Area of research
Renewable Energy, Sustainability and the Environment · Electrical and Electronic Engineering
Research interest
Research interests include Materials science, Catalysis, Coal, Chemical engineering, Polyoxometalate, and Methanol.
Phase-engineered CoP-Co2P/coal-based carbon fibers composite as self-supporting electrocatalyst for efficient overall water splitting
Graphene oxide anchored Fe, Co-codoped ZIF-8 derived FeCo-based N-doped carbon composite as a highly efficient bifunctional oxygen electrocatalyst for rechargeable Zn-air batteries
Polyoxometalate-based MOF derived Co2N/Co3W3C/coal-based carbon fibers self-supporting catalyst for efficient hydrogen evolution
Nanoscale MOF-derived vacancy-engineered Co<sub>2</sub>P/N-doped coal-based carbon fibers for boosting hydrogen evolution
Construction of Ni2P-MoC/Coal-Based Carbon Fiber Self-Supporting Catalysts for Enhanced Hydrogen Evolution
Polyoxometalate-Based Metal-Organic Framework-Derived Cop/Moo3/Nc Composite for Efficient Hydrogen Evolution
ZIF-8@ZIF-67-Derived Co Embedded into Nitrogen-Doped Carbon Nanotube Hollow Porous Carbon Supported Pt as an Efficient Electrocatalyst for Methanol Oxidation
Dicyanamide Anion-Based Ionic Liquid-Functionalized Graphene-Supported Pt Catalysts for Boosting Methanol Electrooxidation
MOF-derived Co embedded into N-doped nanotube decorated mesoporous carbon as a robust support of Pt catalyst for methanol electrooxidation
Ionic liquid polyoxometalate-enhanced Pd/N,P-codoped coal-based carbon fiber catalysts for formic acid electrooxidation
Optimized Synthesis of Nitrogen and Phosphorus Dual-Doped Coal-Based Carbon Fiber Supported Pd Catalyst with Enhanced Activities for Formic Acid Electrooxidation
A novel Pt/pyridine ionic liquid polyoxometalate/rGO tri-component hybrid and its enhanced activities for methanol electrooxidation