手性拓扑超导体中畴的光学操纵

T. Yu, M. Claassen, D. Kennes, Michael A Sentef
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引用次数: 6

摘要

手性超导体中手性的光学控制在未来的拓扑量子计算应用中具有潜力。当一个手性区域被激光光斑写入和擦除时,该区域周围的马约拉纳模式可以在超快的时间尺度上被操纵。本文采用时变实空间金兹堡-朗道方法,研究了具有两个手性序参量通过光场耦合的拓扑超导体。连续的光驱动,或应用超电流,使两个手性顺序参数杂交,允许一个人诱导和控制超导状态超越可能的平衡。我们证明,如果两个序参量之间的相互耦合足够强,甚至可以增强超导性。此外,我们证明了光斑尺寸大于临界光斑尺寸的短光脉冲可以克服抵消扩散效应,并写入,擦除或移动手性域。令人惊讶的是,这些域被发现是稳定的,这可能使光学可编程量子计算机在未来成为可能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Optical manipulation of domains in chiral topological superconductors
Optical control of chirality in chiral superconductors bears potential for future topological quantum computing applications. When a chiral domain is written and erased by a laser spot, the Majorana modes around the domain can be manipulated on ultrafast time scales. Here we study topological superconductors with two chiral order parameters coupled via light fields by a time-dependent real-space Ginzburg-Landau approach. Continuous optical driving, or the application of supercurrent, hybridizes the two chiral order parameters, allowing one to induce and control the superconducting state beyond what is possible in equilibrium. We show that superconductivity can even be enhanced if the mutual coupling between two order parameters is sufficiently strong. Furthermore, we demonstrate that short optical pulses with spot size larger than a critical one can overcome a counteracting diffusion effect and write, erase, or move chiral domains. Surprisingly, these domains are found to be stable, which might enable optically programmable quantum computers in the future.
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