Area of research
Artificial Intelligence · Atomic and Molecular Physics, and Optics
Research interest
Research interests include Materials science, Electrolyte, Anode, Photocatalysis, Chemistry, and Cathode.
Integrating Ethereal Molecular Backbones into the Ester Solvent with High Solubility of Nitrate for High‐Voltage Li Metal Batteries
Direct Formation of C<sub>3</sub> Oxygenates through Photocatalytic CH<sub>4</sub>–CO Coupling
Zinc‐Coordinated Imidazole‐Based Ionic Liquid as Liquid Salt for All‐Temperature Aqueous Zinc‐Ion Batteries
A low redox potential and long life organic anode material for sodium-ion batteries
Boosting Fast‐Charging Capability of High‐Voltage Li Metal Batteries with Ionic Liquid Modified Ethereal Electrolyte
Earth-abundant photocatalyst for H <sub>2</sub> generation from NH <sub>3</sub> with light-emitting diode illumination
Surface Bromination of Lithium‐Metal Anode for High Cyclic Efficiency
Generating Salt-Affected Irrigated Cropland Map in an Arid and Semi-Arid Region Using Multi-Sensor Remote Sensing Data
Revisiting the designing criteria of advanced solid electrolyte interphase on lithium metal anode under practical condition
Hot carrier multiplication in plasmonic photocatalysis
Li migration, nucleation and growth behavior regulated by a lithiophilic cobalt phosphide-doped carbon nanofibers derived ion/electron conductive framework
Plasmon-driven carbon–fluorine (C(sp3)–F) bond activation with mechanistic insights into hot-carrier-mediated pathways
First-Principles Insights into Plasmon-Induced Catalysis
A versatile single-ion electrolyte with a Grotthuss-like Li conduction mechanism for dendrite-free Li metal batteries
Dual Lithiophilic Structure for Uniform Li Deposition
On the Upper Limits of Oxidation States in Chemistry
Aqueous Mg-Ion Battery Based on Polyimide Anode and Prussian Blue Cathode
All‐Organic Rechargeable Battery with Reversibility Supported by “Water‐in‐Salt” Electrolyte
Graphene‐Supported Nitrogen and Boron Rich Carbon Layer for Improved Performance of Lithium–Sulfur Batteries Due to Enhanced Chemisorption of Lithium Polysulfides