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首页> 外文期刊>The European physical journal, B. Condensed matter physics >Spin-orbit coupling, edge states and quantum spin Hall criticality due to Dirac fermion confinement: the case study of graphene
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Spin-orbit coupling, edge states and quantum spin Hall criticality due to Dirac fermion confinement: the case study of graphene

机译:狄拉克费米子禁闭引起的自旋轨道耦合,边缘态和量子自旋霍尔临界:石墨烯的研究

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摘要

We propose a generalized Dirac fermion description for the electronic state of graphene terminated by a zigzag edge. This description admits a specific spin-orbit coupling needed to preserve time-reversal invariance of the zigzag confinement, otherwise, for spinless particles, showing the parity anomaly typical of quantum electrodynamics in (2+1) dimensions. At a certain critical strength the spin-orbit coupling induces a phase transition of the quantum-spin-Hall type. It is manifested by a novel type of the edge states consisting of a Kramers'pair of counter-propagating modes with opposite spin orientations. Such edge states are capable of accumulating an integer spin in response to a transverse electric field in the absence of a magnetic one. They exist without any excitation gap in the bulk, due to which our system stands out among other quantum spin Hall systems studied earlier. We show that at the transition the local density of states is discontinuous and its energy dependence reflects the phase diagram of the system.
机译:我们提出了以曲折边缘终止的石墨烯电子状态的广义狄拉克费米子描述。此描述承认需要一种特定的自旋轨道耦合,以保持之字形限制的时间反转不变性,否则,对于无旋转粒子,在(2 + 1)维中显示出典型的量子电动力学奇偶校验异常。在一定的临界强度下,自旋-轨道耦合引起量子自旋-霍尔型相变。它由一种新型的边缘状态所证明,该状态由具有相反自旋取向的一对克雷默斯反向传播模态组成。这样的边缘状态能够在没有磁场的情况下响应于横向电场而累积整数自旋。它们的存在没有任何激发间隙,因此,我们的系统在先前研究的其他量子自旋霍尔系统中脱颖而出。我们表明,在过渡状态下局部状态密度是不连续的,并且其能量依赖性反映了系统的相图。

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