Area of research
Electronic, Optical and Magnetic Materials · Catalysis
Research interest
Research focused on Supercapacitor and Electrolyte, with related work in Aqueous solution, Ion, Electrode. Notable publications include 'Unlocking Dynamic Solvation Chemistry and Hydrogen Evolution Mechanism in Aqueous Zinc Batteries', 'Unconventional interfacial water structure of highly concentrated aqueous electrolytes at negative electrode polarizations', and 'Energy Storage Mechanism in Supercapacitors with Porous Graphdiynes: Effects of Pore Topology and Electrode Metallicity'.
Deciphering multi-dimensional interfacial mechanisms via organic cosolvent engineering for sustainable zinc metal batteries
Accelerating Ion Desolvation via Bioinspired Ion Channel Design in Nonconcentrated Aqueous Electrolytes
Prefilled and Concerted Ion Transport Mechanism in Hierarchical Porous Carbons for Ultra-Fast Energy Storage
Unlocking fast charging of supercapacitors: a job-sharing mechanism for ion transport and storage
Unlocking Dynamic Solvation Chemistry and Hydrogen Evolution Mechanism in Aqueous Zinc Batteries
Energy Storage Mechanism in Supercapacitors with Porous Graphdiynes: Effects of Pore Topology and Electrode Metallicity
Horn-like Pore Entrance Boosts Charging Dynamics and Charge Storage of Nanoporous Supercapacitors
Molecular Understanding of Charging Dynamics in Supercapacitors with Porous Electrodes and Ionic Liquids
Unconventional interfacial water structure of highly concentrated aqueous electrolytes at negative electrode polarizations