Vortex Tunneling and Critical State in an Oxide Heterostructure

Fuente: arXiv
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Autori principali: McCourt, Jordan T., Henderson, Ryan, Chiles, John, Chen, Chun-Chia, Shama, Kumah, Divine, Geshkenbein, Vadim, Finkelstein, Gleb
Natura: Preprint
Pubblicazione: 2026
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author McCourt, Jordan T.
Henderson, Ryan
Chiles, John
Chen, Chun-Chia
Shama
Kumah, Divine
Geshkenbein, Vadim
Finkelstein, Gleb
author_facet McCourt, Jordan T.
Henderson, Ryan
Chiles, John
Chen, Chun-Chia
Shama
Kumah, Divine
Geshkenbein, Vadim
Finkelstein, Gleb
contents Two-dimensional superconductors offer an excellent platform for the study of vortex matter due to their low superfluid stiffness and inability to effectively screen applied magnetic fields. Here we explore vortices in a two-dimensional superconductor formed at the surface of the complex oxide KTaO$_3$. Multiple regimes of vortex-mediated transport are identified and studied, revealing switching behaviour attributed to nucleation of individual vortices. Analysis of this regime allows us to identify the quantum tunneling of vortices, which transitions to thermally activated behaviour at elevated temperatures. Magnetic field dependence reveals rich histograms of the switching currents which we attribute to different configurations of pinned vortices.
format Preprint
id arxiv_https___arxiv_org_abs_2602_20148
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Vortex Tunneling and Critical State in an Oxide Heterostructure
McCourt, Jordan T.
Henderson, Ryan
Chiles, John
Chen, Chun-Chia
Shama
Kumah, Divine
Geshkenbein, Vadim
Finkelstein, Gleb
Superconductivity
Mesoscale and Nanoscale Physics
Two-dimensional superconductors offer an excellent platform for the study of vortex matter due to their low superfluid stiffness and inability to effectively screen applied magnetic fields. Here we explore vortices in a two-dimensional superconductor formed at the surface of the complex oxide KTaO$_3$. Multiple regimes of vortex-mediated transport are identified and studied, revealing switching behaviour attributed to nucleation of individual vortices. Analysis of this regime allows us to identify the quantum tunneling of vortices, which transitions to thermally activated behaviour at elevated temperatures. Magnetic field dependence reveals rich histograms of the switching currents which we attribute to different configurations of pinned vortices.
title Vortex Tunneling and Critical State in an Oxide Heterostructure
topic Superconductivity
Mesoscale and Nanoscale Physics
url https://arxiv.org/abs/2602.20148