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Verified CAS / Academic Author8 Decoded Studies

Prof. GUO Hong

Jiangnan University

Co-Affiliations:Xinjiang College of Science & Technology, Korla 841000, China; Hohai University, Nanjing 210098, China

Research Publications & English Decoded Briefs

Showing 8 publications
SCIENCE CHINA Materials2026DOI: 10.1007/s40843-026-4285-2

UV-assisted coaxial DIW 3D printing: a strategy for fabricating environmentally adaptive ionic hydrogel sensors

Ionic conductive hydrogels have gained extensive attention in the field of intelligent sensing due to their good flexibility, tunable electrical conductivity, and multi-stimuli responsiveness. However, hydrogels easily freeze, dehydrate or swell in external environments, and thus losing their original structure and functions. Therefore, improving the environmental adaptability of conductive hydrogels remains a challenge. Herein, ionic hydrogels were encapsulated in real time via UV-assisted multi-material coaxial direct ink writing (DIW) 3D printing, and ionic conductive hydrogel sensors with array structures were prepared. The core ionic conductive hydrogel is isolated from the external environment by the hydrophobic photocurable polydimethylsiloxane (PDMS) shell resin. The PDMS shell resin isolates the core hydrogel from moisture and heat in the external environment, thereby significantly enhancing the sensor’s stability. After 60 days of storage at 25 °C, the 3D-printed coaxial array sensor exhibits only 2.5% mass loss; when stored underwater for 60 days, its swelling rate is merely 1.5%. This sensor exhibits high strain sensitivity with a gauge factor (GF) up to 1.705 and good cyclic stability, demonstrates stable operation over a wide temperature range of -20°C to 120°C, and can withstand underwater and solvent environments. It has been successfully applied in various scenarios such as human motion monitoring, underwater sensing, and temperature sensing. This research breaks through the environmental limitations of conventional hydrogel sensors and provides a simple, efficient method for developing flexible sensors with high environmental adaptability.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-026-4463-3

TMPU-Based Phase-Locking Strategy for Spatiotemporally Homogeneous Crystallization Enables Ambient Scalable Perovskite Photovoltaics

Organic-inorganic hybrid lead halide perovskites exhibit exceptional photovoltaic properties, yet their low crystallization energy promotes defect generation and necessitates precise control over synthesis parameters, hindering scalable fabrication. Ambient large-area coating methods suffer from environmental disturbances, leading to nonuniform crystallization and mixed α/δ phases, resulting in module efficiencies below 20% compared to >27% for lab-scale spin-coated cells. This work introduces a phase-locking strategy using 3-ureidopropyltrimethoxysilane (TMPU) incorporated into the PbI2 precursor solution during two-step blade coating. TMPU undergoes simultaneous cross-linking and interaction with the perovskite intermediate, forming a dynamically evolving intergranular network that blocks moisture and reduces the energy barrier for α-FAPbI3 formation. This approach achieves spatiotemporally homogeneous crystallization, eliminating directional inhomogeneity. Under segmented and monolithic aging protocols, control devices exhibited severe position-dependent degradation with only 34% efficiency retention at early-coated positions after thermal cycling, whereas phase-locked films maintained over 84% of initial photoluminescence intensity across all regions. Encapsulated modules retained over 90% of initial efficiency after 1500 h of 85°C maximum power point tracking (ISOS-L-2) and after 2300 h under 85°C/85% RH damp-heat testing (ISOS-D-3). The TMPU-based strategy combines exceptional performance (21.5% module efficiency) with robust stability, offering a distinct advantage over alternative approaches. This work addresses the kinetic and spatial dimensions of upscaling, demonstrating that morphological uniformity is a fundamental contributor to stability, marking a critical advance toward practical deployment of perovskite photovoltaics.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-025-3744-9

Sodium storage performance and mechanism of a novel amorphous NaFeP2O7/rGO cathode material derived from jarosite residue

