Cyclic Superconducting Quantum Refrigerators Using Guided Fluxon Propagation

Fuente: arXiv
Salvato in:
Dettagli Bibliografici
Autori principali: Karmakar, Tathagata, Jussiau, Étienne, Manikandan, Sreenath K., Jordan, Andrew N.
Natura: Preprint
Pubblicazione: 2022
Soggetti:
Accesso online:
Tags: Aggiungi Tag
Nessun Tag, puoi essere il primo ad aggiungerne!!
_version_ 1866911764730347520
author Karmakar, Tathagata
Jussiau, Étienne
Manikandan, Sreenath K.
Jordan, Andrew N.
author_facet Karmakar, Tathagata
Jussiau, Étienne
Manikandan, Sreenath K.
Jordan, Andrew N.
contents We propose cyclic quantum refrigeration in solid-state, employing a gas of magnetic field vortices in a type-II superconductor -- also known as fluxons -- as the cooling agent. Refrigeration cycles are realized by envisioning a racetrack geometry consisting of both adiabatic and isothermal arms, etched into a type-II superconductor. The guided propagation of fluxons in the racetrack is achieved by applying an external electrical current, in a Corbino geometry, through the sample. A gradient of magnetic field is set across the racetrack allowing one to adiabatically cool down and heat up the fluxons, which subsequently exchange heat with the cold, and hot reservoirs, respectively. We characterize the steady state of refrigeration cycles thermodynamically for both $s-$wave and $d-$wave pairing symmetries, and present their figures of merit such as the cooling power delivered, and the coefficient of performance. Our cooling principle can offer significant cooling for on-chip micro-refrigeration purposes, by locally cooling below the base temperatures achievable in a conventional dilution refrigerator. We estimate $10\mathrm{nW}/\mathrm{mm}^2$ of cooling power per unit area under typical operating conditions. Integrating the fluxon fridge to quantum circuits can enhance their coherence time by locally suppressing thermal fluctuations, and improve the efficiency of single photon detectors and charge sensors.
format Preprint
id arxiv_https___arxiv_org_abs_2212_00277
institution arXiv
publishDate 2022
record_format arxiv
spellingShingle Cyclic Superconducting Quantum Refrigerators Using Guided Fluxon Propagation
Karmakar, Tathagata
Jussiau, Étienne
Manikandan, Sreenath K.
Jordan, Andrew N.
Mesoscale and Nanoscale Physics
Quantum Physics
We propose cyclic quantum refrigeration in solid-state, employing a gas of magnetic field vortices in a type-II superconductor -- also known as fluxons -- as the cooling agent. Refrigeration cycles are realized by envisioning a racetrack geometry consisting of both adiabatic and isothermal arms, etched into a type-II superconductor. The guided propagation of fluxons in the racetrack is achieved by applying an external electrical current, in a Corbino geometry, through the sample. A gradient of magnetic field is set across the racetrack allowing one to adiabatically cool down and heat up the fluxons, which subsequently exchange heat with the cold, and hot reservoirs, respectively. We characterize the steady state of refrigeration cycles thermodynamically for both $s-$wave and $d-$wave pairing symmetries, and present their figures of merit such as the cooling power delivered, and the coefficient of performance. Our cooling principle can offer significant cooling for on-chip micro-refrigeration purposes, by locally cooling below the base temperatures achievable in a conventional dilution refrigerator. We estimate $10\mathrm{nW}/\mathrm{mm}^2$ of cooling power per unit area under typical operating conditions. Integrating the fluxon fridge to quantum circuits can enhance their coherence time by locally suppressing thermal fluctuations, and improve the efficiency of single photon detectors and charge sensors.
title Cyclic Superconducting Quantum Refrigerators Using Guided Fluxon Propagation
topic Mesoscale and Nanoscale Physics
Quantum Physics
url https://arxiv.org/abs/2212.00277