Synthetic spin-orbit coupling in superconductor-semiconductor hybrid nanowires with micromagnet arrays

Fuente: arXiv
Salvato in:
Dettagli Bibliografici
Autori principali: Hynes, M. P., Burke, D., Ganesh, K., Vekris, A., Villis, B. J., Gartside, J. C., Kanne, T., Nygård, J., Moors, K., Branford, W. R., Connolly, M. R., Buitelaar, M. R.
Natura: Preprint
Pubblicazione: 2025
Soggetti:
Accesso online:
Tags: Aggiungi Tag
Nessun Tag, puoi essere il primo ad aggiungerne!!
_version_ 1866912367880699904
author Hynes, M. P.
Burke, D.
Ganesh, K.
Vekris, A.
Villis, B. J.
Gartside, J. C.
Kanne, T.
Nygård, J.
Moors, K.
Branford, W. R.
Connolly, M. R.
Buitelaar, M. R.
author_facet Hynes, M. P.
Burke, D.
Ganesh, K.
Vekris, A.
Villis, B. J.
Gartside, J. C.
Kanne, T.
Nygård, J.
Moors, K.
Branford, W. R.
Connolly, M. R.
Buitelaar, M. R.
contents Spin-orbit interaction accounts for the coupling of momentum and spin degrees of freedom of electrons and holes in semiconductor materials. In quantum information processing, it allows for electrical control of spin states and for the engineering of topologically protected Majorana zero modes. Although such functionalities were previously considered to be limited to semiconductor materials with strong intrinsic spin-orbit interactions only, recent theoretical work proposes using external rotating magnetic fields to engineer synthetic spin-orbit coupling. This would relax material constraints and open up new research directions for materials with low intrinsic spin-orbit interaction or augment existing spin-orbit interaction in materials in which this interaction is already strong. Here we demonstrate the feasibility of this approach and introduce rotating magnetic fields along an InAs/Al hybrid nanowire using permalloy micromagnet arrays which yields an estimated synthetic Rashba spin-orbit interaction coefficient of 0.022 eV nm. We use transport spectroscopy and the energy dependence of Andreev bound states in the nanowires as a probe of the magnetic field profiles of the micromagnets which are reconfigurably prepared in parallel or antiparallel magnetization configurations.
format Preprint
id arxiv_https___arxiv_org_abs_2505_06040
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Synthetic spin-orbit coupling in superconductor-semiconductor hybrid nanowires with micromagnet arrays
Hynes, M. P.
Burke, D.
Ganesh, K.
Vekris, A.
Villis, B. J.
Gartside, J. C.
Kanne, T.
Nygård, J.
Moors, K.
Branford, W. R.
Connolly, M. R.
Buitelaar, M. R.
Mesoscale and Nanoscale Physics
Spin-orbit interaction accounts for the coupling of momentum and spin degrees of freedom of electrons and holes in semiconductor materials. In quantum information processing, it allows for electrical control of spin states and for the engineering of topologically protected Majorana zero modes. Although such functionalities were previously considered to be limited to semiconductor materials with strong intrinsic spin-orbit interactions only, recent theoretical work proposes using external rotating magnetic fields to engineer synthetic spin-orbit coupling. This would relax material constraints and open up new research directions for materials with low intrinsic spin-orbit interaction or augment existing spin-orbit interaction in materials in which this interaction is already strong. Here we demonstrate the feasibility of this approach and introduce rotating magnetic fields along an InAs/Al hybrid nanowire using permalloy micromagnet arrays which yields an estimated synthetic Rashba spin-orbit interaction coefficient of 0.022 eV nm. We use transport spectroscopy and the energy dependence of Andreev bound states in the nanowires as a probe of the magnetic field profiles of the micromagnets which are reconfigurably prepared in parallel or antiparallel magnetization configurations.
title Synthetic spin-orbit coupling in superconductor-semiconductor hybrid nanowires with micromagnet arrays
topic Mesoscale and Nanoscale Physics
url https://arxiv.org/abs/2505.06040