The high-value utilization of industrial wastes is critically important for environmental protection and sustainable development. In this work, amorphous NaFeP2O7 (NFPO) and NaFeP2O7/rGO (NFPO/rGO) composite are synthesized via a selective chemical precipitation approach, utilizing industrial jarosite residue as the iron source. The sodium storage performance and mechanism of this amorphous NFPO/rGO composite as a novel cathode material for sodium-ion batteries (SIBs) are explored for the first time. The as-synthesized amorphous NFPO/rGO composite exhibits outstanding long-term cycling performance of 79.1 mAh g−1 after 1000 cycles at 0.1 A g−1, while the crystalline NFPO/rGO composite does not work. Galvanostatic intermittent titration technique and in-situ electrochemical impedance spectroscopy analysis demonstrate that the amorphous NFPO/rGO composite has high Na+ diffusivity and fast kinetics. In-situ X-ray diffraction analysis reveals the structure change from amorphous NaFeP2O7 to triclinic Na2FeP2O7 during the first discharge process and then evolves to a highly disordered structure in the subsequent charge/discharge cycles. The present work not only provides an avenue for the high-value utilization of jarosite residue but also offers theoretical guidance for the structural design and development of NaFeP2O7-based cathode materials for SIBs.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-025-3712-2

Controlling ligand field of Li3VO4 to enhance the electrochemical performance for lithium-ion batteries

Electrochemical potential and ion diffusion of electrode materials restrain the energy and power densities of lithium-ion batteries, and these challenges also remain in the intercalation-type Li3VO4 (LVO). In this work, the local [VO4] coordination symmetry in LVO is broken by a higher concentration of oxygen vacancies (Vö), resulting in an increased average V–O bond length and a larger ligand field splitting. These alterations reduce the energy level of the lowest unoccupied orbitals (e*) and lift the electrochemical potential, resulting in a higher voltage output. Additionally, the broken local symmetry in Vö-LVO is found to reduce the band gap and expand the ion transport channels, which favors enhancing electronic conductivity and facilitates ion diffusion, thereby improving the electrochemical kinetics in the energy storage process. The local symmetry broken sample (Vö-LVO) achieves a significantly improved capacity of 532 mAh/g at 0.1 A/g in comparison with 394 mAh/g of pristine LVO, and long cycling stability with retained capacity of 398 mAh/g at 1 A/g over 500 cycles compared with 236 mAh/g of the pristine LVO. The fundamental understanding paves the way to exploit high-performance electrodes via ligand field engineering for next-generation rechargeable batteries.

Journal of Environmental Engineering Technology2026DOI: 10.13205/j.hjgc.202605022

Research Progress of CO2 Mineralization Using Carbide Slag

Carbide slag (CS), an alkaline industrial solid waste from acetylene production in the chlor-alkali industry, poses severe ecological risks due to long-term stockpiling. This review systematically examines CO2 mineralization pathways and applications of CS, leveraging its high reactivity dominated by Ca(OH)2. Direct gas-solid and liquid-solid carbonation mechanisms, alongside indirect ammonium salt cyclic leaching-carbonation, are elaborated. Process optimization via parameter regulation, amino acid modification, and multi-solid waste coordination significantly enhances reaction efficiency and product performance, enabling controlled synthesis of high-value calcium carbonate. Environmental and economic analyses confirm that CS mineralization achieves CO2 fixation with good economic feasibility, simultaneously addressing solid waste resource utilization and carbon emission reduction. Derived lightweight fillers and low-carbon cementitious materials exhibit both environmental and economic potential, providing theoretical and application support for a 'waste-to-waste' carbon reduction technology system.

Chinese Journal of Environmental Engineering2026DOI: 10.12030/j.cjee.202509047

Simulation and Prediction of Vegetation Carbon Flux under SSP Scenarios in Beijing

