Area of research
Electrical and Electronic Engineering · Renewable Energy, Sustainability and the Environment
Research interest
Research interests include Materials science, Cathode, Catalysis, Anode, Sulfur, and Sodium.
Manipulating Sulfur Redox Kinetics in Rechargeable Metal–Sulfur Batteries: Fundamental Principles and Universal Methodologies
Interfacial ionic and thermal regulation for highly reversible and ultra-reliable zinc-ion batteries
Designing an Anionic Layer in Low‐Concentration Electrolytes to Promote In‐Plane Ion Diffusion for Dendrite‐Free Zinc‐Ion Batteries
p–d orbital hybridization induced by transition metal atom sites for room-temperature sodium–sulfur batteries
Polymeric Diaminophenazine with Spiral Architecture as Cathode Materials for Ultra‐Stable Aqueous Zinc‐Organic Batteries
Defect-Rich g-C<sub>3</sub>N<sub>4</sub> Nanosheets Catalyze PEO-Based Electrolytes to Create Fluorine-Rich Interfaces for High-Rate All-Solid-State Lithium-Metal Batteries
Electronic Spin Alignment within Homologous NiS<sub>2</sub>/NiSe<sub>2</sub> Heterostructures to Promote Sulfur Redox Kinetics in Lithium‐Sulfur Batteries
A Critical Review on Room‐Temperature Sodium‐Sulfur Batteries: From Research Advances to Practical Perspectives
Understanding the charge transfer effects of single atoms for boosting the performance of Na-S batteries
Potassium escaping balances the degree of graphitization and pore channel structure in hard carbon to boost plateau sodium storage capacity
Lithium-Ion Charged Polymer Channels Flattening Lithium Metal Anode
Modulating ion–dipole interactions in nonflammable phosphonate-based electrolyte for safe and stable sodium-ion pouch cells
Linearly Interlinked Fe‐N<sub>x</sub>‐Fe Single Atoms Catalyze High‐Rate Sodium‐Sulfur Batteries
Electrochemical coupling in subnanometer pores/channels for rechargeable batteries
Structural Engineering of Prussian Blue Analogues Enabling All-Climate and Ultralong Cycling Sodium-Ion Batteries
Challenges and Prospects of Low‐Temperature Rechargeable Batteries: Electrolytes, Interfaces, and Electrodes
Emerging Cu‐Based Tandem Catalytic Systems for CO<sub>2</sub> Electroreduction to Multi‐Carbon Products
A multifunctional protective layer filled with 2D anionic nanosheets enabling a dendrite-free zinc anode
Catalytic Defect‐Repairing Using Manganese Ions for Hard Carbon Anode with High‐Capacity and High‐Initial‐Coulombic‐Efficiency in Sodium‐Ion Batteries
Achieving All‐Plateau and High‐Capacity Sodium Insertion in Topological Graphitized Carbon
Reappraisal of hard carbon anodes for practical lithium/sodium-ion batteries from the perspective of full-cell matters
Direct Oxygen‐Oxygen Cleavage through Optimizing Interatomic Distances in Dual Single‐atom Electrocatalysts for Efficient Oxygen Reduction Reaction
Ir-Sn pair-site triggers key oxygen radical intermediate for efficient acidic water oxidation
Surface Lattice‐Matched Engineering Based on In Situ Spinel Interfacial Reconstruction for Stable Heterostructured Sodium Layered Oxide Cathodes
Sustainable and High‐Rate Electrosynthesis of Nitrogen Fertilizer
Direct Oxygen‐Oxygen Cleavage through Optimizing Interatomic Distances in Dual Single‐atom Electrocatalysts for Efficient Oxygen Reduction Reaction
Insight into the Role of Fluoroethylene Carbonate on the Stability of Sb||Graphite Dual‐Ion Batteries in Propylene Carbonate‐Based Electrolyte
A Hierarchical Hybrid MXenes Interlayer with Triple Function for Room‐Temperature Sodium‐Sulfur Batteries
Enthalpy‐Driven Room‐Temperature Superwetting of Liquid Na–K Alloy as Flexible and Dendrite‐Free Anodes
Sustainable and High‐Rate Electrosynthesis of Nitrogen Fertilizer