We study the thermodynamic properties of topological Josephson junctions using a quantum spin Hall (QSH) insulator-based junction as an example. In particular, we propose that phase-dependent measurements of the heat capacity offer an alternative to Josephson-current measurements to demonstrate key topological features. Even in an equilibrium situation, where the fermion parity is not conserved, the heat capacity exhibits a pronounced double peak in its phase dependence as a signature of the protected zero-energy crossing in the Andreev spectrum. This double-peak feature is robust against changes of the tunneling barrier and thus allows one to distinguish between topological and trivial junctions. At short time scales, fermion parity is conserved and the heat capacity is periodic in the superconducting phase difference. We propose a dispersive setup coupling the Josephson junction to a tank LC circuit to measure the heat capacity of the QSH-based Josephson junction sufficiently fast to detect the periodicity. Although explicitly calculated for a short QSH-based Josephson junction, our results are also applicable to long as well as nanowire-based topological Josephson junctions.

Thermodynamics in topological Josephson junctions

Braggio A;Strambini E;Giazotto F;
2021

Abstract

We study the thermodynamic properties of topological Josephson junctions using a quantum spin Hall (QSH) insulator-based junction as an example. In particular, we propose that phase-dependent measurements of the heat capacity offer an alternative to Josephson-current measurements to demonstrate key topological features. Even in an equilibrium situation, where the fermion parity is not conserved, the heat capacity exhibits a pronounced double peak in its phase dependence as a signature of the protected zero-energy crossing in the Andreev spectrum. This double-peak feature is robust against changes of the tunneling barrier and thus allows one to distinguish between topological and trivial junctions. At short time scales, fermion parity is conserved and the heat capacity is periodic in the superconducting phase difference. We propose a dispersive setup coupling the Josephson junction to a tank LC circuit to measure the heat capacity of the QSH-based Josephson junction sufficiently fast to detect the periodicity. Although explicitly calculated for a short QSH-based Josephson junction, our results are also applicable to long as well as nanowire-based topological Josephson junctions.
2021
Istituto Nanoscienze - NANO
Inglese
3
3
033062-1
033062-15
https://journals.aps.org/prresearch/abstract/10.1103/PhysRevResearch.3.033062
Esperti anonimi
Heat-capacity
Transport
Internazionale
5
info:eu-repo/semantics/article
262
Scharf, B; Braggio, A; Strambini, E; Giazotto, F; Hankiewicz, Em
01 Contributo su Rivista::01.01 Articolo in rivista
open
   Thermoelectric detector based on superconductor-ferromagnet heterostructures
   SUPERTED
   European Commission
   Horizon 2020 Framework Programme
   800923

   Bilateral Project CNR-CONICET
   CNR-CONICET

   International Exchanges between the UK and Italy
   Italian Ministry of Foreign Affairs and International Cooperation and the Royal Society
   IEC R2192166
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/20.500.14243/438936
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