Area of research
Biomedical Engineering · Polymers and Plastics
Research interest
Research interests include Advanced Sensor and Energy Harvesting Materials, Conducting polymers and applications, Advanced Memory and Neural Computing, and Analytical Chemistry and Sensors.
Achieving high mobility and enhanced illumination stability in InPrO homojunction thin-film transistors
Revealing the Impact of Gel Electrolytes on the Performance of Organic Electrochemical Transistors
Improving Nonvolatile Properties of Solid‐Electrolyte‐Based Artificial Synapses via Ion Dynamics Modulation in Organic Electrochemical Transistors
A Flexible Multi-Ion Detection System Based on Organic Electrochemical Transistors for Physiological Monitoring
Wet Etching-Based WO3 Patterning for High-Performance Neuromorphic Electrochemical Transistors
Understanding Quasi-Static and Dynamic Characteristics of Organic Ferroelectric Field Effect Transistors
Cavity-Depth Effect on 3D Wafer-Level-Packaged MEMS Resonators by Slide-Film Damping
3D-Printed Intrinsically Stretchable Organic Electrochemical Synaptic Transistor Array
High-Transconductance, Highly Elastic, Durable and Recyclable All-Polymer Electrochemical Transistors with 3D Micro-Engineered Interfaces
Ion transport to temperature and gate in organic electrochemical transistors with anti-freezing hydrogel
A New Strategy to Fabricate Nanoporous Gold and Its Application in Photodetector
Dual Conductive Network Hydrogel for a Highly Conductive, Self-Healing, Anti-Freezing, and Non-Drying Strain Sensor
Ultrastretchable and Stable Strain Sensors Based on Antifreezing and Self-Healing Ionic Organohydrogels for Human Motion Monitoring
High‐Performance Pressure Sensors Based on 3D Microstructure Fabricated by a Facile Transfer Technology
Extremely Deformable, Transparent, and High-Performance Gas Sensor Based on Ionic Conductive Hydrogel
Highly Stretchable and Transparent Thermistor Based on Self-Healing Double Network Hydrogel
Multifunctional Highly Sensitive Multiscale Stretchable Strain Sensor Based on a Graphene/Glycerol–KCl Synergistic Conductive Network
Multiscale nanowire-microfluidic hybrid strain sensors with high sensitivity and stretchability