Area of research
Electrical and Electronic Engineering · Electronic, Optical and Magnetic Materials
Research interest
Research interests include Materials science, Iodine, Chemical engineering, Zinc, Chemistry, and Inorganic chemistry.
An integrated design for high-energy, durable zinc–iodine batteries with ultra-high recycling efficiency
Unlocking Durable and Sustainable Zinc–Iodine Batteries via Molecularly Engineered Polyiodide Reservoirs
Viologen-based polymers with extended π-conjugation structure to boost zinc-iodine battery performance by constructing efficient electric double layers
Charge-redistribution in bimetallic oxides buried in microporous curled carbon for efficient nitrate electroreduction to ammonia
Dual‐Zone Chloride Engineering to Enable Ultra‐Stable Two‐Electron Zinc‐Iodine Batteries
Unlocking Durable and Sustainable Zinc–Iodine Batteries via Molecularly Engineered Polyiodide Reservoirs
Hollow Stair-Stepping Spherical High-Entropy Prussian Blue Analogue for High-Rate Sodium Ion Batteries
Langmuir–Blodgett Film Formed by Amphiphilic Molecules for Facile and Rapid Construction of Zinc–Iodine Cell
Which dominates industrial–current–density CO<sub>2</sub>-to-C<sub>2+</sub> electroreduction: Cu<sup><i>δ</i>+</sup> or the microenvironment?
Inducing Directional Charge Delocalization in 3D‐Printable Micro‐Supercapacitors Based on Strongly Coupled Black Phosphorus and ReS<sub>2</sub> Nanocomposites
Tuning Ion Transport at the Anode‐Electrolyte Interface via a Sulfonate‐Rich Ion‐Exchange Layer for Durable Zinc‐Iodine Batteries
Tightly confined iodine in surface-oxidized carbon matrix toward dual-mechanism zinc-iodine batteries
Metal–iodine batteries: achievements, challenges, and future
Polymer‐Confined Pyrolysis Promotes the Formation of Ultrafine Single‐Phase High‐Entropy Alloys: A Promising Electrocatalyst for Oxidation of Nitrogen
A Universal Polyiodide Regulation Using Quaternization Engineering toward High Value‐Added and Ultra‐Stable Zinc‐Iodine Batteries