Area of research
Materials Chemistry · Electrical and Electronic Engineering
Research interest
Research interests include Materials science, Dielectric, Ceramic, Energy storage, Curie temperature, and Capacitor.
Accelerating Low-<i>k</i> Dielectric Material Discovery: From Graph Machine Learning to Synthesis
Ultrahigh Energy Storage Density and Efficiency in Bi<sub>0.5</sub>Na<sub>0.5</sub>TiO<sub>3</sub>-Based Ceramics via the Domain and Bandgap Engineering
Effect of Ca2+/Hf4+ modification at A/B sites on energy-storage density of Bi0.47Na0.47Ba0.06TiO3 ceramics
Effect of Sr(Zn1/3Nb2/3)O3 modification on the energy storage performance of BaTiO3 ceramics
Relaxor ferroelectric Bi0.5Na0.5TiO3–Sr0.7Nd0.2TiO3 ceramics with high energy storage density and excellent stability under a low electric field
Formation mechanism, dielectric properties, and energy-storage density in LiNbO3-doped Na0.47Bi0.47Ba0.06TiO3 ceramics
Facile synthesis of solution-processed MoS<sub>2</sub>nanosheets and their application in high-performance ultraviolet organic light-emitting diodes
Structure and microwave dielectric characteristics of lithium-excess Ca0.6Nd0.8/3TiO3/(Li0.5Nd0.5)TiO3 ceramics
Piezoelectric properties and temperature stabilities of Mn- and Cu-modified BiFeO3–BaTiO3 high temperature ceramics
Dielectric, Ferroelectric, and Piezoelectric Properties of <scp> <scp>Bi</scp> </scp> ( <scp> <scp>Ni</scp> </scp> <sub>1/2</sub> <scp> <scp>Ti</scp> </scp> <sub>1/2</sub> ) <scp> <scp>O</scp> </scp> <sub>3</sub> ‐Modified <scp> <scp>BiFeO</scp> </scp> <sub>3</sub> – <scp> <scp>BaTiO</scp> </scp> <sub>3</sub> Ceramics with High Curie Temperature
Structural, microstructural and electrical properties of BiFeO3–BaTiO3 ceramics with high thermal stability
Effects of Bi excess on the structure and electrical properties of high-temperature BiFeO3–BaTiO3 piezoelectric ceramics
Microstructural and electrical properties of Na1/2Bi1/2TiO3–(Na1/4Bi3/4)(Mg1/4Ti3/4)O3 piezoelectric ceramics