Area of research
Materials Chemistry · Electronic, Optical and Magnetic Materials
Research interest
Research interests include Materials science, Ceramic, Dielectric, Piezoelectricity, Energy storage, and Microstructure.
La3 + modified BaBi4Ti4O15 bismuth layer-structured ceramics toward high energy storage density and efficiency
Ordering‐Structured Antiferroelectric Composite Ceramics for Energy Storage Applications
Record-breaking electrostrain in NaNbO3-based antiferroelectric ceramics via achieving fully reversible phase transition
Accelerated design of AgNbO<sub>3</sub>-based ceramics with high energy storage performance <i>via</i> machine learning
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
Improved electrocaloric effect and working temperature span in BaTiO<sub>3</sub>-based ferroelectric ceramics <i>via</i> texture engineering
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
A‐site engineered NaNbO<sub>3</sub> lead‐free antiferroelectrics toward well‐defined double hysteresis loop
Giant electrostrain coefficient under low driving electric field in sodium potassium niobate piezoelectric ceramics with symmetrical bipolar strain
Excellent energy storage performance in Bi <sub>0.5</sub>Na <sub>0.5</sub>TiO <sub>3</sub>-based lead-free high-entropy relaxor ferroelectrics via B-site modification
Novel pyrochlore-type Sm2Ti2O7 ceramics with ultrahigh energy efficiency and superior energy-storage density
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
Mechanical force-induced oxygen vacancies facilitate enhanced piezo-photocatalytic activity in AgNbO3
Improving piezoelectric strain, temperature stability and strain symmetry on KNN-based ceramics sintered in reducing atmosphere via designing internal bias field
Well-defined double hysteresis loop in NaNbO3 antiferroelectrics
High energy storage density and efficiency in AgNbO3 based relaxor antiferroelectrics with reduced silver content
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
Improving high-field strain and temperature stability on KNN-based ceramics sintered in reducing atmosphere via defect engineering
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
Simultaneously improving piezoelectric strain and temperature stability of KNN‐based ceramics via defect design