To reveal the dynamic characteristics of ecosystem carbon flux and its response to meteorological factors, this study employed the Biome-BGC model to simulate gross primary productivity (GPP) and net primary productivity (NPP) of vegetation in Beijing for historical (2001–2014) and future (2051–2070) periods under SSP126 and SSP585 scenarios, using multi-source data including regional meteorology, vegetation type, and soil texture. The Mann-Kendall (M-K) test and Empirical Orthogonal Function (EOF) analysis were applied to examine spatiotemporal patterns and carbon use efficiency (CUE). Results indicate that Biome-BGC accurately reproduces historical carbon flux characteristics. Temporally, annual mean GPP and NPP exhibited fluctuating upward trends, ranging from 584 to 777 g C m−2 a−1 and 238 to 388 g C m−2 a−1, respectively. Spatially, GPP and NPP displayed both same-phase and opposite-phase distribution patterns. Annual mean temperature was the dominant factor influencing GPP and NPP trends, followed by solar radiation and precipitation. Under future scenarios, both GPP and NPP are projected to increase, with SSP585 showing greater enhancement. By 2070, GPP is expected to rise by 171 and 376 g C m−2 a−1 under SSP126 and SSP585, respectively, while NPP increases by 71.8 and 137 g C m−2 a−1. The spatial distribution of GPP and NPP exhibits a 'low-center, high-periphery' pattern, with multi-year means of 969 and 425 g C m−2 a−1. Future CUE is approximately 0.45, indicating substantial carbon sequestration potential of Beijing's vegetation under climate change.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-025-3824-8

Coupled Ion-Electron Transfer Mechanism in Lithium-Ion Batteries

Lithium-ion batteries (LIBs) are pivotal in portable electronics, electrified transportation, and smart grids, where energy conversion and delivery hinge on the coupled transfer of electrons and lithium ions (Li+). Charge transfer at the electrode-electrolyte interface, involving solvated Li+ interacting with the solid electrode, dictates overpotential—the excess energy required to drive reactions—directly impacting energy loss, voltage fade, and power limitations. Despite decades of research, interfacial kinetics remain incompletely understood, hindering advances in energy density, fast charging, and cycling life. Two classical models—electron transfer (ET) and ion transfer (IT)—have been treated as mutually exclusive. The ET model posits quantum tunneling of electrons as rate-determining, with solvated Li+ residing at the outer Helmholtz plane; activation energy is modulated by overpotential, and current-overpotential behavior follows the Butler-Volmer equation. Marcus-Hush-Chidsey theory extends this to high overpotentials, explaining weak temperature dependence in Tafel curvature. Conversely, the IT model identifies physical desolvation of Li+ as the energy-consuming, rate-limiting step, with desolvation barriers (ΔG_desolv) typically tens of kJ/mol, far exceeding electron tunneling activation energies. Strategies to lower IT barriers include electrolyte design, electric field modulation, electrode surface engineering, and alloying. This paper critically examines both models, proposing a coupled ion-electron transfer mechanism to reconcile discrepancies and guide future interfacial engineering.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-025-3849-5

Functionally Gradient Ductile Solid Electrolyte Interphase for Ultrahigh-Current-Density Solid-State Lithium Metal Batteries

Solid-state lithium metal batteries (SLMBs) are a promising alternative to conventional lithium-ion batteries due to their potential for higher energy density and improved safety. However, the solid electrolyte interphase (SEI) formed at the lithium metal anode/electrolyte interface is often brittle, leading to poor interfacial contact, high impedance, and dendrite growth, which limits cycle life and rate capability. Here, we report a functionally gradient ductile SEI design that incorporates AgF and Ag2S into the SEI layer, creating a composition gradient with a lithiophilic Ag/Ag–Li alloy at the anode surface. This ductile SEI exhibits a low generalized stacking fault energy, as confirmed by density functional theory calculations, and maintains structural integrity even at a bending angle of 150°, unlike brittle SEIs that fracture. The ductile SEI enables a high Li-ion diffusion coefficient of 3.8 × 10−8 cm2 s−1 and low activation energy. Consequently, Li|PALA|Li symmetric cells demonstrate exceptional cyclability over 4500 h at an ultrahigh current density of 15 mA cm−2 and areal capacity of 15 mA h cm−2, and stable operation for over 7000 h at −30 °C under practical conditions (5 mA cm−2, 5 mA h cm−2). Full cells with LiNi0.8Co0.1Mn0.1O2 cathodes show superior rate performance and capacity retention at both 25 °C and −30 °C. The cumulative capacity reaches 33750 mA h cm−2, an order of magnitude higher than previously reported SLMBs. This work underscores that the mechanical properties of the SEI are as critical as its ionic conductivity and chemical stability, opening a new frontier in interface design for practical, high-energy-density, and safe solid-state batteries.