nature Catalysis, Wu and colleagues report a breakthrough by engineering a titanium-mordenite-confined, low-loaded Pd catalyst (0.055 wt% Pd@A-Ti-MOR-R) that achieves exceptional efficiency and industrial-grade longevity for direct ammoximation in water. The researchers proposed a “structured” solution to spatial confinement by utilizing an acid-treated Ti-MOR (A-Ti-MOR) featuring specific Ti-OH defect sites adjacent to silanol nests. These defects act as precise anchors to stabilize subnanometric Pd2 clusters, ensuring that the Pd and Ti active sites remain in “atomic proximity” within the 8-ring side pockets of the zeolite. This atomic-level configuration was rigorously verified using spherical-aberration-corrected annular dark field scanning transmission electron microscopy (ADF-STEM), which identifies bright contrasts from subnanometric Pd clusters with diameters below 0.5 nm near the framework pores. Furthermore, Pd K-edge extended X-ray-absorption fine-structure (EXAFS) analysis confirms the formation of Pd–O–Ti bridges through the identification of a specific scattering path at 3.67 Å, proving that the Pd clusters are chemically bonded to the framework Ti sites.

Read Full Abstract10.1007/s40843-026-4184-6
Simplified model for the melting point of oxidesGraphical AbstractVerified
SCIENCE CHINA Materials2026

Simplified model for the melting point of oxides

The development of ultrahigh-temperature technologies, such as nuclear reactors, rocket nozzles, scramjet propulsion systems, and hypersonic vehicles, demands materials with melting points (Tm) exceeding 3273 K. However, the highest reported Tm among non-radioactive oxides is 3125 K (MgO), limiting progress. Existing predictive models for oxide Tm suffer from a trade-off between physical insight and practical utility: thermodynamic approaches require complex calculations, Lindemann's criterion relies on elusive parameters like Debye temperature, and semi-empirical correlations lack transferability. Machine learning models offer predictive power but lack interpretability and reliable extrapolation. Here, we simplify a previously derived semi-empirical model based on bond-breaking probability, which links Tm to effective potential barrier Ueff, proportional to bond length (d), bond density (Nb), and bond ionicity (fi). By analyzing a dataset of 68 oxides, we establish a simplified linear relationship between Tm and Ueff, expressed as Tm = 0.052Ueff + 122.6 K, with Ueff in kJ/mol. This model achieves a mean absolute error of 76 K and a coefficient of determination (R²) of 0.97, outperforming existing empirical models. The model's physical transparency and simplicity enable rapid screening of novel oxides, guiding the design of materials with Tm exceeding 3273 K. Our findings provide a practical tool for accelerating the discovery of ultrahigh-temperature oxides, addressing a critical bottleneck in next-generation thermal protection systems.

Read Full Abstract10.1007/s40843-026-4186-7
Synergistic regulation of bottom-up sodium deposition via sodiophilicity and electric field dual gradients for long-cycle sodium metal batteriesGraphical AbstractVerified
SCIENCE CHINA Materials2026

Synergistic regulation of bottom-up sodium deposition via sodiophilicity and electric field dual gradients for long-cycle sodium metal batteries

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.

Read Full Abstract10.1007/s40843-026-4188-x
A new strategy for buried 2D/3D heterojunctions in perovskite solar cellsGraphical AbstractVerified
SCIENCE CHINA Materials2026

