Area of research
Renewable Energy, Sustainability and the Environment · Electronic, Optical and Magnetic Materials
Research interest
Research interests include Materials science, Oxygen evolution, Electrolyte, Carbon fibers, Electrocatalyst, and Battery (electricity).
Dual-Activation Engineering with Molten Salt and KOH: Transforming Waste Fine Coke into Ultrahigh Capacitive Carbon for Supercapacitors
Nanodiamond Covalently Anchored Reduced Graphene Oxide 3D Ultraelastic Aerogels toward 2.0 V Aqueous Supercapacitors
Lewis acid-etched MXene self-assembled with reduced graphene oxide for symmetrical supercapacitors with liquid/ solid electrolytes
Coal-based carbon nanosheets contained carbon microfibers modified with grown carbon nanotubes as efficient air electrode material for rechargeable zinc-air batteries
S/N-codoped carbon nanotubes and reduced graphene oxide aerogel based supercapacitors working in a wide temperature range
Preparation of ultrahigh surface area carbon microspheres under solvent-free hypersaline environment for zinc-air batteries with high power density
Dual oxidation and sulfurization enabling hybrid Co/Co3O4@CoS in S/N-doped carbon matrix for bifunctional oxygen electrocatalysis and rechargeable Zn-air batteries
Earth-abundant coal-derived carbon nanotube/carbon composites as efficient bifunctional oxygen electrocatalysts for rechargeable zinc-air batteries
Trace metals dramatically boost oxygen electrocatalysis of N-doped coal-derived carbon for zinc–air batteries
Free-standing hierarchical Co@CoO/CNFs/Cu-foam composite based on electrochemical deposition as high-performance supercapacitor electrode
Significant enhancement of the oxygen reduction activity of self-heteroatom doped coal derived carbon through oxidative pretreatment
Microwave-Assisted Synthesis of Co/CoO<sub>x</sub> Supported on Earth-Abundant Coal-Derived Carbon for Electrocatalysis of Oxygen Evolution
Co-Mn Hybrid Oxides Supported on N-Doped Graphene as Efficient Electrocatalysts for Reversible Oxygen Electrodes