Area of research
Biomedical Engineering · Electrical and Electronic Engineering
Research interest
Research interests include Advanced Sensor and Energy Harvesting Materials, Advanced MEMS and NEMS Technologies, Acoustic Wave Resonator Technologies, and Analytical Chemistry and Sensors.
Hierarchical Honeycomb-Structured Electret/Triboelectric Nanogenerator for Biomechanical and Morphing Wing Energy Harvesting
Highly Sensitive and Flexible Piezoresistive Pressure Sensors Based on 3D Reduced Graphene Oxide Aerogel
Ag-Modified 3D Reduced Graphene Oxide Aerogel-Based Sensor with an Embedded Microheater for a Fast Response and High-Sensitive Detection of NO<sub>2</sub>
Nanosensor-Based Flexible Electronic Assisted with Light Fidelity Communicating Technology for Volatolomics-Based Telemedicine
An intrinsically stretchable humidity sensor based on anti-drying, self-healing and transparent organohydrogels
Progress in Microfluidics‐Based Exosome Separation and Detection Technologies for Diagnostic Applications
Ultrastretchable and Stable Strain Sensors Based on Antifreezing and Self-Healing Ionic Organohydrogels for Human Motion Monitoring
Origami-inspired electret-based triboelectric generator for biomechanical and ocean wave energy harvesting
A flyover style microfluidic chip for highly purified magnetic cell separation
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
Piezoelectric ZnO thin films for 2DOF MEMS vibrational energy harvesting
Engineering biomimetic hair bundle sensors for underwater sensing applications
3D superhydrophobic reduced graphene oxide for activated NO<sub>2</sub> sensing with enhanced immunity to humidity
Boosted sensitivity of graphene gas sensor via nanoporous thin film structures
Biomimetic hydrogel-CNT network induced enhancement of fluid-structure interactions for ultrasensitive nanosensors
A 3D Chemically Modified Graphene Hydrogel for Fast, Highly Sensitive, and Selective Gas Sensor
Facile Synthesis of 3D Graphene Flowers for Ultrasensitive and Highly Reversible Gas Sensing
From Biological Cilia to Artificial Flow Sensors: Biomimetic Soft Polymer Nanosensors with High Sensing Performance
Chemically functionalized 3D graphene hydrogel for high performance gas sensing
Nanofibril scaffold assisted MEMS artificial hydrogel neuromasts for enhanced sensitivity flow sensing
Biomimetic Microsensors Inspired by Marine Life
Improved Selectivity and Sensitivity of Gas Sensing Using a 3D Reduced Graphene Oxide Hydrogel with an Integrated Microheater
Artificial fish skin of self-powered micro-electromechanical systems hair cells for sensing hydrodynamic flow phenomena
Biomimetic Survival Hydrodynamics and Flow Sensing
MEMS sensors for assessing flow-related control of an underwater biomimetic robotic stingray
Touch at a distance sensing: lateral-line inspired MEMS flow sensors
Flexible and Surface-Mountable Piezoelectric Sensor Arrays for Underwater Sensing in Marine Vehicles
High Sensitivity, Miniature, Full 2-D Anemometer Based on MEMS Hot-Film Sensors