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LY
Verified CAS / Academic Author15 Decoded Studies

Prof. Lufeng Yang

Soochow University

Co-Affiliations:University of Science and Technology of China (inferred from the author's affiliation, not explicitly stated in text)Not explicitly stated; likely Chinese Academy of Sciences or universityCAS Key Laboratory of Nanosystem and Hierarchical Fabrication, National Center for Nanoscience and TechnologySchool of Municipal and Environmental Engineering, Shenyang Jianzhu UniversityXiamen University

Research Publications & English Decoded Briefs

Showing 15 publications
SCIENCE CHINA Materials2026DOI: 10.1007/s40843-026-4405-9

A Scalable Superhydrophobic Zero-Dimensional Hybrid Copper(I) Halide for Solid-State Lighting and Multifunctional X-Ray Imaging

Conventional metal-halide X-ray scintillators, including Bi4Ge3O12 (BGO), Cs(Na)I:Tl, and Lu1.8Y0.2SiO5:Ce (LYSO), suffer from hygroscopic decomposition, high-temperature fabrication, and mechanical rigidity, which restrict their deployment in harsh-environment radiography. This study reports a nontoxic zero-dimensional organic–inorganic hybrid copper(I) halide, Cu2I2(C26H36NP)2 (Compound G), synthesized via a room-temperature solution route. The bulky phosphine ligands confer exceptional superhydrophobicity, with the material retaining 91.95% of its initial luminescence after 30 days of water immersion. A flexible scintillator screen fabricated from styrene-ethylene-butene-styrene (SEBS) exhibits a light yield of ~32,500 photons MeV-1, a spatial resolution of 19.14 lp mm-1, and a detection limit of 0.8 μGyair s-1. The screen enables stable X-ray imaging under flexible, high-temperature, and underwater conditions, eliminating vignetting and distortion in nonplanar objects. These metrics demonstrate that the superhydrophobic copper(I) halide scintillator addresses the water-stability bottleneck of commercial scintillators while delivering competitive light output and resolution, offering a viable pathway for medical diagnosis, nondestructive inspection, security checking, and space exploration.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-026-4237-x

Advances in Silicon Anodes for Solid-State Batteries: From the Particle 'Size Effect' Perspective

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 Materials2026DOI: 10.1007/s40843-026-4151-2

Machine Learning for Ionic Liquids in CO2 Conversion: Advances, Challenges, and Perspectives

The rapid increase in atmospheric CO2 due to fossil-fuel consumption has heightened the demand for efficient carbon capture and utilization technologies. Ionic liquids (ILs) have emerged as versatile media and catalysts for CO2 conversion, offering advantages such as negligible volatility, wide electrochemical windows, and strong CO2 affinity. However, the vast design space of ILs and limited experimental data make traditional trial-and-error screening inefficient. This review summarizes recent advancements in applying machine learning (ML) to the design and screening of ILs for CO2 conversion. The roles of ILs in catalytic processes and the limitations of traditional screening methods are discussed. ML-based workflows are explored, with emphasis on addressing challenges posed by small and noisy datasets. Finally, future opportunities in mechanism-informed descriptors, multi-objective optimization, and the integration of domain expertise with data-driven approaches are highlighted to accelerate the discovery of next-generation ILs for sustainable CO2 conversion.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-025-3658-1

Facile Synthesis of Efficient Blue-Light-Emitting Copper(I) Halide Hybrid Phosphors for Applications in pc-WLEDs and X-ray Imaging

