Area of research
Polymers and Plastics · Electrical and Electronic Engineering
Research interest
Research interests include Materials science, Self-healing hydrogels, Catalysis, Self-healing, Electrolyte, and Toughness.
Hydrogel solar evaporator with a sodium sulfonate electrolyte backbone enabling continuous high-salinity desalination and energy generation
Multifunctional ionic conductive hydrogels based on sodium carboxymethyl cellulose and poly(ionic liquid) for high-performance supercapacitors and sensing applications
Electric bias-induced reversible configuration of single and heteronuclear dual-atom catalysts on 1Tʹ-MoS2
Ruthenium-based bimetallic nanoparticles loaded on covalent organic framework for electrocatalytic hydrogen evolution reaction in acidic media
Alkali cation-induced cathodic corrosion in Cu electrocatalysts
Synergistic Effect Between 0D CQDs and 2D MXene to Enhance the Photothermal Conversion of Hydrogel Evaporators for Efficient Solar Water Evaporation, Photothermal Sensing and Electricity Generation
MXene-based conductive hydrogels with toughness and self-healing enhancement by metal coordination for flexible electronic devices
Stretchable, self-healing, adhesive and anti-freezing ionic conductive cellulose-based hydrogels for flexible supercapacitors and sensors
Ti3C2TX-Co loaded chitosan hydrogel microspheres for efficient peroxymonosulfate activation and tetracycline degradation
Polysaccharides and their derivatives for solar-driven water evaporators
Polyimide-based triazine-cored covalent organic frameworks supported metal (Fe, Ni, Ru and Rh) nanoparticles for high-efficiency electrocatalytic hydrogen evolution
Ultrafine Pd nanoparticles confined in naphthalene-based covalent triazine frameworks for efficient and stable hydrogen production from formic acid
Mxene-Based Conductive Hydrogels with Toughness and Self-Healing Enhancement by Metal Coordination for Flexible Electronic Devices
In-Plane Ferrielectric Order in van der Waals β′-In<sub>2</sub>Se<sub>3</sub>