Area of research
Electrical and Electronic Engineering · Renewable Energy, Sustainability and the Environment
Research interest
Research interests include Electrolyte, Materials science, Anode, Chemistry, Electrochemistry, and Zinc.
Advanced cathodes for aqueous Zn batteries beyond Zn<sup>2+</sup> intercalation
Developing high-power Li||S batteries via transition metal/carbon nanocomposite electrocatalyst engineering
Multi-site catalysis of high-entropy hydroxides for sustainable electrooxidation of glucose to glucaric acid
Selective Extraction of Critical Metals from Spent Li‐Ion Battery Cathode: Cation–Anion Coordination and Anti‐Solvent Crystallization
Solvent control of water O−H bonds for highly reversible zinc ion batteries
Single atom catalysts for triiodide adsorption and fast conversion to boost the performance of aqueous zinc–iodine batteries
Revisiting the Role of Discharge Products in Li–CO<sub>2</sub> Batteries
Electrolyte Design for Lithium‐Ion Batteries for Extreme Temperature Applications
Design of electrolyte for boosted aqueous battery performance: A critical review and perspective
Understanding H<sub>2</sub> Evolution Electrochemistry to Minimize Solvated Water Impact on Zinc‐Anode Performance
Monolithic Phosphate Interphase for Highly Reversible and Stable Zn Metal Anode
Accelerated Diffusion Kinetics in ZnTe/CoTe<sub>2</sub> Heterojunctions for High Rate Potassium Storage
Non‐Flammable Ester Electrolyte with Boosted Stability Against Li for High‐Performance Li Metal Batteries
Addressing cation mixing in layered structured cathodes for lithium-ion batteries: A critical review
Ultranarrow Bandgap Se‐Deficient Bimetallic Selenides for High Performance Alkali Metal‐Ion Batteries
Monolithic Phosphate Interphase for Highly Reversible and Stable Zn Metal Anode
Non‐Flammable Ester Electrolyte with Boosted Stability Against Li for High‐Performance Li Metal Batteries
Boosting Zinc Electrode Reversibility in Aqueous Electrolytes by Using Low‐Cost Antisolvents
Boosting Zinc Electrode Reversibility in Aqueous Electrolytes by Using Low‐Cost Antisolvents
Significantly Raised Visible‐Light Photocatalytic H<sub>2</sub> Evolution on a 2D/2D ReS<sub>2</sub>/In<sub>2</sub>ZnS<sub>4</sub> van der Waals Heterostructure
An Electrolytic Zn–MnO<sub>2</sub> Battery for High‐Voltage and Scalable Energy Storage
A 2D metal–organic framework/Ni(OH)<sub>2</sub> heterostructure for an enhanced oxygen evolution reaction
Targeted Synergy between Adjacent Co Atoms on Graphene Oxide as an Efficient New Electrocatalyst for Li–CO<sub>2</sub> Batteries
Long‐Life Room‐Temperature Sodium–Sulfur Batteries by Virtue of Transition‐Metal‐Nanocluster–Sulfur Interactions
Long‐Life Room‐Temperature Sodium–Sulfur Batteries by Virtue of Transition‐Metal‐Nanocluster–Sulfur Interactions