Organic-inorganic hybrid copper(I) halide semiconductors have attracted extensive attention for applications in phosphor-converted white light-emitting diodes (pc-WLEDs), X-ray imaging, and photodetectors because of their superior photo/radioluminescence, structural diversity, and eco-friendliness. In previous work, a strategy combining coordinated anionic inorganic modules with cationic derivatives yielded highly efficient blue-emitting hybrids, but synthesis complexity limited practical use. Here, we report a facile, efficient, and rapid solution-based ultrasonic treatment method for synthesizing high-performance blue-emitting phosphors using inexpensive, commercially available tetraethylammonium halides (TEAX, X = Cl, Br, I). The synergistic interplay of ionic and covalent bonds in these compounds endows them with a high photoluminescence quantum yield (PLQY) of 70% and excellent stability. These materials exhibit thermally activated delayed fluorescence (TADF), delivering outstanding performance in pc-WLEDs and X-ray imaging. Their exceptional properties highlight significant potential for use in optoelectronic devices and X-ray scintillators. This work provides an important reference for rapid synthesis of high-performance copper(I) halide hybrid phosphors and paves the way for commercial application.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-025-3695-8

Cycling Decay Mechanism and Accelerated Aging Model of Sulfur-Based Lithium-Ion Batteries

Sulfur-based lithium-ion batteries, particularly those employing sulfurized poly(acrylonitrile) (SPAN) cathodes and graphite (Gr) anodes, offer high theoretical capacity and low cost but suffer from temperature-dependent capacity decay. This study systematically investigates the electrochemical dynamics and capacity decay mechanism of SPAN||Gr pouch cells cycled at 25–55 °C. Multiscale analyses reveal that capacity fade arises from active lithium loss and increased resistance, both accelerated by higher temperatures. Active lithium loss is primarily attributed to dead lithium formation and thickening of the solid electrolyte interphase (SEI) and cathode electrolyte interphase (CEI), while resistance increase is predominantly due to SEI/CEI thickening. As temperature rises, active lithium loss becomes the dominant decay factor. Leveraging the consistent decay mechanism across temperatures, an accelerated aging model based on the Arrhenius equation is developed: y = 0.9x + a. This model accurately predicts cycling parameters at specific temperatures and reduces testing time by 50% when extrapolating from 55 °C to 25 °C. These insights provide critical guidance for developing long-life sulfur-based batteries for practical energy storage applications.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-025-3636-9

Efficient Perovskite Solar Cells Enabled by Co-Depositable p-Type Small Molecules

Metal halide perovskites have significantly improved solar cell performance due to their excellent optoelectronic properties. Recently, p-type small molecules such as Me-4PACz, assisted by dual-functional passivation, have enabled perovskite solar cells (PSCs) to achieve certified power conversion efficiencies (PCEs) up to 26.15%. However, issues such as molecular aggregation during solution processing limit the storage stability of precursor solutions and lead to poor molecular distribution within the film, hindering device efficiency and operational stability. Zhu's group enacted the co-deposition of a new p-type small molecule, D4PA, with perovskite. Density functional theory (DFT) investigations revealed that D4PA exhibits strong dual-terminal anchoring interactions with indium tin oxide (ITO) via two phosphonic acid groups, stabilized by intramolecular hydrogen bonding, ensuring robust adhesion and improved interface uniformity. Additionally, D4PA forms stable coordination with Pb2+ ions, suppressing defects and facilitating efficient charge transfer. Temperature-dependent Fourier-transform infrared (FTIR) spectroscopy confirmed strong binding between D4PA and perovskite, contrasting with the weaker binding of Me-4PACz. This stable interaction improves perovskite crystallinity and promotes uniform distribution of D4PA, resulting in superior photovoltaic performance. D4PA-based PSCs achieved a record PCE of 26.83% in small-area devices (certified 26.72%), and a mini-module (10.86 cm2) achieved a PCE of 23.37% with a certified MPPT efficiency of 22.66%. Devices retained 97.2% of initial efficiency after 2500 h of continuous operation at MPP under one-sun illumination. Reduced and homogeneous photoluminescence intensity indicated efficient and uniform hole extraction, and electroluminescence quantum efficiency (EQE-EL) reached 15.25%, significantly higher than 6.23% for Me-4PACz-based devices. This molecular engineering strategy provides a promising route for high-performance and high-durability inverted PSCs.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-025-3781-8

