Superconducting diodes from magnetization gradients

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Superconducting diodes from magnetization gradients. / Roig, Mercè; Kotetes, Panagiotis; Andersen, Brian M.

In: Physical Review B, Vol. 109, No. 14, 144503, 2024.

Research output: Contribution to journalJournal articleResearchpeer-review

Harvard

Roig, M, Kotetes, P & Andersen, BM 2024, 'Superconducting diodes from magnetization gradients', Physical Review B, vol. 109, no. 14, 144503. https://doi.org/10.1103/PhysRevB.109.144503

APA

Roig, M., Kotetes, P., & Andersen, B. M. (2024). Superconducting diodes from magnetization gradients. Physical Review B, 109(14), [144503]. https://doi.org/10.1103/PhysRevB.109.144503

Vancouver

Roig M, Kotetes P, Andersen BM. Superconducting diodes from magnetization gradients. Physical Review B. 2024;109(14). 144503. https://doi.org/10.1103/PhysRevB.109.144503

Author

Roig, Mercè ; Kotetes, Panagiotis ; Andersen, Brian M. / Superconducting diodes from magnetization gradients. In: Physical Review B. 2024 ; Vol. 109, No. 14.

Bibtex

@article{da71eaff3ec64c6ba629be4e5e196803,
title = "Superconducting diodes from magnetization gradients",
abstract = "The superconducting diode effect may exist in bulk systems as well as in junctions when time-reversal and inversion symmetries are simultaneously broken. Magnetization gradients and textures satisfy both requirements and therefore also allow for superconducting diodes. We concretely demonstrate such possibilities in two-dimensional superconductors. We first consider superconducting Rashba metals in the presence of an inhomogeneous out-of-plane exchange field. Using analytical arguments, we reveal that such magnetization gradients stabilize a helical superconducting ground state, similar to homogeneous in-plane magnetic fields. Our predictions are confirmed by employing self-consistent real-space numerical lattice simulations exemplified through the cases of a uniform magnetization gradient or a ferromagnetic domain wall. Furthermore, by considering a phase difference, we determine the nonreciprocal current-phase relations and explore their parameter dependence. Our calculations show that planar devices with out-of-plane magnetization gradients may be as efficient supercurrent rectifiers as their analogs induced by uniform in-plane fields. In addition, they feature the advantage that by means of tailoring the spatial profile of the out-of-plane magnetization, one may optimize and spatially control the diode effect. Finally, we show that superconducting diodes may become also accessible even in the absence of spin-orbit coupling by means of suitable spatially varying magnetization fields. ",
author = "Merc{\`e} Roig and Panagiotis Kotetes and Andersen, {Brian M.}",
note = "Publisher Copyright: {\textcopyright} 2024 American Physical Society. ",
year = "2024",
doi = "10.1103/PhysRevB.109.144503",
language = "English",
volume = "109",
journal = "Physical Review B",
issn = "2469-9950",
publisher = "American Physical Society",
number = "14",

}

RIS

TY - JOUR

T1 - Superconducting diodes from magnetization gradients

AU - Roig, Mercè

AU - Kotetes, Panagiotis

AU - Andersen, Brian M.

N1 - Publisher Copyright: © 2024 American Physical Society.

PY - 2024

Y1 - 2024

N2 - The superconducting diode effect may exist in bulk systems as well as in junctions when time-reversal and inversion symmetries are simultaneously broken. Magnetization gradients and textures satisfy both requirements and therefore also allow for superconducting diodes. We concretely demonstrate such possibilities in two-dimensional superconductors. We first consider superconducting Rashba metals in the presence of an inhomogeneous out-of-plane exchange field. Using analytical arguments, we reveal that such magnetization gradients stabilize a helical superconducting ground state, similar to homogeneous in-plane magnetic fields. Our predictions are confirmed by employing self-consistent real-space numerical lattice simulations exemplified through the cases of a uniform magnetization gradient or a ferromagnetic domain wall. Furthermore, by considering a phase difference, we determine the nonreciprocal current-phase relations and explore their parameter dependence. Our calculations show that planar devices with out-of-plane magnetization gradients may be as efficient supercurrent rectifiers as their analogs induced by uniform in-plane fields. In addition, they feature the advantage that by means of tailoring the spatial profile of the out-of-plane magnetization, one may optimize and spatially control the diode effect. Finally, we show that superconducting diodes may become also accessible even in the absence of spin-orbit coupling by means of suitable spatially varying magnetization fields.

AB - The superconducting diode effect may exist in bulk systems as well as in junctions when time-reversal and inversion symmetries are simultaneously broken. Magnetization gradients and textures satisfy both requirements and therefore also allow for superconducting diodes. We concretely demonstrate such possibilities in two-dimensional superconductors. We first consider superconducting Rashba metals in the presence of an inhomogeneous out-of-plane exchange field. Using analytical arguments, we reveal that such magnetization gradients stabilize a helical superconducting ground state, similar to homogeneous in-plane magnetic fields. Our predictions are confirmed by employing self-consistent real-space numerical lattice simulations exemplified through the cases of a uniform magnetization gradient or a ferromagnetic domain wall. Furthermore, by considering a phase difference, we determine the nonreciprocal current-phase relations and explore their parameter dependence. Our calculations show that planar devices with out-of-plane magnetization gradients may be as efficient supercurrent rectifiers as their analogs induced by uniform in-plane fields. In addition, they feature the advantage that by means of tailoring the spatial profile of the out-of-plane magnetization, one may optimize and spatially control the diode effect. Finally, we show that superconducting diodes may become also accessible even in the absence of spin-orbit coupling by means of suitable spatially varying magnetization fields.

U2 - 10.1103/PhysRevB.109.144503

DO - 10.1103/PhysRevB.109.144503

M3 - Journal article

AN - SCOPUS:85189307140

VL - 109

JO - Physical Review B

JF - Physical Review B

SN - 2469-9950

IS - 14

M1 - 144503

ER -

ID: 389905253