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首页> 外文期刊>Journal of Physics, D. Applied Physics: A Europhysics Journal >Computational and experimental investigations of magnetic domain structures in patterned magnetic thin films
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Computational and experimental investigations of magnetic domain structures in patterned magnetic thin films

机译:图案化磁性薄膜中磁畴结构的计算和实验研究

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The use of nondestructive magnetic signatures for continuous monitoring of the degradation of structural materials in nuclear reactors is a promising yet challenging application for advanced functional materials behavior modeling and measurement. In this work, a numerical model, which is based on the Landau-Lifshitz-Gilbert equation of magnetization dynamics and the phase field approach, was developed to study the impact of defects such as nonmagnetic precipitates and/or voids, free surfaces and crystal orientation on magnetic domain structures and magnetic responses in magnetic materials, with the goal of exploring the correlation between microstructures and magnetic signatures. To validate the model, single crystal iron thin films (similar to 240 nm thickness) were grown on MgO substrates and a focused ion beam was used to pattern micrometer-scale specimens with different geometries. Magnetic force microscopy (MFM) was used to measure magnetic domain structure and its field-dependence. Numerical simulations were constructed with the same geometry as the patterned specimens and under similar applied magnetic field conditions as tested by MFM. The results from simulations and experiments show that 1) magnetic domain structures strongly depend on the film geometry and the external applied field and 2) the predicted magnetic domain structures from the simulations agree quantitatively with those measured by MFM. The results demonstrate the capability of the developed model, used together with key experiments, for improving the understanding of the signal physics in magnetic sensing, thereby providing guidance to the development of advanced nondestructive magnetic techniques.
机译:在高级功能材料行为建模和测量中,使用无损磁性签名连续监测核反应堆中结构材料的降解是一种有前途但富有挑战性的应用。在这项工作中,建立了一个基于Landau-Lifshitz-Gilbert磁化动力学方程和相场方法的数值模型,以研究缺陷的影响,例如非磁性沉淀和/或空隙,自由表面和晶体取向研究磁性材料中的磁畴结构和磁响应,目的是探索微观结构与磁特征之间的相关性。为了验证该模型,在MgO衬底上生长了单晶铁薄膜(类似于240 nm厚度),并使用聚焦离子束对具有不同几何形状的微米级样品进行了图案化。磁力显微镜(MFM)用于测量磁畴结构及其场依赖性。使用与MFM测试相同的几何形状,并在与图案化样本相同的几何条件下构建数值模拟。模拟和实验的结果表明:1)磁畴结构强烈依赖于薄膜的几何形状和外部施加的电场; 2)从模拟中预测的磁畴结构与MFM所测量的那些在定量上吻合。结果表明,所开发的模型与关键实验一起使用的能力,可以改善对磁传感中信号物理的理解,从而为先进的无损磁技术的开发提供指导。

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