Recent studies have shown the potential for bipolar thermoelectricity in superconducting tunnel junctions with asymmetric energy gaps. The thermoelectric performance of these systems is significantly impacted by the inverse proximity effects present in the normal-superconducting bilayer, which is utilized to adjust the gap asymmetry in the junction. Here, we identify the most effective bilayer configurations, and we find that directly tunnel-coupling the normal metal side of the cold bilayer with the hot superconductor is more advantageous compared to the scheme used in experiments. By utilizing quasiclassical equations, we examined the nonlinear thermoelectric junction performance as a function of the normal metal film thickness and the quality of the normal-superconducting interface within the bilayer, thereby determining the optimal design to observe and maximize this nonequilibrium effect. Our results offer a roadmap to achieve improved thermoelectric performance in superconducting tunnel junctions, with promising implications for a number of applications. © 2023 Author(s)

Bipolar thermoelectricity in S/I/NS and S/I/SN superconducting tunnel junctions

Giazotto F;Braggio A
2023

Abstract

Recent studies have shown the potential for bipolar thermoelectricity in superconducting tunnel junctions with asymmetric energy gaps. The thermoelectric performance of these systems is significantly impacted by the inverse proximity effects present in the normal-superconducting bilayer, which is utilized to adjust the gap asymmetry in the junction. Here, we identify the most effective bilayer configurations, and we find that directly tunnel-coupling the normal metal side of the cold bilayer with the hot superconductor is more advantageous compared to the scheme used in experiments. By utilizing quasiclassical equations, we examined the nonlinear thermoelectric junction performance as a function of the normal metal film thickness and the quality of the normal-superconducting interface within the bilayer, thereby determining the optimal design to observe and maximize this nonequilibrium effect. Our results offer a roadmap to achieve improved thermoelectric performance in superconducting tunnel junctions, with promising implications for a number of applications. © 2023 Author(s)
2023
Istituto Nanoscienze - NANO
Inglese
122
24
1
5
5
https://pubs.aip.org/aip/apl/article/122/24/242603/2896132/Bipolar-thermoelectricity-in-S-I-NS-and-S-I-SN
Esperti anonimi
Asymmetric energy, Bi-layer, Hot superconductors, Normal metals, Proximity effects, Quasiclassical equations, Superconducting tunnel junction, Thermoelectric junctions, Thermoelectric performance, Tunnel coupling
Internazionale
Elettronico
4
info:eu-repo/semantics/article
262
Hijano, A; Bergeret, Fs; Giazotto, F; Braggio, A
01 Contributo su Rivista::01.01 Articolo in rivista
partially_open
   Gate Tuneable Superconducting Quantum Electronics.
   SuperGate
   European Commission
   Horizon 2020 Framework Programme
   964398

   SuPErConducTing Radio-frequency switch for qUantuM technologies
   SPECTRUM
   European Commission
   Horizon Europe Framework Programme
   101057977

   National Quantum Science and Technology Institute
   NQSTI
   MUR
   PNRR
   PE0000023

   Non-equilibrium coherent thermal effects in quantum systems
   NEThEQS
   MIUR-PRIN2022 Project
   MIUR-PRIN2022 Project
   2022B9P8LN

   International Exchanges between the UK and Italy
   Royal Society
   IEC R2 192166
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/20.500.14243/452749
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