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Magnetization reversal process at atomic scale in systems with itinerant electrons

机译:带有迭代电子的系统中原子级的磁化反转过程

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The magnetic response of itinerant electrons systems to an external magnetic field is investigated on the basis of a microscopic Hamiltonian from which the spin-polarized electronic structure is determined. The magnetic moment and grand thermodynamic potential of the d-electronic subsystem on a particular atomic site in the presence of the external field are calculated as a function of the moments orientation for fixed electron configuration of its local environment. Self-consistent magnetic solutions strongly depend on the d-electron number, determined by the position of the d level relative to the Fermi energy. For parameters corresponding to -Fe, two branches of self-consistent solutions with high and low magnetic moments are found. For parameters corresponding to bulk Cr, a Fe impurity in the Cr matrix and a Cr impurity in the Fe matrix, there are only low-spin solutions. The theory is also applied for describing magnetization reversal processes in exchange spring magnets. A slab of Fe was considered as a soft magnetic layer. The influence of the hard magnet is modeled by the inclusion of an external magnetic field applied to the interface Fe layers. The dependence of the hysteresis loop on the thickness of the Fe slab and on the value of the interface field is investigated.
机译:基于微观哈密顿量研究了巡回电子系统对外部磁场的磁响应,由此确定了自旋极化的电子结构。在存在外部场的情况下,d电子子系统在特定原子位置上的磁矩和巨大的热力学势被计算为其局部环境的固定电子构型的矩方向的函数。自洽磁解在很大程度上取决于d电子数,该电子数由d能级相对于费米能的位置确定。对于与-Fe对应的参数,发现了具有高和低磁矩的自洽解的两个分支。对于与本体Cr,Cr基体中的Fe杂质和Fe基体中的Cr杂质相对应的参数,仅存在低自旋溶液。该理论还适用于描述交换弹簧磁铁中的磁化反转过程。 Fe的平板被认为是软磁性层。硬磁体的影响通过包含施加到界面Fe层的外部磁场来建模。研究了磁滞回线对铁锭厚度和界面场值的依赖性。

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