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Majorana bound states in a disordered quantum dot chain

机译:马洛拉纳邦无序量子点链中的束缚态

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We study Majorana bound states in a disordered chain of semiconductor quantum dots proximity-coupled to an s-wave superconductor. By calculating its topological quantum number, based on the scattering-matrix method and a tight-binding model, we can identify the topological property of such an inhomogeneous one-dimensional system. We study the robustness of Majorana bound states against disorder in both the spin-independent terms (including the chemical potential and the regular spin-conserving hopping) and the spin-dependent term, i.e., the spin-flip hopping due to the Rashba spin–orbit coupling. We find that the Majorana bound states are not completely immune to the spin-independent disorder, especially when the latter is strong. Meanwhile, the Majorana bound states are relatively robust against spin-dependent disorder, as long as the spin-flip hopping is of uniform sign (i.e., the varying spin-flip hopping term does not change its sign along the chain). Nevertheless, when the disorder induces sign-flip in spin-flip hopping, the topological-nontopological phase transition takes place in the low-chemical-potential region.
机译:我们研究了与s波超导体邻近耦合的半导体量子点的无序链中的马约拉纳束缚态。通过基于散射矩阵方法和紧密结合模型计算其拓扑量子数,我们可以确定这种非均匀一维系统的拓扑性质。我们研究了自旋无关项(包括化学势和规则的自旋守恒跳跃)和自旋依赖性项(即,由于Rashba自旋引起的自旋跳变)的Majorana约束状态对无序状态的鲁棒性轨道耦合。我们发现,马约拉纳邦的结合状态不能完全不受自旋无关障碍的影响,特别是当后者很强时。同时,只要自旋跳变具有统一的符号(即,变化的自旋跳变项不会沿链改变其符号),马约拉纳邦的结合状态就对自旋依赖性障碍具有相对较强的抵抗力。但是,当该疾病在自旋翻转中引起符号翻转时,拓扑-非拓扑相变发生在化学势低的区域。

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