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All-optical injection of charge, spin, and valley currents in monolayer transition-metal dichalcogenides

机译:单层过渡金属二卤化物中电荷,自旋和谷值电流的全光注入

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Monolayer transition-metal dichalcogenides have recently become a playground for spintronics and valleytronics research. Their low-energy spectrum can be described by Dirac cones on the corners of Brillouin zone, but the physical properties are richer than those of graphene since the spin degeneracy is lifted and the optical selection rules are valley dependent. This has been exploited for the optical injection of spin- and valley-polarized currents by the application of static electric fields. In this paper we consider an all-optical method for the injection of charge-, spin-, and valley-polarized currents. The presence of both a fundamental optical field and its second harmonic can lead to the injection of currents due to a nonlinear effect involving the quantum interference between one- and two-photon absorption processes. We analyze how the injected quantities can be controlled through the parameters of the incident light fields, allowing capabilities of control beyond those achieved with static fields, and discuss the conditions for experimental verification of our results.
机译:单层过渡金属二硫属化合物最近已成为自旋电子学和山谷电子学研究的场所。它们的低能谱可以通过布里渊区角上的狄拉克锥来描述,但由于自旋简并性提高且光学选择规则取决于谷值,因此其物理性质比石墨烯更丰富。通过施加静电场,已将其用于光学注入自旋和谷极化电流。在本文中,我们考虑了一种用于注入电荷,自旋和谷极化电流的全光学方法。基本光场及其二次谐波的存在会由于涉及单光子吸收过程和双光子吸收过程之间的量子干扰的非线性效应而导致注入电流。我们分析了如何通过入射光场的参数来控制注入量,从而实现了超出静态场所能实现的控制能力,并讨论了实验验证我们的结果的条件。

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