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揭示二维非磁性-铁磁性范德华异质结构中的光致层间自旋转移动力学

Unravelling Photoinduced Interlayer Spin Transfer Dynamics in Two-Dimensional Nonmagnetic-Ferromagnetic van der Waals Heterostructures.

作者信息

He Junjie, Li Shuo, Bandyopadhyay Arkamita, Frauenheim Thomas

机构信息

Bremen Center for Computational Materials Science, University of Bremen, Am Fallturm 1, 2835, Bremen, Germany.

Department of Physical and Macromolecular Chemistry & Charles University Centre of Advanced Materials, Faculty of Science, Charles University in Prague, Hlavova 8, Prague 2, 128 43, Czech Republic.

出版信息

Nano Lett. 2021 Apr 14;21(7):3237-3244. doi: 10.1021/acs.nanolett.1c00520. Epub 2021 Mar 22.

Abstract

Although light is the fastest means to manipulate the interfacial spin injection and magnetic proximity related quantum properties of two-dimensional (2D) magnetic van der Waals (vdW) heterostructures, its potential remains mostly untapped. Here, inspired by the recent discovery of 2D ferromagnets FeGeTe (FGT), we applied the real-time density functional theory (rt-TDDFT) to study photoinduced interlayer spin transfer dynamics in 2D nonmagnetic-ferromagnetic (NM-FM) vdW heterostructures, including graphene-FGT, silicene-FGT, germanene-FGT, antimonene-FGT and h-BN-FGT interfaces. We observed that laser pulses induce significant large spin injection from FGT to nonmagnetic (NM) layers within a few femtoseconds. In addition, we identified an interfacial atom-mediated spin transfer pathway in heterostructures in which the photoexcited spin of Fe first transfers to intralayered Te atoms and then hops to interlayered NM layers. Interlayer hopping is approximately two times slower than intralayer spin transfer. Our results provide the microscopic understanding for optically control interlayer spin dynamics in 2D magnetic heterostructures.

摘要

尽管光在操纵二维(2D)磁性范德华(vdW)异质结构的界面自旋注入和磁近邻相关量子特性方面是最快的手段,但其潜力大多尚未得到开发。在此,受二维铁磁体FeGeTe(FGT)近期发现的启发,我们应用实时密度泛函理论(rt-TDDFT)来研究二维非磁性-铁磁性(NM-FM)vdW异质结构中的光致层间自旋转移动力学,包括石墨烯-FGT、硅烯-FGT、锗烯-FGT、锑烯-FGT和h-BN-FGT界面。我们观察到激光脉冲在几飞秒内诱导从FGT到非磁性(NM)层的显著大自旋注入。此外,我们在异质结构中确定了一种界面原子介导的自旋转移途径,其中Fe的光激发自旋首先转移到层内的Te原子,然后跳跃到层间的NM层。层间跳跃比层内自旋转移慢约两倍。我们的结果为光学控制二维磁性异质结构中的层间自旋动力学提供了微观理解。

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