Area of research
Renewable Energy, Sustainability and the Environment · Electrical and Electronic Engineering
Research interest
Research interests include Materials science, Catalysis, Electrocatalyst, Oxygen evolution, Overpotential, and Bifunctional.
Correlating Single‐Atomic Ruthenium Interdistance with Long‐Range Interaction Boosts Hydrogen Evolution Reaction Kinetics
Nurturing the marriages of single atoms with atomic clusters and nanoparticles for better heterogeneous electrocatalysis
Swapping Catalytic Active Sites from Cationic Ni to Anionic S in Nickel Sulfide Enables More Efficient Alkaline Hydrogen Generation
Nanoframes of Co<sub>3</sub>O<sub>4</sub>–Mo<sub>2</sub>N Heterointerfaces Enable High‐Performance Bifunctionality toward Both Electrocatalytic HER and OER
Synergizing aliovalent doping and interface in heterostructured NiV nitride@oxyhydroxide core-shell nanosheet arrays enables efficient oxygen evolution
Transition‐Metal Phosphides: Activity Origin, Energy‐Related Electrocatalysis Applications, and Synthetic Strategies
Synergizing in-grown Ni3N/Ni heterostructured core and ultrathin Ni3N surface shell enables self-adaptive surface reconfiguration and efficient oxygen evolution reaction
Surface nitridation of nickel-cobalt alloy nanocactoids raises the performance of water oxidation and splitting
Ultra-thin N-doped-graphene encapsulated Ni nanoparticles coupled with MoO<sub>2</sub> nanosheets for highly efficient water splitting at large current density
P–Fe bond oxygen reduction catalysts toward high-efficiency metal–air batteries and fuel cells
Rational Design of Holey 2D Nonlayered Transition Metal Carbide/Nitride Heterostructure Nanosheets for Highly Efficient Water Oxidation
Cage-confinement pyrolysis route to size-controlled molybdenum-based oxygen electrode catalysts: From isolated atoms to clusters and nanoparticles
Twinned Tungsten Carbonitride Nanocrystals Boost Hydrogen Evolution Activity and Stability
Defect and pyridinic nitrogen engineering of carbon-based metal-free nanomaterial toward oxygen reduction
Ultrafine Molybdenum Carbide Nanocrystals Confined in Carbon Foams via a Colloid‐Confinement Route for Efficient Hydrogen Production