Area of research
Electrical and Electronic Engineering · Materials Chemistry
Research interest
Research interests include Advancements in Battery Materials, Advanced Thermoelectric Materials and Devices, Advanced Battery Materials and Technologies, and Electrocatalysts for Energy Conversion.
Tantalum-stabilized ruthenium oxide electrocatalysts for industrial water electrolysis
Transition metal vacancy and position engineering enables reversible anionic redox reaction for sodium storage
Molecular crystal memristors
Local structural origin of relaxor antiferroelectric behavior in NaNbO3-based ceramics
Current induced electromechanical strain in thin antipolar Ag2Se semiconductor
Research on Phenolic Content and Its Antioxidant Activities in Fermented Rosa rugosa ‘Dianhong’ Petals with Brown Sugar
Correlating Single‐Atomic Ruthenium Interdistance with Long‐Range Interaction Boosts Hydrogen Evolution Reaction Kinetics
Ultrahigh Energy Density of Antiferroelectric PbZrO<sub>3</sub>‐Based Films at Low Electric Field
Confined Ultrafine Pt in Porous Carbon Fibers and Their N-Enhanced Heavy d-π Effect
Ferroelectric engineering: Enhanced thermoelectric performance by local structural heterogeneity
The mechanism for the enhanced piezoelectricity in multi-elements doped (K,Na)NbO3 ceramics
Hierarchically Fractal PtPdCu Sponges and their Directed Mass- and Electron-Transfer Effects
Temperature-insensitive PMN-PZ-PT ferroelectric ceramics for actuator applications
Efficient carboxylation of styrene and carbon dioxide by single-atomic copper electrocatalyst
Titanium Vacancies in TiO<sub>2</sub> Nanofibers Enable Highly Efficient Photodriven Seawater Splitting
Inkjet Printing of Perovskite Nanosheets for Microcapacitors
Complete Reconstruction of Hydrate Pre-Catalysts for Ultrastable Water Electrolysis in Industrial-Concentration Alkali Media
Two-dimensional copper nanosheets for electrochemical reduction of carbon monoxide to acetate
Cu-Substituted NiF<sub>2</sub> as a Cathode Material for Li-Ion Batteries
Nickel Cobalt Hydroxide @Reduced Graphene Oxide Hybrid Nanolayers for High Performance Asymmetric Supercapacitors with Remarkable Cycling Stability
Oxygen-Rich Hierarchical Porous Carbon Derived from Artemia Cyst Shells with Superior Electrochemical Performance