研究目的
Investigating the electric field-induced antiferroelectric-ferroelectric phase transition and the associated nonlinear dielectric behavior in particulate composites for achieving a high dielectric capacity.
研究成果
The depolarization field effect in the composites helps reduce the dielectric hysteresis and enhance the reversibility of antiferroelectric-ferroelectric phase transitions, thus broadening the temperature range of energy storage applications. The macroscopic properties of the composites sensitively depend on the directional alignment of the antiferroelectric filler particles, making the filler morphology an effective control variable in designing nonlinear dielectric composites.
研究不足
The study is based on computational simulations and a phenomenological thermodynamic model, which may not capture all the complexities of real-world materials and experimental conditions.
1:Experimental Design and Method Selection:
A phenomenological thermodynamic model based on the Landau theory is developed to discuss the generic phenomena of a temperature-electric field phase diagram, coexistence of antiferroelectric and ferroelectric phases, field-induced antiferroelectric-ferroelectric phase transition, and nonlinear dielectric behavior. The model is then used to carry out the phase field simulation of particulate nonlinear dielectric composites.
2:Sample Selection and Data Sources:
The study focuses on particulate nonlinear dielectric composites with antiferroelectric filler particles embedded in a linear dielectric matrix.
3:List of Experimental Equipment and Materials:
The study involves computational simulations using phase field models, with no specific experimental equipment mentioned.
4:Experimental Procedures and Operational Workflow:
The phase field simulations are performed to investigate the effects of filler morphology and directional alignment on the macroscopic properties of the composites.
5:Data Analysis Methods:
The simulations reveal the underlying domain-level mechanisms for nucleation and growth processes of the phase transitions, and analyze the macroscopic properties of the composites.
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