Simultaneous enhancement of mechanical and fatigue properties in 2xxx aluminum alloys via microstructural uniformity induced by cyclic plasticity

The 2xxx (Al-Cu-Mg) alloy is widely used in transportation fields due to its excellent strength-to-weight ratio. However, conventional heat treatments such as peak aging (PA) often result in a pronounced strength-ductility trade-off and limited fatigue resistance. To address these limitations, this work presents a comprehensive study on the mechanical properties and fatigue behavior of Al-Cu-Mg alloy subjected to a cyclic plasticity treatment. The cyclic strengthened (CS) samples exhibit a well-balanced combination of strength and ductility due to the formation of nanoscale solute clusters. A systematic and quantitative analysis of the strengthening mechanisms is performed to evaluate the contributions of key microstructural features to the mechanical response. Moreover, the CS samples also demonstrate a significantly higher fatigue ratio and fatigue strength compared to the PA sample, despite exhibiting comparable tensile strength. These improvements are attributed to the absence of weak precipitate-free zones (PFZs) induced as a result of cyclic plasticity, which completely eliminates the pronounced strength differential between the grain interiors and the PFZs observed in the PA state. This microstructural uniformity effect effectively suppresses strain localization under cyclic loading, promotes a more homogeneous strain partitioning, and consequently delays fatigue crack initiation. These findings highlight cyclic plasticity treatment as a promising microstructure design strategy for simultaneously enhancing the mechanical and fatigue properties of high-strength Al alloys.

New Carbon Materials2026DOI: 10.1016/S1872-5805(26)61106-7

Stabilization of Sulfur Species in Coal-Derived Hard Carbon via Micropore Confinement and Chemical Bonding for Enhanced Sodium Storage

Hard carbon anodes for sodium-ion batteries suffer from limited capacity, low initial Coulombic efficiency, and poor long-term cycling stability. To address these issues, we report a dual-stabilization strategy that combines micropore confinement and chemical bonding to control sulfur species in coal-derived hard carbon. Bituminous coal, with its naturally condensed aromatic framework, serves as the carbon precursor. A two-step thermal process first constructs a microporous carbon framework, followed by gas-phase sulfidation to introduce sulfur. The sulfur is confined within micropores and forms stable covalent C–S bonds with the carbon matrix, providing synergistic physical–chemical stabilization. This suppresses sulfur migration, prevents interfacial side reactions, and introduces additional redox-active sites. The optimized sample (HC-10) delivers a high reversible capacity of 450 mAh/g after 800 cycles at a current density of 1 A/g, with excellent rate capability and cycling stability. Mechanistic analysis reveals that the stabilized sulfur species reversibly participate in sodium-ion storage and improve interfacial kinetics. This work provides an effective strategy for stabilizing sulfur in coal-derived carbon materials and offers insights into the design of high-performance anodes for sodium-ion batteries.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-025-3850-3

Circularly polarized light activated chiral molybdenum-doped carbon dots for spatiotemporally synergistic antibacterial strategy

Chiral nanomaterials have attracted considerable attention for antibacterial applications due to their unique chiroptical properties. Here, we report a novel spatiotemporally precise synergistic photodynamic therapy (PDT) and photothermal therapy (PTT) strategy using circularly polarized light (CPL)-activated chiral molybdenum-doped carbon dots (L-Mo-CDs and D-Mo-CDs). These chiral carbon dots were synthesized using chiral tartaric acid as a precursor. Notably, D-Mo-CDs selectively respond to left-handed CPL (LCP), while L-Mo-CDs respond to right-handed CPL (RCP). Under CPL irradiation, D-Mo-CDs exhibit enhanced reactive oxygen species (ROS) generation and a higher photothermal conversion efficiency (PCE) compared to L-Mo-CDs. In vitro antibacterial assays demonstrate that D-Mo-CDs possess excellent bactericidal efficacy against both Gram-positive and Gram-negative bacteria. In vivo wound healing studies in a mouse model reveal remarkable therapeutic efficacy, attributed to reduced inflammation, accelerated angiogenesis, and enhanced collagen deposition. This work introduces a paradigm for utilizing chiral carbon dots in precision antibacterial therapy, addressing the limitations of conventional chiral nanomaterials such as poor biocompatibility and low photothermal conversion. The findings underscore the potential of metal-doped chiral carbon dots for advanced biomedical applications, offering a spatiotemporally controllable approach to combat bacterial infections without promoting resistance.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-025-3879-5

