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Numerical Simulation of Magnetization of 2D Magnon Crystals Based on Yttrium Iron Garnet Films

机译:基于钇铁石榴石薄膜的二维磁振子晶体磁化的数值模拟

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摘要

A numerical approach based on disregarding variation in the magnetization level across the thickness of 2D ferromagnetic systems is used to calculate the hysteresis loops for the tangentially magnetized 2D magnon crystals with rhombic and square lattice symmetries obtained by means of etching cylindrical holes with a diameter of 32 μm in a 5.2-μm-thick yttrium iron garnet (YIG) film. It is demonstrated that, when the effects of the crystallographic and growth anisotropies of YIG are disregarded, the results of calculations differ from experimental magnetization curves by no more than 10%. In this case, the theoretical behavior of the lateral distribution of the magnetization with an increase in the tangential magnetic field is in qualitative agreement with the experimentally observed rearrangement of the domain structure.
机译:使用一种基于忽略2D铁磁系统厚度上磁化强度变化的数值方法来计算通过刻蚀直径为32的圆柱孔而获得的具有菱形和方晶格对称性的切向磁化2D磁农晶体的磁滞回线厚度为5.2μm的钇铁石榴石(YIG)膜中的μm。结果表明,当忽略YIG的晶体学和生长各向异性的影响时,计算结果与实验磁化曲线的差异不超过10%。在这种情况下,随着切向磁场的增加,磁化横向分布的理论行为与实验观察到的畴结构重排在质量上是一致的。

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