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偶极子诱导的交换偏置。

Dipole-induced exchange bias.

机构信息

Depto. de Física, Facultad de Ciencias, Universidad de Chile, Casilla 653, Santiago, Chile 7800024.

出版信息

Nanoscale. 2017 Nov 9;9(43):17074-17079. doi: 10.1039/c7nr05491b.

Abstract

The discovery of dipole-induced exchange bias (EB), switching from negative to positive sign, is reported in systems where the antiferromagnet and the ferromagnet are separated by a paramagnetic spacer (AFM-PM-FM). The magnitude and sign of the EB is determined by the cooling field strength and the PM thickness. The same cooling field yields negative EB for thin spacers, and positive EB for thicker ones. The EB decay profile as a function of the spacer thickness, and the change of sign, are attributed to long-ranged dipole coupling. Our model, which accounts quantitatively for the experimental results, ignores the short range interfacial exchange interactions of the usual EB theories. Instead, it retains solely the long range dipole field that allows for the coupling of the FM and AFM across the PM spacer. The experiments allow for novel switching capabilities of long range EB systems, while the theory allows description of the structures where the FM and AFM are not in atomic contact. The results provide a new approach to design novel interacting heterostructures.

摘要

报道了在反铁磁体和铁磁体之间通过顺磁体间隔层(AFM-PM-FM)分离的系统中,出现了偶极子诱导的交换偏置(EB)从负到正的转变。EB 的大小和符号由冷却场强度和 PM 厚度决定。对于较薄的间隔层,相同的冷却场会产生负 EB,而对于较厚的间隔层,则会产生正 EB。EB 衰减曲线作为间隔层厚度的函数,以及符号的变化,归因于长程偶极子耦合。我们的模型定量地解释了实验结果,忽略了通常的 EB 理论中短程界面交换相互作用。相反,它仅保留了允许 FM 和 AFM 通过 PM 间隔层耦合的长程偶极子场。该实验为长程 EB 系统的新型开关能力提供了可能,而理论则允许对 FM 和 AFM 不处于原子接触的结构进行描述。这些结果为设计新型相互作用的异质结构提供了一种新方法。

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