Topological superconductivity in tripartite superconductor-ferromagnet-semiconductor nanowires

Josias Langbehn, Sergio Acero González, P. Brouwer, F. von Oppen
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引用次数: 6

Abstract

Motivated by recent experiments searching for Majorana zero modes in tripartite semiconductor nanowires with epitaxial superconductor and ferromagnetic-insulator layers, we explore the emergence of topological superconductivity in such devices for paradigmatic arrangements of the three constituents. Accounting for the competition between magnetism and superconductivity, we treat superconductivity self consistently and describe the electronic properties, including the superconducting and ferromagnetic proximity effects, within a direct wave-function approach. We conclude that the most viable mechanism for topological superconductivity relies on a superconductor-semiconductor-ferromagnet arrangement of the constituents, in which spin splitting and superconductivity are independently induced in the semiconductor by proximity and superconductivity is only weakly affected by the ferromagnetic insulator.
三元超导体-铁磁-半导体纳米线的拓扑超导性
受最近在外延超导体和铁磁绝缘体层的三方半导体纳米线中寻找Majorana零模式的实验的启发,我们探索了这三种成分的范例排列中拓扑超导性的出现。考虑到磁性和超导性之间的竞争,我们自洽地对待超导性,并在直接波函数方法中描述电子特性,包括超导和铁磁邻近效应。我们得出结论,拓扑超导的最可行机制依赖于成分的超导体-半导体-铁磁体排列,其中半导体中的自旋分裂和超导性是由邻近独立诱导的,超导性仅受铁磁绝缘体的微弱影响。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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