Area of research
Electrical and Electronic Engineering · Electronic, Optical and Magnetic Materials
Research interest
Research interests include Materials science, Anode, Chemical engineering, Lithium (medication), Electrolyte, and Graphene.
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
Ultrasmall CoFe Bimetallic Alloy Anchored on Fluoride‐Free MXene by One‐Pot Etching Strategy for the Barrier‐Adsorption‐Catalyst Functions of Polysulfides in Lithium‐Sulfur Batteries
In Situ Anchoring Ultrafine ZnS Nanodots on 2D MXene Nanosheets for Accelerating Polysulfide Redox and Regulating Li Plating
Two-dimensional MXenes for flexible energy storage devices
Fluorine- and Acid-Free Strategy toward Scalable Fabrication of Two-Dimensional MXenes for Sodium-Ion Batteries
MXene‐Based Current Collectors for Advanced Rechargeable Batteries
Hierarchical Porous N‐doped Carbon Encapsulated Fluorine‐free MXene with Tunable Coordination Chemistry by One‐pot Etching Strategy for Lithium–Sulfur Batteries
Integrating Bi@C Nanospheres in Porous Hard Carbon Frameworks for Ultrafast Sodium Storage
Highly Reversible Zn Metal Anodes Enabled by Freestanding, Lightweight, and Zincophilic MXene/Nanoporous Oxide Heterostructure Engineered Separator for Flexible Zn-MnO<sub>2</sub> Batteries
Interfacial design of silicon/carbon anodes for rechargeable batteries: A review
One-Step, Vacuum-Assisted Construction of Micrometer-Sized Nanoporous Silicon Confined by Uniform Two-Dimensional N-Doped Carbon toward Advanced Li Ion and MXene-Based Li Metal Batteries
Recent progress, mechanisms, and perspectives for crystal and interface chemistry applying to the Zn metal anodes in aqueous zinc‐ion batteries
Towards better Mg metal anodes in rechargeable Mg batteries: Challenges, strategies, and perspectives
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
Highly reversible Mg metal anodes enabled by interfacial liquid metal engineering for high-energy Mg-S batteries
MXenes for advanced separator in rechargeable batteries
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
Review of room-temperature liquid metals for advanced metal anodes in rechargeable batteries
LiF-rich and self-repairing interface induced by MgF2 engineered separator enables dendrite-free lithium metal batteries
Advances and Perspectives of Cathode Storage Chemistry in Aqueous Zinc-Ion Batteries
Emerging Catalysts to Promote Kinetics of Lithium–Sulfur Batteries
Rational Design of Sulfur-Doped Three-Dimensional Ti<sub>3</sub>C<sub>2</sub>T<i><sub><i>x</i></sub></i> MXene/ZnS Heterostructure as Multifunctional Protective Layer for Dendrite-Free Zinc-Ion Batteries
Stable Aqueous Anode‐Free Zinc Batteries Enabled by Interfacial Engineering
Oxygen Defects Engineering of VO<sub>2</sub>·<i>x</i>H<sub>2</sub>O Nanosheets via In Situ Polypyrrole Polymerization for Efficient Aqueous Zinc Ion Storage
Reversible zinc-based anodes enabled by zincophilic antimony engineered MXene for stable and dendrite-free aqueous zinc batteries
Atomic Tungsten on Graphene with Unique Coordination Enabling Kinetically Boosted Lithium–Sulfur Batteries
Scalable and Controllable Synthesis of Interface-Engineered Nanoporous Host for Dendrite-Free and High Rate Zinc Metal Batteries
<i>In Situ</i> Electrochemically Activated Vanadium Oxide Cathode for Advanced Aqueous Zn-Ion Batteries