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Solutions for maximum coupling in multiferroic magnetoelectric composites by material design

机译:通过材料设计实现多铁磁电复合材料最大耦合的解决方案

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Electrical control of magnetization offers an extra degree of freedom in materials possessing both electric and magnetic dipole moments. A stochastic optimization combined with homogenization is applied for the solution for maximum magnetoelectric (ME) coupling coefficient α of a laminar ME composite with the thickness and orientation of ferroelectric phase as design variables. Simulated annealing with a generalized Monte Carlo scheme is used for optimization problem. Optimal microstructure with single and poly-crystalline configurations that enhances the overall α is identified. It is found that juxtaposing a preferentially oriented ferroelectric material with a ferromagnetic ferrite into a composite would result in manifold increase in magnetoelectric coupling. The interface shear strains are found to be richly contributing to the ME coupling. The preferential orientation of the ferroelectric phase in the optimal ME composite laminate is demonstrated using the optimal pole figure analyses.
机译:磁化的电气控制为同时具有电和磁偶极矩的材料提供了额外的自由度。对于铁电相的厚度和方向为设计变量的层状ME复合材料的最大磁电(ME)耦合系数α的求解,采用随机优化和均质化相结合的方法。使用广义蒙特卡洛方案进行的模拟退火可用于优化问题。确定了具有增强整体α的单晶和多晶构型的最佳微观结构。发现将优先取向的铁电材料与铁磁铁氧体并置成复合材料将导致磁电耦合的增加。发现界面剪切应变对ME耦合起很大作用。使用最佳极图分析证明了最佳ME复合材料层压板中铁电相的优先取向。

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