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具有双层稀土过渡金属亚铁磁体的合成反铁磁体中的超快开关

Ultrafast switching in synthetic antiferromagnet with bilayer rare-earth transition-metal ferrimagnets.

作者信息

Ma Chung Ting, Zhou Wei, Poon S Joseph

机构信息

Department of Physics, University of Virginia, Charlottesville, Virginia, 22904, USA.

Department of Materials Science and Engineering, University of Virginia, Charlottesville, Virginia, 22904, USA.

出版信息

Sci Rep. 2022 Nov 19;12(1):19945. doi: 10.1038/s41598-022-24234-1.

Abstract

In spintronics, it is important to be able to manipulate magnetization rapidly and reliably. Several methods can control magnetization, such as by applying current pulses or magnetic fields. An applied current can reverse magnetization with nanosecond speed through the spin torque effect. For faster switching, subpicosecond switching with femtoseconds laser pulse has been achieved in amorphous rare-earth transition-metal ferrimagnets. In this study, we employed atomistic simulations to investigate ultrafast switching in a synthetic antiferromagnet with bilayer amorphous FeGd ferrimagnets. Using a two-temperature model, we demonstrated ultrafast switching in this synthetic antiferromagnet without external magnetic fields. Furthermore, we showed that if we initially stabilize a skyrmion in this heterostructure, the ultrafast laser can switch the skyrmion state using the same mechanism. Furthermore, this bilayer design allows the control of each ferrimagnetic layer individually and opens the possibility for a magnetic tunnel junction.

摘要

在自旋电子学中,能够快速且可靠地操纵磁化强度非常重要。有几种方法可以控制磁化强度,比如施加电流脉冲或磁场。施加的电流可以通过自旋扭矩效应以纳秒速度反转磁化强度。为了实现更快的切换,在非晶态稀土过渡金属亚铁磁体中利用飞秒激光脉冲实现了亚皮秒切换。在本研究中,我们采用原子模拟来研究具有双层非晶态FeGd亚铁磁体的合成反铁磁体中的超快切换。使用双温度模型,我们证明了在没有外部磁场的情况下,这种合成反铁磁体中存在超快切换。此外,我们表明,如果我们最初在这种异质结构中稳定一个斯格明子,超快激光可以使用相同的机制切换斯格明子状态。此外,这种双层设计允许分别控制每个亚铁磁层,并为磁隧道结开辟了可能性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/1953/9675831/5f089237bbb2/41598_2022_24234_Fig1_HTML.jpg

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