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测定垂直磁化纳米线中的自旋扭矩非绝热性。

Determination of the spin torque non-adiabaticity in perpendicularly magnetized nanowires.

机构信息

Fachbereich Physik, Universität Konstanz, Konstanz, Germany.

出版信息

J Phys Condens Matter. 2012 Jan 18;24(2):024220. doi: 10.1088/0953-8984/24/2/024220. Epub 2011 Dec 15.

Abstract

Novel nanofabrication methods and the discovery of an efficient manipulation of local magnetization based on spin polarized currents has generated a tremendous interest in the field of spintronics. The search for materials allowing for fast domain wall dynamics requires fundamental research into the effects involved (Oersted fields, adiabatic and non-adiabatic spin torque, Joule heating) and possibilities for a quantitative comparison. Theoretical descriptions reveal a material and geometry dependence of the non-adiabaticity factor β, which governs the domain wall velocity. Here, we present two independent approaches for determining β: (i) measuring the dependence of the dwell times for which a domain wall stays in a metastable pinning state on the injected current and (ii) the current-field equivalence approach. The comparison of the deduced β values highlights the problems of using one-dimensional models to describe two-dimensional dynamics and allows us to ascertain the reliability, robustness and limits of the approaches used.

摘要

新型纳米制造方法的出现,以及基于自旋极化电流的高效局部磁化操控的发现,激发了自旋电子学领域的巨大兴趣。寻找允许快速畴壁动力学的材料需要对所涉及的效应(奥斯特场、绝热和非绝热自旋扭矩、焦耳加热)进行基础研究,并对其进行定量比较。理论描述揭示了非绝热性因子 β 的材料和几何依赖性,β 控制着畴壁速度。在这里,我们提出了两种确定 β 的独立方法:(i)测量畴壁在亚稳态钉扎状态下停留的时间与注入电流的关系;(ii)电流-场等效方法。推断出的 β 值的比较突出了使用一维模型来描述二维动力学的问题,并使我们能够确定所使用方法的可靠性、鲁棒性和局限性。

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