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Hard superconducting gap in InSb nanowires

Authors :
Gül, Önder
Zhang, Hao
de Vries, Folkert K.
van Veen, Jasper
Zuo, Kun
Mourik, Vincent
Conesa-Boj, Sonia
Nowak, Michał P.
van Woerkom, David J.
Quintero-Pérez, Marina
Cassidy, Maja C.
Geresdi, Attila
Koelling, Sebastian
Car, Diana
Plissard, Sébastien R.
Bakkers, Erik P. A. M.
Kouwenhoven, Leo P.
Source :
Nano Letters 17, 2690-2696 (2017)
Publication Year :
2017

Abstract

Topological superconductivity is a state of matter that can host Majorana modes, the building blocks of a topological quantum computer. Many experimental platforms predicted to show such a topological state rely on proximity-induced superconductivity. However, accessing the topological properties requires an induced hard superconducting gap, which is challenging to achieve for most material systems. We have systematically studied how the interface between an InSb semiconductor nanowire and a NbTiN superconductor affects the induced superconducting properties. Step by step, we improve the homogeneity of the interface while ensuring a barrier-free electrical contact to the superconductor, and obtain a hard gap in the InSb nanowire. The magnetic field stability of NbTiN allows the InSb nanowire to maintain a hard gap and a supercurrent in the presence of magnetic fields (~ 0.5 Tesla), a requirement for topological superconductivity in one-dimensional systems. Our study provides a guideline to induce superconductivity in various experimental platforms such as semiconductor nanowires, two dimensional electron gases and topological insulators, and holds relevance for topological superconductivity and quantum computation.<br />Comment: See https://doi.org/10.5281/zenodo.7729730 for source data

Details

Database :
arXiv
Journal :
Nano Letters 17, 2690-2696 (2017)
Publication Type :
Report
Accession number :
edsarx.1702.02578
Document Type :
Working Paper
Full Text :
https://doi.org/10.1021/acs.nanolett.7b00540