Area of research
Electrical and Electronic Engineering · Electronic, Optical and Magnetic Materials
Research interest
Research interests include Materials science, Anode, Cathode, Electrochemistry, Graphene, and Nanotechnology.
Intensifying Interfacial Reverse Hydrogen Spillover for Boosted Electrocatalytic Nitrate Reduction to Ammonia
Substitution Index‐Prediction Rules for Low‐Potential Plateau of Hard Carbon Anodes in Sodium‐Ion Batteries
Continuous Intermediates Spillover Boosts Electrochemical Nitrate Conversion to Ammonia over Dual Single‐Atom Alloy
Intensifying Interfacial Reverse Hydrogen Spillover for Boosted Electrocatalytic Nitrate Reduction to Ammonia
Corrosion engineering toward amorphous-crystalline nanoarray armored with tannin-nickel complex for industrial seawater electrolysis
Intercalation Chemistry Awakens Transition Metal Hydroxide for Boosted and Sustained Electrocatalytic Sulfion Oxidation
Multi‐Cation Synergy in MnO <sub>2</sub> ‐Based Cathodes: Electronic Engineering for Ultra‐Stability and High‐Capacity Charge Storage
Synchronous Regulation of D–Band Centers in Zn Substrates and Weakening Pauli Repulsion of Zn Ions Using the Ascorbic Acid Additive for Reversible Zinc Anodes
Progress on the Design of Electrocatalysts for Large‐Current Hydrogen Production by Tuning Thermodynamic and Kinetic Factors
Insights into the Optimization of Catalytic Active Sites in Lithium–Sulfur Batteries
In Situ Universal Construction of Thiophosphite/MXene Hybrids via Lewis Acidic Etching for Superior Sodium Storage
In Situ Anchoring Ultrafine ZnS Nanodots on 2D MXene Nanosheets for Accelerating Polysulfide Redox and Regulating Li Plating
Highly Reversible Zinc Metal Anodes Enabled by Solvation Structure and Interface Chemistry Modulation
Modulating Coordination of Iron Atom Clusters on N,P,S Triply‐Doped Hollow Carbon Support towards Enhanced Electrocatalytic Oxygen Reduction
Corrosion Resistant Multilayered Electrode Comprising Ni<sub>3</sub>N Nanoarray Overcoated with NiFe‐Phytate Complex for Boosted Oxygen Evolution in Seawater Electrolysis
Hierarchical Porous N‐doped Carbon Encapsulated Fluorine‐free MXene with Tunable Coordination Chemistry by One‐pot Etching Strategy for Lithium–Sulfur Batteries
Ultrafine PtMo Nanocrystals Confined on N‐Doped Carbon Toward Efficient pH‐Universal Hydrogen Evolution Reaction
Advances on Defect Engineering of Vanadium‐Based Compounds for High‐Energy Aqueous Zinc–Ion Batteries
Integrating Bi@C Nanospheres in Porous Hard Carbon Frameworks for Ultrafast Sodium Storage
Recent progress, mechanisms, and perspectives for crystal and interface chemistry applying to the Zn metal anodes in aqueous zinc‐ion batteries
Introducing Ce ions and oxygen defects into V2O5 nanoribbons for efficient aqueous zinc ion storage
Dual‐Functional NbN Ultrafine Nanocrystals Enabling Kinetically Boosted Lithium–Sulfur Batteries
Activation of Main‐Group Antimony Atomic Sites for Oxygen Reduction Catalysis
Highly reversible Mg metal anodes enabled by interfacial liquid metal engineering for high-energy Mg-S batteries
A General Self‐Assembly Induced Strategy for Synthesizing 2D Ultrathin Cobalt‐Based Compounds Toward Optimizing Hydrogen Evolution Catalysis
MXene/Organics Heterostructures Enable Ultrastable and High-Rate Lithium/Sodium Batteries
Molybdenum Oxynitride Atomic Nanoclusters Bonded in Nanosheets of N-Doped Carbon Hierarchical Microspheres for Efficient Sodium Storage
Edge-oxidation-induced densification towards hybrid bulk carbon for low-voltage, reversible and fast potassium storage
Review of room-temperature liquid metals for advanced metal anodes in rechargeable batteries
Defect‐Selectivity and “Order‐in‐Disorder” Engineering in Carbon for Durable and Fast Potassium Storage (Adv. Mater. 7/2022)