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首页> 外文期刊>Journal of Applied Physics >Computational study of nonlinear dielectric composites with field-induced antiferroelectric-ferroelectric phase transition
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Computational study of nonlinear dielectric composites with field-induced antiferroelectric-ferroelectric phase transition

机译:场致反铁电-铁电相变的非线性介电复合材料的计算研究

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摘要

Electric field-induced antiferroelectric-ferroelectric phase transition and the associated nonlinear dielectric behavior in particulate composites are investigated for achieving a high dielectric capacity. A phenomenological thermodynamic model based on the Landau theory is first developed to discuss the generic phenomena of a temperature-electric field phase diagram, coexistence of anti-ferroelectric 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. It is found that the composites exhibit nonlinear dielectric behaviors, and the depolarization field in the composites helps reduce the dielectric hysteresis and enhance the reversibility of antiferroelectric-ferroelectric phase transitions, which are desired for energy storage applications. The simulations also reveal the underlying domain-level mechanisms for nucleation and growth processes of the phase transitions. It is shown that the macroscopic properties of the composites sensitively depend on the directional alignment of the antiferroelectric filler particles, and thus the filler morphology is an effective control variable in designing nonlinear dielectric composites. Published by AIP Publishing.
机译:研究了电场诱导的反铁电-铁电相变和相关的颗粒复合材料的非线性介电行为,以实现高介电常数。首先建立基于Landau理论的现象学热力学模型,以讨论温度-电场相图,反铁电相和铁电相共存,场感应的反铁电-铁电相变以及非线性介电行为的一般现象。然后使用该模型进行颗粒非线性介电复合材料的相场模拟。发现该复合材料表现出非线性的介电行为,并且该复合材料中的去极化场有助于减小介电滞后并增强反铁电-铁电相变的可逆性,这对于储能应用是期望的。模拟还揭示了相变成核和生长过程的潜在域级机制。结果表明,复合材料的宏观性能敏感地取决于反铁电填料颗粒的方向排列,因此,填料形态是设计非线性介电复合材料的有效控制变量。由AIP Publishing发布。

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