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Interaction effects in superconductor/quantum spin Hall devices: Universal transport signatures and fractional Coulomb blockade

机译:超导体/量子自旋霍尔器件中的相互作用效应:通用传输特征和部分库仑阻塞

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摘要

Interfacing s-wave superconductors and quantum spin Hall edges produces time-reversal-invariant topological superconductivity of a type that cannot arise in strictly one-dimensional systems. With the aim of establishing sharp fingerprints of this phase, we use renormalization-group methods to extract universal transport characteristics of superconductor/quantum spin Hall heterostructures where the native edge states serve as leads. We determine scaling forms for the conductance through a grounded superconductor and show that the results depend sensitively on the interaction strength in the leads, the size of the superconducting region, and the presence or absence of time-reversal-breaking perturbations. We also study transport across a floating superconducting island isolated by magnetic barriers. Here, we predict e-periodic Coulomb-blockade peaks, as recently observed in nanowire devices [S. M. Albrecht et al., Nature (London) 531, 206 (2016)], with the added feature that the island can support fractional charge tunable via the relative orientation of the barrier magnetizations. As an interesting corollary, when the magnetic barriers arise from strong interactions at the edge that spontaneously break time-reversal symmetry, the Coulomb-blockade periodicity changes from e to e/2. These findings suggest several future experiments that probe unique characteristics of topological superconductivity at the quantum spin Hall edge.
机译:将s波超导体与量子自旋霍尔边缘相接会产生时变不变的拓扑超导,这种超导在严格的一维系统中是不会出现的。为了建立该阶段的清晰指纹,我们使用重归一化组方法来提取超导体/量子自旋霍尔异质结构的通用输运特征,其中本征边缘态作为前导。我们确定了通过接地的超导体的电导的缩放形式,并表明结果敏感地取决于引线中的相互作用强度,超导区域的大小以及是否存在时间反转中断扰动。我们还研究了通过磁障隔离的浮动超导岛的运输。在这里,我们预测电子周期的库仑封锁峰,正如最近在纳米线装置中观察到的那样[S. M.Albrecht et al。,Nature(London)531,206(2016)],其附加功能是该岛可以支持通过势垒磁化强度的相对方向可调的分数电荷。作为一个有趣的推论,当磁障是由于边缘处的强相互作用而自发地破坏了时间反转对称性时,库仑阻塞的周期性从e变为e / 2。这些发现暗示了一些未来的实验,这些实验将探索量子自旋霍尔边缘的拓扑超导特性。

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