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Ground-State Fermion Parity and Caloric Properties of a Superconducting Nanowire

机译:超导纳米线的地线度差异和热量性质

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摘要

The ground-state structure and fermion parity have been determined for a semiconductor nano-wire with a strong Rashba spin-orbit interaction and proximity-induced superconductivity placed in an external magnetic field under periodic boundary conditions. Allowance for the open boundaries is shown to cause the topologically nontrivial parameter region to be partitioned into a set of subregions with a different ground-state fermionic parity. This peculiarity is related to the emergence of edge modes with nonmonotonically changing excitation energies in the system as its parameters change. At the quantum transition point, at which the ground-state fermionic parity changes, the edge-mode energy is zero. The magneto- and electrocaloric effects are shown to be effective characteristics that allow the series of quantum transitions in an open nanowire to be identified experimentally. These effects at low temperatures exhibit an anomalous behavior in the parameter region for which topologically stable Majorana modes are realized in long nanowires.
机译:已经针对半导体纳米线确定了具有强大的RASHBA旋转轨道相互作用的半导体纳米线和放置在周期性边界条件下的外部磁场中的近距离引起的超导性的半导体结构和光栅奇偶校验。示出了开放边界的允许使拓扑非计竞参数区域被划分为具有不同地态Fermionic奇偶校验的一组子区域。这种特殊性与边缘模式的出现有关,其在系统中具有非单调变化的激励能量作为其参数改变。在Quantum转换点处,地面状态奇偶奇偶校验变化的变化,边缘模式为零。磁性和电热效应被证明是有效的特性,其允许通过实验识别开放纳米线中的一系列量子过渡。在低温下的这些效果在长纳米线中实现了拓扑稳定的Majorana模式的参数区域中的异常行为。

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