Area of research
Biomedical Engineering · Polymers and Plastics
Research interest
Research interests include Materials science, Triboelectric effect, Nanotechnology, Composite material, Wearable computer, and Cellulose.
Triboelectric tactile sensor for pressure and temperature sensing in high-temperature applications
Lightweight and Mechanically Robust Cellulosic Triboelectric Materials for Wearable Self-Powered Rehabilitation Training
EMT and cancer stem cells: Drivers of therapy resistance and promising therapeutic targets
Intelligent triboelectric materials for active-sensing wearable e-skin
Harnessing the Hofmeister Effect for Simultaneous Strengthening and Toughening of Cellulosic Triboelectric Materials
Flame‐Retardant Triboelectric Materials for Energy Harvesting and Emerging Applications
Thermomechanically Robust Cellulosic Triboelectric Materials Enabled by Interfacial Nano‐Bridge
Harnessing the Hofmeister Effect for Simultaneous Strengthening and Toughening of Cellulosic Triboelectric Materials
High-performance skin-inspired pressure sensing enabled by a mechanically mismatched biphasic architecture
A Tough Monolithic‐Integrated Triboelectric Bioplastic Enabled by Dynamic Covalent Chemistry
Lightweight and Strong Cellulosic Triboelectric Materials Enabled by Cell Wall Nanoengineering
Compliant Iontronic Triboelectric Gels with Phase-Locked Structure Enabled by Competitive Hydrogen Bonding
Bioinspired Superhydrophobic Triboelectric Materials for Energy Harvesting
High Strength and Toughness Polymeric Triboelectric Materials Enabled by Dense Crystal-Domain Cross-Linking
Directional Moisture-Wicking Triboelectric Materials Enabled by Laplace Pressure Differences
Biomimetic Superhydrophobic Triboelectric Surface Prepared by Interfacial Self‐Assembly for Water Harvesting
Liquid–Solid Triboelectric Probes for Bubbles Status Monitoring
Customizing temperature-resistant cellulosic triboelectric materials for energy harvesting and emerging applications
Phase-Directed Assembly of Triboelectric Nanopaper for Self-Powered Noncontact Sensing
Advanced triboelectric materials for self-powered gas sensing systems
Smart Lanceolate Surface with Fast Fog-Digesting Performance for Triboelectric Energy Harvesting
Mechanically Robust Triboelectric Aerogels Enabled by Dense Bridging of MXene
Aramid Triboelectric Materials: Opportunities for Self‐Powered Wearable Personal Protective Electronics
Triboelectrically Empowered Biomimetic Heterogeneous Wettability Surface for Efficient Fog Collection
Thermally Robust Aramid Triboelectric Materials Enabled by Heat‐Induced Cross‐Linking
Wearable strain insensitive triboelectric materials enabled by structure-induced self-orientation
Rational Design of Triboelectric Materials and Devices for Self‐Powered Food Sensing
Fabrication of Advanced Cellulosic Triboelectric Materials via Dielectric Modulation
Multiscale Structural Nanocellulosic Triboelectric Aerogels Induced by Hofmeister Effect
Liquid–Solid Triboelectric Probes for Real‐Time Monitoring of Sucrose Fluid Status