Area of research
Materials Chemistry · Electrical and Electronic Engineering
Research interest
Research interests include Materials science, Ceramic, Energy storage, Dielectric, Antiferroelectricity, and Capacitor.
Enhanced energy storage performance in Sn4+ doped Sm2Ti2O7 pyrochlore ceramics
A low-temperature-sintering Bi12SiO20 ceramics with ultrahigh energy efficiency and breakdown strength of ∼1.05MV/cm
Abundant nanodomains in Bi0.48Na0.48Ba0.04TiO3-based ceramics induced by phase transformation for excellent energy storage properties
Low-temperature sintered Fe3+/Mn4+ co-doped Bi12SiO20 ceramics: A breakthrough in excellent energy storage density and ultrahigh efficiency
Lead-free La<sub>2</sub>Ti<sub>2</sub>O<sub>7</sub> dielectric ceramics with ultra-high energy storage density and electric field durability through layered ferroelectric layers
Study on the enhancement of Al5Ti1B refining capacity by rare earth La and its effect on the mechanical properties of A6111 aluminum alloy
Novel pyrochlore-type Sm2Ti2O7 ceramics with ultrahigh energy efficiency and superior energy-storage density
Excellent low-field energy storage properties and high density achieved in Bi<sub>0.48</sub>Na<sub>0.48</sub>Ba<sub>0.04</sub>TiO<sub>3</sub>-based oxide ceramics <i>via</i> interposing (Na<sub>0.97</sub>Bi<sub>0.01</sub>)<sup>+</sup>/Ta<sup>5+</sup> at A/B sites
New pyrochlore La <sub>2</sub> Zr <sub>2</sub> O <sub>7</sub> ceramics with ultra-high breakdown electric field strength and energy storage efficiency
Study on structure and electrical properties of BNBT-La2/3ZrO3 ceramic
The energy-storage density of Polymers/BNBT6 nanocomposites with high breakdown field
Well-defined double hysteresis loop in NaNbO3 antiferroelectrics
High energy storage density and efficiency in AgNbO3 based relaxor antiferroelectrics with reduced silver content
AgNbO3-based antiferroelectric ceramics with superior energy storage performance via Gd/Ta substitution at A/B sites
Effect of introducing Sr2+/Hf4+ on phase structures, bandgaps, and energy storage performance in Bi0.47Na0.47Ba0.06TiO3-based ferroelectric ceramic
Remarkably minimized domain and elevated energy storage properties in Na0.48Bi0.48Ba0.04TiO3-based relaxor antiferroelectrics by interposing Bi(Mg2/3Ta1/3)O3
Cold sintering process assisted sintering for 8YSZ ceramic: A way of achieving high density and electrical conductivity at a reduced sintering temperature
High energy storage density in NaNbO3 antiferroelectrics with double hysteresis loop
The effect of A-site Mg substitution on energy-storage density and efficiency of Bi0.47Na0.47Ba0.06TiO3 ceramics by disordered induction
Preparation and energy storage properties of 〈001〉-textured NaNbO3-based ceramics
Enhanced comprehensive energy storage properties in NaNbO3-based relaxor antiferroelectric via MnO2 modification
Unveiling the role of chemical pressure on antiferroelectricity in NaNbO3-based antiferroelectric ceramics
Phase structure and defect engineering in (Bi0.5Na0.5)TiO3-based relaxor antiferroelectrics toward excellent energy storage performance
Phase engineering in NaNbO3 antiferroelectrics for high energy storage density
Ferroelectricity and Schottky Heterojunction Engineering in AgNbO<sub>3</sub>: A Simultaneous Way of Boosting Piezo-photocatalytic Activity
Realising high comprehensive energy storage performance of BaTiO3-based perovskite ceramics via La(Zn1/2Hf1/2)O3 modification
Visible-light photocatalytic hydrogen production in a narrow-bandgap semiconducting La/Ni-modified KNbO<sub>3</sub> ferroelectric and further enhancement <i>via</i> high-field poling
Enhanced energy storage density of antiferroelectric AgNbO3-based ceramics by Bi/Ta modification at A/B sites
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