Area of research
Renewable Energy, Sustainability and the Environment · Electrical and Electronic Engineering
Research interest
Research interests include Materials science, Catalysis, Electrocatalyst, Oxygen evolution, Water splitting, and Heterojunction.
Advanced RuO2-based electrocatalysts for oxygen evolution reaction: A perspective from coordination structures
Cobalt Single Atoms Enabling Efficient Methanol Oxidation Reaction on Platinum Anchored on Nitrogen‐Doped Carbon
Toward enhanced alkaline hydrogen electrocatalysis with transition metal-functionalized nitrogen-doped carbon supports
Manipulating the Coordination Chemistry of RuN(O)C Moieties for Fast Alkaline Hydrogen Evolution Kinetics
Non‐Platinum Group Metal Electrocatalysts toward Efficient Hydrogen Oxidation Reaction
Nickel single atom-decorated carbon nanosheets as multifunctional electrocatalyst supports toward efficient alkaline hydrogen evolution
Atomic-Level Modulation of the Interface Chemistry of Platinum–Nickel Oxide toward Enhanced Hydrogen Electrocatalysis Kinetics
An Ir/Ni(OH)<sub>2</sub> Heterostructured Electrocatalyst for the Oxygen Evolution Reaction: Breaking the Scaling Relation, Stabilizing Iridium(V), and Beyond
Interface engineering of heterostructured electrocatalysts towards efficient alkaline hydrogen electrocatalysis
Multifunctional Active‐Center‐Transferable Platinum/Lithium Cobalt Oxide Heterostructured Electrocatalysts towards Superior Water Splitting
Hexagonal Boron Nitride as a Multifunctional Support for Engineering Efficient Electrocatalysts toward the Oxygen Reduction Reaction
Boosting electrochemical water oxidation: the merits of heterostructured electrocatalysts
Multifunctional Active‐Center‐Transferable Platinum/Lithium Cobalt Oxide Heterostructured Electrocatalysts towards Superior Water Splitting
Strategies of engineering 2D nanomaterial-based electrocatalysts toward hydrogen evolution reaction
Low‐Coordinate Iridium Oxide Confined on Graphitic Carbon Nitride for Highly Efficient Oxygen Evolution
Platinum/Nickel Bicarbonate Heterostructures towards Accelerated Hydrogen Evolution under Alkaline Conditions
Direct Hybridization of Noble Metal Nanostructures on 2D Metal–Organic Framework Nanosheets To Catalyze Hydrogen Evolution
Electronic Structure Engineering of LiCoO<sub>2</sub> toward Enhanced Oxygen Electrocatalysis
Platinum/Nickel Bicarbonate Heterostructures towards Accelerated Hydrogen Evolution under Alkaline Conditions
Understanding the structural and chemical evolution of layered potassium titanates for sodium ion batteries
Low‐Coordinate Iridium Oxide Confined on Graphitic Carbon Nitride for Highly Efficient Oxygen Evolution
Heterostructures for Electrochemical Hydrogen Evolution Reaction: A Review
Hybrid 2D Dual‐Metal–Organic Frameworks for Enhanced Water Oxidation Catalysis
Recent progress on silicon-based anode materials for practical lithium-ion battery applications
Active-Site-Enriched Iron-Doped Nickel/Cobalt Hydroxide Nanosheets for Enhanced Oxygen Evolution Reaction
New insights into understanding the exceptional electrochemical performance of P2-type manganese-based layered oxide cathode for sodium ion batteries
Electrochemical potassium/lithium-ion intercalation into TiSe2: Kinetics and mechanism
CoSe<sub>2</sub>/MoSe<sub>2</sub> Heterostructures with Enriched Water Adsorption/Dissociation Sites towards Enhanced Alkaline Hydrogen Evolution Reaction
Epitaxial growth of Ni(OH)<sub>2</sub> nanoclusters on MoS<sub>2</sub> nanosheets for enhanced alkaline hydrogen evolution reaction
Heteroatom‐doped MoSe<sub>2</sub> Nanosheets with Enhanced Hydrogen Evolution Kinetics for Alkaline Water Splitting