Guo Yilv, Zhang Yehui, Zhou Zhaobo, Zhang Xiwen, Wang Bing, Yuan Shijun, Dong Shuai, Wang Jinlan
School of Physics, Southeast University, Nanjing 211189, China.
Mater Horiz. 2021 Apr 1;8(4):1323-1333. doi: 10.1039/d0mh01480j. Epub 2021 Feb 19.
Two-dimensional (2D) van der Waals (vdW) engineering has brought about many extraordinary and new physics concepts and potential applications. Herein, we propose a new type of spin-constrained optoelectronic device developed using 2D ferromagnetic semiconductor heterostructures (FMSs). It is based on a photoexcited double-band-edge transition model, involved coupling between the interlayer magnetic order and the spin-polarized band structure and can achieve the reversible switch of band alignment via reversal of magnetization. We demonstrate that such a unique magnetic optoelectronic device can be realized with a CrBr/CrCl heterojunction and other 2D FMS heterojunctions that have the same direction as the easy magnetization axis and have a switchable band alignment that allows reconfiguration. This study opens a new application window for 2D vdW heterostructures and enables the possibility for fully vdW-based ultra-compact spintronics devices.
二维(2D)范德华(vdW)工程带来了许多非凡的新物理概念和潜在应用。在此,我们提出了一种利用二维铁磁半导体异质结构(FMS)开发的新型自旋约束光电器件。它基于光激发双带边跃迁模型,涉及层间磁序与自旋极化能带结构之间的耦合,并且可以通过反转磁化实现能带排列的可逆切换。我们证明,这样一种独特的磁光电器件可以用CrBr/CrCl异质结和其他与易磁化轴方向相同且具有可切换能带排列从而允许重新配置的二维FMS异质结来实现。这项研究为二维vdW异质结构打开了一个新的应用窗口,并为基于完全vdW的超紧凑自旋电子器件提供了可能性。