论文标题
拓扑超导体,半导体和金属的开放量子系统中的非平衡电气,热和自旋传输
Nonequilibrium electrical, thermal and spin transport in open quantum systems of topological superconductors, semiconductors and metals
论文作者
论文摘要
我们研究了各种开放量子系统中的非平衡运输,其系统和导线/浴室由拓扑超导体(TSS),半导体和金属制成。使用量子Langevin方程和Green的功能方法,我们在系统和铅之间的连接处得出了稳态电气,热和自旋电流的精确表达式。我们通过将这些当前表达式与直接时间进化模拟的结果进行比较来验证这些当前表达式。然后,我们展示了在TS电线中注入的电流如何通过单电子激发和库珀对携带的两个部分。我们在温度或电压偏置下进一步显示在拓扑阶段的开放式TS电线中的弹道热传输。热电流值在拓扑相变位附近显着生长,在该拓扑相变向前,热电导显示出尖锐的量峰值,如前所述。我们将量化的热电导与开放TS线的零频热传输系数相关联。我们还观察到TS电线拓扑过渡附近的热电电流。我们引入了一种差异自旋电导,该电导在拓扑阶段显示了零温度的零温度下的量化零偏置峰。通过彻底检查带有TS浴的开放系统中,超导浴在运输中的作用在运输中的作用得到了证明。我们在各种两末端几何形状中的新热电和自旋传输发现对实验中主要的准准颗粒的出现时的目前挑战有益。
We study nonequilibrium transport in various open quantum systems whose systems and leads/baths are made of topological superconductors (TSs), semiconductors, and metals. Using quantum Langevin equations and Green's function method, we derive exact expressions for steady-state electrical, thermal, and spin current at the junctions between a system and leads. We validate these current expressions by comparing them with the results from direct time-evolution simulations. We then show how an electrical current injected in TS wires divides into two parts carried by single electronic excitations and Cooper pairs. We further show ballistic thermal transport in an open TS wire in the topological phase under temperature or voltage bias. The thermal current values grow significantly near the topological phase transition, where thermal conductance displays a sharp quantized peak as predicted earlier. We relate the quantized thermal conductance to the zero-frequency thermoelectric transmission coefficient of the open TS wire. We also observe a large thermoelectric current near the topological transition of the TS wires. We introduce a differential spin conductance which displays a quantized zero-bias peak at zero temperature for a spinful TS wire in the topological phase. The role of superconducting baths in transport is demonstrated by thoroughly examining the features of zero-temperature differential electrical conductance and thermal conductance in open systems with TS baths. Our new thermoelectric and spin transport findings in various two-terminal geometries are beneficial to the present challenges in probing the emergence of Majorana quasi-particles in experiments.