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Microscopic theory of magnon-drag electron flow in ferromagnetic metals

机译:铁磁金属中的Magnon-Trang电子流的显微镜理论

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摘要

A temperature gradient applied to a ferromagnetic metal induces not only independent flows of electrons and magnons but also drag currents because of their mutual interaction. In this paper, we present a microscopic study of the electron flow induced by the drag due to magnons. The analysis is based on the s-d model, which describes conduction electrons and magnons coupled via the s-d exchange interaction. Magnetic impurities are introduced in the electron subsystem as a source of spin relaxation. The obtained magnon-drag electron current is proportional to the entropy of magnons and to alpha - beta (more precisely, to 1 - beta/alpha), where alpha is the Gilbert damping constant and beta is the dissipative spin-transfer torque parameter. This result almost coincides with the previous phenomenological result based on the magnonic spin-motive forces, and consists of spin-transfer and momentum-transfer contributions, but with a slight disagreement in the former. The result is interpreted in terms of the nonequilibrium spin chemical potential generated by nonequilibrium magnons.
机译:施加到铁磁金属的温度梯度不仅诱导了电子和氧化铜的独立流,而且由于它们的相互作用而拖动电流。在本文中,我们介绍了由于琼灯杆引起的阻力引起的电子流程的微观研究。该分析基于S-D模型,其描述通过S-D兑换交互耦合的传导电子和振值。在电子子系统中引入了磁性杂质作为旋转松弛的源。所获得的MAGNON-拖曳电子电流与千吨的熵和α - β(更精确,至1 - β/α)成比例,其中α是吉尔伯特阻尼常数,并且β是耗散的旋转转移扭矩参数。这结果几乎与基于磁性旋转动力的先前的现象学结果一致,并且由旋转转移和动量转移贡献组成,但在前者略有分歧。结果是由非QuibiBlim agons产生的非拟纤维旋转化学潜力来解释。

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