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Spin-helical Dirac states in graphene induced by polar-substrate surfaces with giant spin-orbit interaction: a new platform for spintronics

机译:具有巨大自旋轨道相互作用的极性基板表面在石墨烯中产生的自旋螺旋狄拉克态:自旋电子学的新平台

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摘要

Spintronics, or spin electronics, is aimed at efficient control and manipulation of spin degrees of freedom in electron systems. To comply with demands of nowaday spintronics, the studies of electron systems hosting giant spin-orbit-split electron states have become one of the most important problems providing us with a basis for desirable spintronics devices. In construction of such devices, it is also tempting to involve graphene, which has attracted great attention because of its unique and remarkable electronic properties and was recognized as a viable replacement for silicon in electronics. In this case, a challenging goal is to lift spin degeneracy of graphene Dirac states. Here, we propose a novel pathway to achieve this goal by means of coupling of graphene and polar-substrate surface states with giant Rashba-type spin-splitting. We theoretically demonstrate it by constructing the graphene@BiTeCl system, which appears to possess spin-helical graphene Dirac states caused by the strong interaction of Dirac and Rashba electrons. We anticipate that our findings will stimulate rapid growth in theoretical and experimental investigations of graphene Dirac states with real spin-momentum locking, which can revolutionize the graphene spintronics and become a reliable base for prospective spintronics applications.
机译:自旋电子学或自旋电子学旨在有效控制和操纵电子系统中的自旋自由度。为了满足当今自旋电子学的要求,对具有巨大自旋轨道分裂电子态的电子系统的研究已成为最重要的问题之一,为我们提供了理想的自旋电子器件的基础。在此类设备的构造中,石墨烯也很诱人,石墨烯因其独特而引人注目的电子特性而备受关注,被认为是电子产品中硅的可行替代品。在这种情况下,一个具有挑战性的目标是提高石墨烯狄拉克态的自旋简并性。在这里,我们提出了一种通过将石墨烯和极性基板表面态与巨大的Rashba型自旋分裂耦合来实现这一目标的新途径。我们通过构建石墨烯@BiTeCl体系从理论上证明了这一点,该体系似乎具有由Dirac和Rashba电子的强相互作用引起的自旋螺旋石墨烯Dirac状态。我们预期,我们的发现将刺激具有真正自旋动量锁定的石墨烯Dirac态的理论和实验研究的快速增长,这可以革新石墨烯自旋电子学,并成为未来自旋电子学应用的可靠基础。

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