Evolution of dissipative regimes in atomically thin $\text{Bi}_{2}\text{Sr}_{2}\text{CaCu}_{2}\text{O}_{8+x}$ superconductor

Fuente: arXiv
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Main Authors: Shokri, Sanaz, Ceccardi, Michele, Confalone, Tommaso, Saggau, Christian N., Lee, Yejin, Martini, Mickey, Gu, Genda, Vinokur, Valerii M., Pallecchi, Ilaria, Nielsch, Kornelius, Caglieris, Federico, Poccia, Nicola
Format: Preprint
Published: 2024
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author Shokri, Sanaz
Ceccardi, Michele
Confalone, Tommaso
Saggau, Christian N.
Lee, Yejin
Martini, Mickey
Gu, Genda
Vinokur, Valerii M.
Pallecchi, Ilaria
Nielsch, Kornelius
Caglieris, Federico
Poccia, Nicola
author_facet Shokri, Sanaz
Ceccardi, Michele
Confalone, Tommaso
Saggau, Christian N.
Lee, Yejin
Martini, Mickey
Gu, Genda
Vinokur, Valerii M.
Pallecchi, Ilaria
Nielsch, Kornelius
Caglieris, Federico
Poccia, Nicola
contents Thermoelectric transport has been widely used to study Abrikosov vortex dynamics in unconventional superconductors. However, only a few thermoelectric studies have been conducted near the dimensional crossover that occurs when the vortex-vortex interaction length scale becomes comparable to the sample size. Here we report the effects of finite size on the dissipation mechanisms of the Nernst effect in the optimally doped $\text{Bi}_{2}\text{Sr}_{2}\text{CaCu}_{2}\text{O}_{8+x}$ high-temperature superconductor, down to the atomic length limit. To access this regime, we develop a new generation of thermoelectric chips based on silicon nitride microprinted circuit boards. These chips ensure optimized signals while preventing sample deterioration. Our results demonstrate that lateral confinement at the nanoscale can effectively reduce vortex dissipation. Investigating vortex dissipation at the micro- and nano-scale is essential for creating stable, miniaturized superconducting circuits.
format Preprint
id arxiv_https___arxiv_org_abs_2409_17712
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Evolution of dissipative regimes in atomically thin $\text{Bi}_{2}\text{Sr}_{2}\text{CaCu}_{2}\text{O}_{8+x}$ superconductor
Shokri, Sanaz
Ceccardi, Michele
Confalone, Tommaso
Saggau, Christian N.
Lee, Yejin
Martini, Mickey
Gu, Genda
Vinokur, Valerii M.
Pallecchi, Ilaria
Nielsch, Kornelius
Caglieris, Federico
Poccia, Nicola
Superconductivity
Thermoelectric transport has been widely used to study Abrikosov vortex dynamics in unconventional superconductors. However, only a few thermoelectric studies have been conducted near the dimensional crossover that occurs when the vortex-vortex interaction length scale becomes comparable to the sample size. Here we report the effects of finite size on the dissipation mechanisms of the Nernst effect in the optimally doped $\text{Bi}_{2}\text{Sr}_{2}\text{CaCu}_{2}\text{O}_{8+x}$ high-temperature superconductor, down to the atomic length limit. To access this regime, we develop a new generation of thermoelectric chips based on silicon nitride microprinted circuit boards. These chips ensure optimized signals while preventing sample deterioration. Our results demonstrate that lateral confinement at the nanoscale can effectively reduce vortex dissipation. Investigating vortex dissipation at the micro- and nano-scale is essential for creating stable, miniaturized superconducting circuits.
title Evolution of dissipative regimes in atomically thin $\text{Bi}_{2}\text{Sr}_{2}\text{CaCu}_{2}\text{O}_{8+x}$ superconductor
topic Superconductivity
url https://arxiv.org/abs/2409.17712