Theory of three-terminal Andreev spin qubits

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Main Authors: Piasotski, Kiryl, Svetogorov, Aleksandr, Belzig, Wolfgang, Pletyukhov, Mikhail
Format: Preprint
Published: 2024
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author Piasotski, Kiryl
Svetogorov, Aleksandr
Belzig, Wolfgang
Pletyukhov, Mikhail
author_facet Piasotski, Kiryl
Svetogorov, Aleksandr
Belzig, Wolfgang
Pletyukhov, Mikhail
contents In this paper, we introduce a concise theoretical framework for the equilibrium three-terminal Josephson effect in spin-orbit-interacting systems, inspired by recent experiments on an InAs/Al heterostructure [Phys. Rev. X 14, 031024 (2024)]. We develop an analytical model to capture the essential low-energy physics of the system and examine its potential as an Andreev spin qubit, while also reconciling some findings of Ref. [Phys. Rev. B 90, 155450 (2014)]. Our analysis of the transitions between the Andreev levels in the junction shows that, in an idealized scenario, the transition between the lowest pair of pseudo-spin-split Andreev levels is blocked by pseudo-spin conservation. We demonstrate that to operate the system as an Andreev spin qubit, leveraging the significant spin splitting observed experimentally, additional ingredients such as external magnetic filed or magnetic impurities are required. Finally, we apply our model to investigate the coupling between two such qubits, mediated by supercurrent.
format Preprint
id arxiv_https___arxiv_org_abs_2411_11155
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Theory of three-terminal Andreev spin qubits
Piasotski, Kiryl
Svetogorov, Aleksandr
Belzig, Wolfgang
Pletyukhov, Mikhail
Mesoscale and Nanoscale Physics
In this paper, we introduce a concise theoretical framework for the equilibrium three-terminal Josephson effect in spin-orbit-interacting systems, inspired by recent experiments on an InAs/Al heterostructure [Phys. Rev. X 14, 031024 (2024)]. We develop an analytical model to capture the essential low-energy physics of the system and examine its potential as an Andreev spin qubit, while also reconciling some findings of Ref. [Phys. Rev. B 90, 155450 (2014)]. Our analysis of the transitions between the Andreev levels in the junction shows that, in an idealized scenario, the transition between the lowest pair of pseudo-spin-split Andreev levels is blocked by pseudo-spin conservation. We demonstrate that to operate the system as an Andreev spin qubit, leveraging the significant spin splitting observed experimentally, additional ingredients such as external magnetic filed or magnetic impurities are required. Finally, we apply our model to investigate the coupling between two such qubits, mediated by supercurrent.
title Theory of three-terminal Andreev spin qubits
topic Mesoscale and Nanoscale Physics
url https://arxiv.org/abs/2411.11155