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Laminate composite magnetoelectric multiferroics optimized by global derivative-free optimization method

机译:通过全球衍生优化方法优化层压复合磁电型多元素

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摘要

The magnetoelectric multiferroics where magnetism and ferroelectricity coexist in one material have recently attracted renewed interest due to its potential applications in novel functional devices. Natural multiferroic single-phase compounds are rare and an alternative approach to obtain a magneto-electric (ME) effect is through multilayered composites of a ferroelectric and a ferromagnetic material. An applied electric field creates a piezoelectric strain in the ferroelectric, which produces a corresponding strain in the ferromagnetic material and a subsequent change in magnetization. Various efforts to improve the value of ME coupling coefficient alpha have been made by modifying preparation techniques of the samples, by the proper choice of materials or different structures and by choosing different thickness of the samples. In this study, we have applied numerical optimization for arriving at the solution for maximum ME coupling coefficient alpha of a laminar ME composite by making use of the anisotropy of the ferroelectric phase. We have used a global derivative-free optimization method based in directional direct search coupled with specific multistart strategies for setting up the optimization problem. The effective ME couping coefficients (alpha(ij))over-tilde are computed using the asymptotic homogenization method. Optimal composite microstructure with a range of the constituent ferroelectric single-crystal configurations that enhances the overall alpha is identified. Optimal composite would have the [0 0 1]-axis of the fer-roelectric phase oriented out-of-plane of the lamina. Yet the elasticity of the composite is found to be anisotropic at the optimal orientations of the ferroelectric phase. Stress-mediated enhancement of the ME coupling is demonstrated using the analysis of the inplane elastic stiffness of the composite. (C) 2018 Elsevier B.V. All rights reserved.
机译:磁电型多元素,其中一种材料中的磁性和铁电性共存由于其在新型功能装置中的潜在应用,最近引起了重新兴趣。天然的多相单相化合物是罕见的,获得磁电(ME)效应的替代方法是通过铁电和铁磁性材料的多层复合材料。施加的电场在铁电中产生压电应变,其在铁磁性材料中产生相应的应变和随后的磁化变化。 Various efforts to improve the value of ME coupling coefficient alpha have been made by modifying preparation techniques of the samples, by the proper choice of materials or different structures and by choosing different thickness of the samples.在这项研究中,我们通过利用铁电相的各向异性来应用用于到达Laminar ME复合材料的最大耦合系数α的解决方案的数值优化。我们使用了一种基于定向直接搜索的全局衍生优化方法,耦合具有用于设置优化问题的特定多际轨道策略。使用渐近均质化方法计算有效的ME COUP系数(alpha(IJ))过度线。鉴定了具有增强整体α的组成铁电单晶构型的最佳复合微结构。最佳复合材料具有取向的薄层外平面的FER-Roelectip的XIS。然而,在铁电相的最佳取向上发现复合材料的弹性是各向异性的。使用复合材料的入口弹性刚度的分析来证明压力介导的ME耦合的增强。 (c)2018 Elsevier B.v.保留所有权利。

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