Area of research
Electrical and Electronic Engineering · Electronic, Optical and Magnetic Materials
Research interest
Research focused on Supercapacitor and Electrolyte, with related work in Capacitance, Energy storage, MXenes. Notable publications include 'Polycation‐Regulated Electrolyte and Interfacial Electric Fields for Stable Zinc Metal Batteries', 'Manipulating the Interlayer Spacing of 3D MXenes with Improved Stability and Zinc‐Ion Storage Capability', and 'High Energy and Power Zinc Ion Capacitors: A Dual-Ion Adsorption and Reversible Chemical Adsorption Coupling Mechanism'.
Nanomaterials Enhanced Sonodynamic Therapy for Multiple Tumor Treatment
Advanced carbon materials for efficient zinc ion storage: Structures, mechanisms and prospects
Polycation‐Regulated Electrolyte and Interfacial Electric Fields for Stable Zinc Metal Batteries
Zinc-Ion Capacitors with Fast Kinetics at a High Mass Loading
Unlocking the Effect of Chain Length and Terminal Group on Ethylene Glycol Ether Family Toward Advanced Aqueous Electrolytes
Polycation‐Regulated Electrolyte and Interfacial Electric Fields for Stable Zinc Metal Batteries
Solute-solvent dual engineering toward versatile electrolyte for high-voltage aqueous zinc-based energy storage devices
High Energy and Power Zinc Ion Capacitors: A Dual-Ion Adsorption and Reversible Chemical Adsorption Coupling Mechanism
Eliminating the Micropore Confinement Effect of Carbonaceous Electrodes for Promoting Zn‐Ion Storage Capability
Manipulating the Interlayer Spacing of 3D MXenes with Improved Stability and Zinc‐Ion Storage Capability
Coupling of EDLC and the reversible redox reaction: oxygen functionalized porous carbon nanosheets for zinc-ion hybrid supercapacitors
Molecular crowding agents engineered to make bioinspired electrolytes for high-voltage aqueous supercapacitors
Minimization of ion transport resistance: diblock copolymer micelle derived nitrogen-doped hierarchically porous carbon spheres for superior rate and power Zn-ion capacitors
Fast assembly of MXene hydrogels by interfacial electrostatic interaction for supercapacitors
Enabling 2.4-V aqueous supercapacitors through the rational design of an integrated electrode of hollow vanadium trioxide/carbon nanospheres
Enriching redox active sites by interconnected nanowalls-like nickel cobalt phospho-sulfide nanosheets for high performance supercapacitors
From Crystalline to Partially Amorphous: A Facile Strategy toward Sulfur Vacancy‐Enriched CoNi<sub>2</sub>S<sub>4</sub> Nanosheets with Improved Supercapacitor Performance