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Magnon band structure and magnon density in one-dimensional magnonic crystals

机译:一维大分子晶体中的磁振子能带结构和磁振子密度

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摘要

By using Callen's Green's function method and the Tyablikov and Anderson-Callen decoupling approximations, we systematically study the magnon band structure and magnon density perpendicular to the superlattice plane of one-dimensional magnonic crystals, with a superlattice consisting of two magnetic layers with ferromagnetic (FM) or antiferromagnetic (AFM) interlayer exchange coupling. The effects of temperature, interlayer coupling, anisotropy and external magnetic field on the magnon-energy band and magnon density in the K_x-direction are investigated in three situations: a) the magnon band of magnetic superlattices with FM interlayer coupling, b) separate and c) overlapping magnon bands of magnetic superlattices with AFM interlayer coupling. In the present work, a quantum approach is developed to study the magnon band structure and magnon density of magnonic crystals and the results are beneficial for the design of magnonic-crystal waveguides or gigahertz-range spin-wave filters.
机译:通过使用Callen格林函数方法以及Tyablikov和Anderson-Callen解耦逼近,我们系统地研究了垂直于一维磁晶晶体超晶格平面的磁振子能带结构和磁振子密度,其中超晶格由两层铁磁性(FM)磁性层组成)或反铁磁(AFM)层间交换耦合。在三种情况下研究了温度,层间耦合,各向异性和外部磁场对K_x方向磁能带和磁密度的影响:a)具有FM层间耦合的磁性超晶格的磁能带,b)分离并且c)具有AFM层间耦合的磁性超晶格的重叠磁振子带。在目前的工作中,开发了一种量子方法来研究磁致晶体的磁能带结构和磁致密度,其结果对磁致晶体波导或千兆赫范围自旋波滤波器的设计是有益的。

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