Single-Stimulus Modulation of Multimodal Circularly Polarized Luminescence in Helical Ferroelectric Liquid Crystals

Stimuli-responsive circularly polarized luminescence (CPL) materials are pivotal for investigating excited-state chirality and advancing optoelectronic applications. However, achieving comprehensive modulation of chiroptical properties within a single system under a single external stimulus remains a significant challenge. Here, electric-field-responsive helical ferroelectric liquid crystals are developed by incorporating diverse chiral emitter dopants into the prototypical liquid crystal mesogen 2,3′,4′,5′-tetrafluoro-[1,1′-biphenyl]-4-yl 2,6-difluoro-4-(5-propyl-1,3-dioxan-2-yl)benzoate (DIO), known for its high dielectric anisotropy and multiple mesophases. By co-doping different types of chiral molecules with opposite handedness, a competitive chiral field is generated that responds differentially to the applied voltage, enabling continuous modulation of the helical pitch and reversible inversion of handedness. This work provides the integrated demonstration of single-stimulus regulation of on/off gating, magnitude tuning, and reversible sign inversion in a single liquid-crystal system, opening a pathway toward intelligent chiroptical materials.

Chinese Journal of Environmental Engineering2026DOI: 10.12030/j.cjee.202511003

Research Progress on Combined Stress Effects of Secondary Water Pollution from Tailings Dam Leakage on Aquatic Organisms

Tailings dam leakage can cause secondary sudden water pollution events, imposing severe combined stress of high turbidity and heavy metal contamination on natural water bodies within a short period, threatening aquatic ecological security. Existing studies have systematically revealed the pollution characteristics and biological effects of such events, which are fundamentally distinct from natural high-turbidity water and industrial wastewater leakage. Compared with natural high-turbidity water, tailings leakage inputs finer particles with higher specific surface area, leading to more intense and prolonged turbidity stress. Meanwhile, heavy metals in tailings are more enriched than natural sediments, with higher proportions of active forms and bioavailability, causing significant bioaccumulation and toxic effects, and long-term decline in benthic community species richness. Compared with industrial wastewater leakage, tailings leakage simultaneously releases high concentrations of fine suspended solids and multiple heavy metals, forming a unique 'physical-chemical' combined stress. This synergistic effect amplifies biological toxicity through multiple pathways such as mechanical damage, light limitation, and oxidative stress, resulting in severe and often irreversible ecological damage, such as impaired fish swimming behavior and collapse of benthic community structure. Analyzing the long-term impacts of tailings leakage on aquatic ecosystems from the perspective of combined stress is helpful for providing scientific basis for emergency response and medium-to-long-term ecological risk prevention of related sudden water pollution events.

Chinese Journal of Environmental Engineering2026DOI: 10.12030/j.cjee.202505104

Synergistic Remediation of Aged Oil-Contaminated Soil by Plants and Degrading Microbial Consortium

