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Magnetic microscopy and simulation of strain-mediated control of magnetization in Ni/PMN-PT nanostructures

机译:Ni / PMN-PT纳米结构的磁镜和应变介导的磁化控制模拟

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摘要

Strain-mediated thin film multiferroics comprising piezoelectric/ferromagnetic heterostructures enable the electrical manipulation of magnetization with much greater efficiency than other methods; however, the investigation of nanostructures fabricated from these materials is limited. Here we characterize ferromagnetic Ni nanostructures grown on a ferroelectric PMN-PT substrate using scanning electron microscopy with polarization analysis (SEMPA) and micromagnetic simulations. The magnetization of the Ni nanostructures can be controlled with a combination of sample geometry and applied electric field, which strains the ferroelectric substrate and changes the magnetization via magnetoelastic coupling. We evaluate two types of simulations of ferromagnetic nanostructures on strained ferroelectric substrates: conventional micromagnetic simulations including a simple uniaxial strain, and coupled micromagnetic-elastodynamic simulations. Both simulations qualitatively capture the response of the magnetization changes produced by the applied strain, with the coupled solution providing more accurate representation.
机译:包含压电/铁磁异质结构的应变介导的薄膜多铁层使电化磁化的效率比其他方法高得多。然而,由这些材料制成的纳米结构的研究是有限的。在这里,我们使用带有极化分析(SEMPA)的扫描电子显微镜和微磁模拟来表征在铁电PMN-PT基底上生长的铁磁Ni纳米结构。 Ni纳米结构的磁化强度可以通过样品几何形状和施加的电场的组合来控制,从而使铁电基体应变并通过磁弹性耦合改变磁化强度。我们评估应变铁电体基板上的铁磁纳米结构的两种类型的模拟:常规的微磁模拟,包括简单的单轴应变,以及耦合的微磁弹性动力学模拟。两种模拟都定性地捕获了由所施加的应变产生的磁化强度变化的响应,耦合的解决方案提供了更准确的表示。

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