A new strategy for buried 2D/3D heterojunctions in perovskite solar cells

Metal halide perovskite solar cells (PSCs) are promising as high-efficiency, low-cost photovoltaics; however, their efficiency and stability are often compromised by high defect densities at grain boundaries and interfaces. To mitigate these issues, long-chain ammonium salts are introduced to the surface of three-dimensional (3D) perovskites to construct 2D/3D heterostructures, enabling effective chemical and field-effect passivation. Previous studies have mainly integrated 2D/3D heterostructures into the perovskite bulk or at its upper surface to improve device performance. Nevertheless, 2D/3D perovskite engineering at the buried interface remains challenging, because the pre-deposited 2D perovskite layer would be dissolved during subsequent 3D perovskite processing, while 2D perovskites introduced as additives are also difficult to selectively assemble at the buried interface. Moreover, achieving controllable 2D/3D perovskite heterojunction at the buried interface with well-defined dimensionality, orientation, and energy-level alignment has become a key challenge, and related studies remain scarce. Previous ligand-based methods for constructing buried 2D/3D heterojunctions suffer from weak interfacial interactions, leading to undesirable ligand diffusion into the 3D perovskite bulk and non-uniform distribution at the interface. Recently, Jen et al. constructed localized 2D/3D perovskite heterojunctions at the buried interface by leveraging the Lewis acid-base interaction between the –NH3+ group of the oleylammonium iodide (OAmI) ligand and a sulfur-functionalized self-assembled monolayer (SAM). The rationally designed SAMs featuring Lewis-basic sulfur atoms (CbzBT-B) are able to anchor the ligands and thereby facilitate the growth of localized 2D perovskite phases. Besides, De Wolf et al. added 4-hydroxybenzylamine (HBzA) into the 2PACz solution, where an acid-base reaction between the HBzA amine and the phosphonic acid group (–PO(OH)2) of 2PACz forms a robust ionic bond. This interaction improves HBzA anchoring on the ITO surface and facilitates the formation of a 2D/3D heterojunction at the buried perovskite interface. However, the intrinsic packing density and uniformity of SAMs limit ligand anchoring and the subsequent growth of 2D perovskites. Therefore, achieving a well-defined buried 2D/3D heterojunction requires tightly confining ligands to the charge-selective contact, particularly for scalable PSCs. In the recent work by Wang et al., an in situ solid-state ligand-exchange strategy is proposed to form a 2D perovskite layer exclusively at the SnO2/perovskite interface, without introducing undesired 2D-phase contamination into the 3D perovskite bulk. Owing to the binding affinity between the –SH and SnO2, thioglycolic acid (TGA) is first introduced during the synthesis of SnO2 nanoparticles to obtain TGA-capped SnO2 nanoparticles, thereby enhancing the adhesion of alkylamine molecules on the SnO2 surface. Subsequently, various alkylamines were anchored onto the SnO2-TGA nanoparticles via an acid-base reaction between the –NH2 and –COOH groups. Therefore, OAm is immobilized on the SnO2 surface through ionic bonding with TGA. During the subsequent thermal annealing of perovskite, ion exchange occurs between OAm-TGA and FAI, leading to the formation of 2D/3D perovskite heterojunctions. In situ photoluminescence (PL) spectroscopy is employed to elucidate the crystallization kinetics of perovskite films on the SnO2-TGA-OAm substrate. At the initial stage of ethyl acetate antisolvent dripping, both the control and target samples exhibit a rapid increase in PL intensity. In the subsequent period, however, the target sample undergoes a prolonged stage of continuous PL increase, whereas the control shows persistent PL decay, indicating that the SnO2-TGA-OAm substrate effectively modulates the crystallization process, promoting the formation of high-quality perovskite films with reduced defects.

Read Full Abstract10.1007/s40843-026-4137-3
Flexible 'fiber chip': integrating high-density integrated circuits into an elastic polymer fiberGraphical AbstractVerified
SCIENCE CHINA Materials2026

Flexible 'fiber chip': integrating high-density integrated circuits into an elastic polymer fiber

Fiber electronics have evolved from passive conduits to active devices with sensing, powering, and display functions, yet their computational capabilities remain constrained by reliance on external rigid chips. This highlight reviews a recent breakthrough by Wang et al. that integrates high-density integrated circuits directly into elastic polymer fibers, achieving a multilayered spiral architecture with an unprecedented integration density of 100,000 transistors per centimeter. The fabrication process employs a highly flat polymer substrate with parylene encapsulation, a polydimethylsiloxane (PDMS) interlayer with modulus-gradient heterostructure, and adhesive interlayers with thickened edges to ensure mechanical robustness and uniformity. The resulting fiber-integrated circuits (FICs) demonstrate versatile computing functions, including digital logic gates (NOR, NAND, XOR, RS latches) and analog circuits (amplifiers, waveform generators). By incorporating organic electrochemical transistors (OECTs), the FICs achieve neural-style computing with 99.8% accuracy on the Olivetti Research Laboratory database. Notably, the FICs withstand 100,000 cycles of abrasion and 1-mm bending, indicating exceptional mechanical durability. This work addresses the critical bottleneck of integrating dense microdevice arrays into soft, cylindrical fibers, paving the way for truly intelligent and interactive fiber systems suitable for wearable and biomedical applications.

Read Full Abstract10.1007/s40843-026-4050-2