This study investigated the synergistic remediation of aged oil-contaminated soil collected from an oil well in Yanchang, northern Shaanxi, China, with an initial total petroleum hydrocarbon (TPH) concentration of 17.1 g·kg⁻¹, exceeding the second-class land use screening value (4,500 mg·kg⁻¹) by approximately 3.8-fold. Indigenous high-efficiency degrading strains were screened and a microbial consortium was constructed. Pot experiments were conducted to compare the TPH degradation efficiencies and soil property changes under plant, microbial, and combined plant-microbial remediation. The consortium MC-5 (SDB1:SDB2:SDB3:SDB4 = 1:1:0:3) exhibited the highest TPH degradation rate of 83.46% in liquid culture. In soil, combined remediation with ryegrass (Lolium perenne) achieved a TPH degradation rate of 60.93%, significantly higher than the control (CK) by 54.26 percentage points. The consortium also degraded recalcitrant resins and asphaltenes by 49.44%. The microbial consortium played a dominant role, contributing 63%–69% to TPH removal, whereas plant contribution was only 2%–12%, primarily in the later stage. Addition of rhamnolipid biosurfactant enhanced the combined remediation, increasing TPH degradation by 7.05 percentage points compared to non-amended treatments. These findings provide insights into the mechanisms of plant-microbial synergy and offer theoretical and practical guidance for bioremediation of petroleum-contaminated soils.

Journal of Environmental Engineering Technology2026DOI: 10.13205/j.hjgc.202607023

Effects of Municipal Sludge Application on Composition and Microbial Communities of Mine Waste Rock Soil

The rapid population growth and accelerating urban development have made the comprehensive utilization of municipal sludge (MS) an urgent challenge. MS contains substantial organic matter and essential nutrients for crop growth, making it a promising soil amendment for the ecological restoration of mine waste rock. However, research evaluating the impact of MS application on soil health and ecological safety from a soil microbiology perspective remains understudied. Therefore, this study investigated the effects of MS and composted municipal sludge (CMS) on the ecological restoration of mine waste rock soil through pot experiments. High-throughput sequencing technology was employed to analyze changes in soil microbial community structure and diversity. Finally, network analysis and correlation heatmaps were utilized to elucidate the microbial driving mechanisms. The results indicated that after MS and CMS application, organic matter content increased from 20.38 g/kg (Level 3) to 38.52 g/kg (Level 2). The levels of available nitrogen, phosphorus, and potassium rose from Level 4, 6, 2, to Level 1, 4, 1, respectively. Fresh weight, aboveground height, root length, and stem diameter of ryegrass all increased significantly. Venn diagram and heatmap analyses indicated that lower application rates (<1.5 kg/m²) enhanced microbial community richness and diversity. This study confirms municipal sludge as an effective amendment for mine waste rock soil. It is recommended to limit application rates below 1.5 kg/m² in practical mine ecological restoration projects, with particular attention to long-term dynamics of heavy metals and salinity to ensure safe and sustainable land reuse.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-025-4079-4

Promoting cycling and thermal stability of ultrahigh-nickel oxide cathodes with well-controlled microstructure and stiffness

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 Materials2026DOI: 10.1007/s40843-025-4059-3

Kinetic separation of hydrogen isotopes over lignin-rich biomass-derived carbon molecular sieves

Deuterium (D2) is indispensable for isotope tracing, neutron scattering, and fusion reactions, yet its separation from hydrogen (H2) remains challenging due to their nearly identical physicochemical properties. Adsorptive separation exploiting the kinetic quantum sieving (KQS) effect at cryogenic temperatures offers a promising route, but demands precise pore engineering. Here, we report a biomass-derived carbon molecular sieve that permits rapid D2 transport while imposing a significant diffusion barrier for H2, enabling effective separation from D2/H2 mixtures. The molecular sieving micropores are generated by transforming cellulose components into slit-type carbon micropores, with lignin acting as a pore-size modifier. At 77 K, the diffusion rate of D2 is 1.8 times that of H2, leading to a D2 concentration in the recovered gas approximately 10% higher than that achieved with conventional microporous carbons. Aspen adsorption simulations demonstrate that D2 can be enriched to 90.1% from a 1.0% D2/H2 mixture within 12 successive cycles following a two-bed cryogenic pressure swing adsorption process. These findings advance the development of effective adsorbents for kinetic D2/H2 separation, offering a sustainable, low-cost route to deuterium enrichment.