Area of research
Renewable Energy, Sustainability and the Environment · Electrical and Electronic Engineering
Research interest
Research interests include Electrocatalysts for Energy Conversion, Advanced Photocatalysis Techniques, Catalytic Processes in Materials Science, and Advanced battery technologies research.
Photocatalytic H<sub><b>2</b></sub>O<sub><b>2</b></sub> Production with >30% Quantum Efficiency via Monovalent Copper Dynamics
Ultrafast Charge Transfer on Ru‐Cu Atomic Units for Enhanced Photocatalytic H<sub>2</sub>O<sub>2</sub> Production
Potential Pulsing-Induced Fe Undercoordination in NiFe (Oxy)Hydroxide Enhances Electrochemical Oxygen Evolution
Dynamic construction of a durable epitaxial catalytic layer for industrial alkaline water splitting
Isolated Ni atoms enable alkali-free photoreforming of waste polylactic acid plastic
Cooperative tungsten centers in polymeric carbon nitride for efficient overall photosynthesis of hydrogen peroxide
Ru‐O <sub>V</sub> Site‐Mediated Product Selectivity Switch for Overall Photocatalytic CO <sub>2</sub> Reduction
Optimizing the reaction pathway of methane photo-oxidation over single copper sites
Photoexcitation Altered Reaction Pathway Greatly Facilitate Ammonia Synthesis Over Isolated Ru Sites
High‐Density Nanopore Confined Vortical Dipoles and Magnetic Domains on Hierarchical Macro/Meso/Micro/Nano Porous Ultra‐Light Graphited Carbon for Adsorbing Electromagnetic Wave
Ultrahigh Density of Atomic CoFe-Electron Synergy in Noncontinuous Carbon Matrix for Highly Efficient Magnetic Wave Adsorption
Hollow MoC/NC sphere for electromagnetic wave attenuation: direct observation of interfacial polarization on nanoscale hetero-interfaces
In‐Situ Electrochemically Activated Surface Vanadium Valence in V<sub>2</sub>C MXene to Achieve High Capacity and Superior Rate Performance for Zn‐Ion Batteries
Charge Redistribution Caused by S,P Synergistically Active Ru Endows an Ultrahigh Hydrogen Evolution Activity of S‐Doped RuP Embedded in N,P,S‐Doped Carbon