$0-π$ transitions in non-Hermitian magnetic Josephson junctions

Fuente: arXiv
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Auteurs principaux: Capecelatro, Roberto, Marciani, Marco, Guarcello, Claudio, Campagnano, Gabriele, Lucignano, Procolo, Citro, Roberta
Format: Preprint
Publié: 2026
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author Capecelatro, Roberto
Marciani, Marco
Guarcello, Claudio
Campagnano, Gabriele
Lucignano, Procolo
Citro, Roberta
author_facet Capecelatro, Roberto
Marciani, Marco
Guarcello, Claudio
Campagnano, Gabriele
Lucignano, Procolo
Citro, Roberta
contents We study the transport properties of non-Hermitian magnetic Josephson junctions, considering a superconductor-quantum dot-superconductor device coupled to a ferromagnetic metallic reservoir in the presence of an external magnetic field. We focus on the $0-π$ transitions that occur when the equilibrium phase difference between the superconductors shifts from $ϕ=0$ to $ϕ=π$ upon increasing the magnetic field amplitude. The coupling to the environment induces spin-dependent dissipation and leads to the broadening of the junction Andreev levels. By combining Green's function calculations with an effective non-Hermitian description restricted to the sub-gap Andreev quasi-bound states, we show that dissipation shifts the $0-π$ transition to higher magnetic fields. Remarkably, also the relative angle between the applied field and the reservoir magnetization can be used to drive the transition, at fixed field magnitude. We demonstrate that this effect can be entirely ascribed to the behavior of the complex eigenvalues of the non-Hermitian Hamiltonian. These findings highlight non-Hermiticity as a resource that can introduce new control knobs for engineering the current-phase relation in superconducting junctions.
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id arxiv_https___arxiv_org_abs_2604_17978
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle $0-π$ transitions in non-Hermitian magnetic Josephson junctions
Capecelatro, Roberto
Marciani, Marco
Guarcello, Claudio
Campagnano, Gabriele
Lucignano, Procolo
Citro, Roberta
Superconductivity
Mesoscale and Nanoscale Physics
We study the transport properties of non-Hermitian magnetic Josephson junctions, considering a superconductor-quantum dot-superconductor device coupled to a ferromagnetic metallic reservoir in the presence of an external magnetic field. We focus on the $0-π$ transitions that occur when the equilibrium phase difference between the superconductors shifts from $ϕ=0$ to $ϕ=π$ upon increasing the magnetic field amplitude. The coupling to the environment induces spin-dependent dissipation and leads to the broadening of the junction Andreev levels. By combining Green's function calculations with an effective non-Hermitian description restricted to the sub-gap Andreev quasi-bound states, we show that dissipation shifts the $0-π$ transition to higher magnetic fields. Remarkably, also the relative angle between the applied field and the reservoir magnetization can be used to drive the transition, at fixed field magnitude. We demonstrate that this effect can be entirely ascribed to the behavior of the complex eigenvalues of the non-Hermitian Hamiltonian. These findings highlight non-Hermiticity as a resource that can introduce new control knobs for engineering the current-phase relation in superconducting junctions.
title $0-π$ transitions in non-Hermitian magnetic Josephson junctions
topic Superconductivity
Mesoscale and Nanoscale Physics
url https://arxiv.org/abs/2604.17978