Area of research
Biomedical Engineering · Electrical and Electronic Engineering
Research interest
Research focused on Triboelectric effect and Nanogenerator, with related work in Biomaterial, Carcinogenesis, DNA damage. Notable publications include 'Osteogenic magnesium incorporated into PLGA/TCP porous scaffold by 3D printing for repairing challenging bone defect', 'Bone defect animal models for testing efficacy of bone substitute biomaterials', and 'Acetylation of PGK1 promotes liver cancer cell proliferation and tumorigenesis'.
Self‐powered triboelectric‐electromagnetic composite sensor based on Kresling structure for <scp>AIoT</scp> ‐assisted rehabilitation applications
<scp>AIoT</scp>‐enhanced health management system using soft and stretchable triboelectric sensors for human behavior monitoring
Rational design of oral delivery nanosystems for hypoglycemic peptides
Mannosylated engineered trichosanthin-legumain protein vaccine hydrogel for breast cancer immunotherapy
An Ultrarobust and High‐Performance Rotational Hydrodynamic Triboelectric Nanogenerator Enabled by Automatic Mode Switching and Charge Excitation
Self-sustainable flow-velocity detection via electromagnetic/triboelectric hybrid generator aiming at IoT-based environment monitoring
Osteogenic magnesium incorporated into PLGA/TCP porous scaffold by 3D printing for repairing challenging bone defect
The mTOR–S6K pathway links growth signalling to DNA damage response by targeting RNF168
Acetylation of PGK1 promotes liver cancer cell proliferation and tumorigenesis
Bone defect animal models for testing efficacy of bone substitute biomaterials
Blue fluorescence from the ligand and yellow phosphorescence from the iridium complex: High-efficiency wet-processed white organic light-emitting device