Michiardi M, Boschini F, Kung H-H, Na M X, Dufresne S K Y, Currie A, Levy G, Zhdanovich S, Mills A K, Jones D J, Mi J L, Iversen B B, Hofmann Ph, Damascelli A
Quantum Matter Institute, University of British Columbia, Vancouver, BC, V6T 1Z4, Canada.
Department of Physics & Astronomy, University of British Columbia, Vancouver, BC, V6T 1Z1, Canada.
Nat Commun. 2022 Jun 2;13(1):3096. doi: 10.1038/s41467-022-30742-5.
In spintronics, the two main approaches to actively control the electrons' spin involve static magnetic or electric fields. An alternative avenue relies on the use of optical fields to generate spin currents, which can bolster spin-device performance, allowing for faster and more efficient logic. To date, research has mainly focused on the optical injection of spin currents through the photogalvanic effect, and little is known about the direct optical control of the intrinsic spin-splitting. To explore the optical manipulation of a material's spin properties, we consider the Rashba effect. Using time- and angle-resolved photoemission spectroscopy (TR-ARPES), we demonstrate that an optical excitation can tune the Rashba-induced spin splitting of a two-dimensional electron gas at the surface of BiSe. We establish that light-induced photovoltage and charge carrier redistribution - which in concert modulate the Rashba spin-orbit coupling strength on a sub-picosecond timescale - can offer an unprecedented platform for achieving optically-driven spin logic devices.
在自旋电子学中,主动控制电子自旋的两种主要方法涉及静态磁场或电场。另一种途径是利用光场来产生自旋电流,这可以提高自旋器件的性能,实现更快、更高效的逻辑运算。迄今为止,研究主要集中在通过光生伏打效应进行自旋电流的光注入,而对于本征自旋分裂的直接光学控制了解甚少。为了探索材料自旋特性的光学操纵,我们考虑了 Rashba 效应。利用时间和角度分辨光电子能谱(TR-ARPES),我们证明了光激发可以调节 BiSe 表面二维电子气的 Rashba 诱导自旋分裂。我们确定,光致光电压和电荷载流子重新分布——它们共同在亚皮秒时间尺度上调制 Rashba 自旋轨道耦合强度——可以为实现光驱动自旋逻辑器件提供一个前所未有的平台。