Creep-enhanced vortex pinning revealed through nonmonotonic relaxation of the Campbell length

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Hauptverfasser: Ghimire, Sunil, Gaggioli, Filippo, Joshi, Kamal R., Konczykowski, Marcin, Grasset, Romain, Krenkel, Elizabeth H., Datta, Amlan, Tanatar, Makariy A., Chen, Shuzhang, Petrovic, Cedomir, Geshkenbein, Vadim B., Prozorov, Ruslan
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Veröffentlicht: 2024
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author Ghimire, Sunil
Gaggioli, Filippo
Joshi, Kamal R.
Konczykowski, Marcin
Grasset, Romain
Krenkel, Elizabeth H.
Datta, Amlan
Tanatar, Makariy A.
Chen, Shuzhang
Petrovic, Cedomir
Geshkenbein, Vadim B.
Prozorov, Ruslan
author_facet Ghimire, Sunil
Gaggioli, Filippo
Joshi, Kamal R.
Konczykowski, Marcin
Grasset, Romain
Krenkel, Elizabeth H.
Datta, Amlan
Tanatar, Makariy A.
Chen, Shuzhang
Petrovic, Cedomir
Geshkenbein, Vadim B.
Prozorov, Ruslan
contents We study the effects of flux creep on the linear AC response of the vortex lattice in single crystals Ca$_3$Ir$_4$Sn$_{13}$ by measuring the Campbell penetration depth, $λ_{\rm \scriptscriptstyle C}(T,H,t)$. Thermal fluctuations release vortices from shallow pinning sites, only for them to become re-trapped by deeper potential wells, causing an initial increase of the effective Labusch parameter, which is proportional to the pinning well curvature. This effect cannot be detected in conventional magnetic relaxation measurements but is revealed by our observation of a nonmonotonic time evolution of $λ_{\rm \scriptscriptstyle C}(T,H,t)$, which directly probes the average curvature of the occupied pinning centers. The time evolution of $λ_{\rm \scriptscriptstyle C}(T,H,t)$ was measured at different temperatures in samples with different densities of pinning centers produced by electron irradiation. The curves can be collapsed together when plotted on a logarithmic time scale $t \to T\ln{(t/t_0)}$ confirming that the time evolution is driven by flux creep. The $λ_{\rm \scriptscriptstyle C}(T,H,t)$ is hysteretic with a noticeable nonmonotonic relaxation in the presence of a vortex density gradient (after zero-field cooling), but is monotonic after field cooling, where the vortex density is uniform. This result quantitatively corroborates the novel picture of vortex creep based on the strong pinning theory.
format Preprint
id arxiv_https___arxiv_org_abs_2403_14891
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Creep-enhanced vortex pinning revealed through nonmonotonic relaxation of the Campbell length
Ghimire, Sunil
Gaggioli, Filippo
Joshi, Kamal R.
Konczykowski, Marcin
Grasset, Romain
Krenkel, Elizabeth H.
Datta, Amlan
Tanatar, Makariy A.
Chen, Shuzhang
Petrovic, Cedomir
Geshkenbein, Vadim B.
Prozorov, Ruslan
Superconductivity
We study the effects of flux creep on the linear AC response of the vortex lattice in single crystals Ca$_3$Ir$_4$Sn$_{13}$ by measuring the Campbell penetration depth, $λ_{\rm \scriptscriptstyle C}(T,H,t)$. Thermal fluctuations release vortices from shallow pinning sites, only for them to become re-trapped by deeper potential wells, causing an initial increase of the effective Labusch parameter, which is proportional to the pinning well curvature. This effect cannot be detected in conventional magnetic relaxation measurements but is revealed by our observation of a nonmonotonic time evolution of $λ_{\rm \scriptscriptstyle C}(T,H,t)$, which directly probes the average curvature of the occupied pinning centers. The time evolution of $λ_{\rm \scriptscriptstyle C}(T,H,t)$ was measured at different temperatures in samples with different densities of pinning centers produced by electron irradiation. The curves can be collapsed together when plotted on a logarithmic time scale $t \to T\ln{(t/t_0)}$ confirming that the time evolution is driven by flux creep. The $λ_{\rm \scriptscriptstyle C}(T,H,t)$ is hysteretic with a noticeable nonmonotonic relaxation in the presence of a vortex density gradient (after zero-field cooling), but is monotonic after field cooling, where the vortex density is uniform. This result quantitatively corroborates the novel picture of vortex creep based on the strong pinning theory.
title Creep-enhanced vortex pinning revealed through nonmonotonic relaxation of the Campbell length
topic Superconductivity
url https://arxiv.org/abs/2403.14891