Area of research
Materials Chemistry · Biomedical Engineering
Research interest
Research interests include Ferroelectric and Piezoelectric Materials, Acoustic Wave Resonator Technologies, Advanced Sensor and Energy Harvesting Materials, and Microwave Dielectric Ceramics Synthesis.
Simultaneous enhancement of piezoelectric performance and Curie temperature in high-temperature Bi <sub>4</sub>Ti <sub>3</sub>O <sub>12</sub> piezoceramics through A/B site co-doping
Defect dipole stretching enables ultrahigh electrostrain
Strong pinning effect on domains in piezoelectrics
Defect Dipole Asymmetry Response Induces Electrobending Deformation in Thin Piezoceramics
Enhanced piezoelectric performance of Cr/Ta non-equivalent co-doped Bi <sub>4</sub>Ti <sub>3</sub>O <sub>12</sub>-based high-temperature piezoceramics
Giant Electrostrain in Lead‐Free Textured Piezoceramics by Defect Dipole Design
Piezo-phototronic and pyro-phototronic effects enhanced broadband photosensing
Improvement of electrostrain properties of BNT-based piezoelectric ceramics by co-doping of Sr2+ and Ta5+ in A and B sites
Frequency modulated hybrid nanogenerator for efficient water wave energy harvesting
Selection rules of triboelectric materials for direct-current triboelectric nanogenerator
Improved Output Performance of Triboelectric Nanogenerator by Fast Accumulation Process of Surface Charges
Homogeneous Na+ transfer dynamic at Na/Na3Zr2Si2PO12 interface for all solid-state sodium metal batteries
Rationally patterned electrode of direct-current triboelectric nanogenerators for ultrahigh effective surface charge density
Enhanced catalytic performance of Ag2O/BaTiO3 heterostructure microspheres by the piezo/pyro-phototronic synergistic effect
Ultrahigh electro-strain in acceptor-doped KNN lead-free piezoelectric ceramics via defect engineering
The formation and effect of defect dipoles in lead-free piezoelectric ceramics: A review
Flexible and free-standing SiOx/CNT composite films for high capacity and durable lithium ion batteries