Phuc Nguyen Thanh
Department of Molecular Engineering, Graduate School of Engineering, Kyoto University, Kyoto 615-8510, Japan.
J Chem Phys. 2023 Aug 7;159(5). doi: 10.1063/5.0166058.
The control of electron spin, crucial to the stability of matter, offers new possibilities for manipulating the properties of molecules and materials with potential applications in spintronics and chemical reactions. Recent experiments have demonstrated that electron transmission through chiral molecules depends on the electron spin orientation, a phenomenon known as chiral-induced spin selectivity (CISS). In this study, we show that CISS can be observed in achiral systems driven by an external circularly polarized laser field in the framework of Floquet engineering. By using the Floquet theory for a time-periodically driven system to investigate spin-dependent electron transport in a two-terminal setup, we demonstrate that the spin polarization can approach unity if the light intensity is sufficiently strong, the rate of dephasing is sufficiently low, and the average chemical potential of the two leads is within an appropriate range of values, which is narrow because of the high frequency of the laser field. To obtain a broader range of energies for large spin polarization, a combination of chiral molecules and light-matter interactions is considered, and the spin polarization of electrons transported through a helical molecule driven by a laser field is evaluated.
电子自旋的控制对物质的稳定性至关重要,为操纵分子和材料的特性提供了新的可能性,在自旋电子学和化学反应中具有潜在应用。最近的实验表明,通过手性分子的电子传输取决于电子自旋取向,这一现象被称为手性诱导自旋选择性(CISS)。在本研究中,我们表明在弗洛凯工程框架下,由外部圆偏振激光场驱动的非手性系统中也能观察到CISS。通过使用弗洛凯理论研究时间周期驱动系统中两终端设置下的自旋相关电子输运,我们证明如果光强足够强、退相速率足够低且两个引线的平均化学势在适当的值范围内,自旋极化可以接近1,由于激光场频率高,该范围很窄。为了获得更大自旋极化的更宽能量范围,考虑了手性分子和光与物质相互作用的组合,并评估了通过激光场驱动的螺旋分子传输的电子的自旋极化。