Reversibility of superconducting nb weak links driven by the proximity effect in a quantum interference device

We demonstrate the role of the proximity effect in the thermal hysteresis of superconducting constrictions. From the analysis of successive thermal instabilities in the transport characteristics of micron-size superconducting quantum interference devices with a well-controlled geometry, we obtain a...

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Veröffentlicht in:Physical review letters 2015-04, Vol.114 (15), p.157003-157003, Article 157003
Hauptverfasser: Kumar, Nikhil, Fournier, T, Courtois, H, Winkelmann, C B, Gupta, Anjan K
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Sprache:eng
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Zusammenfassung:We demonstrate the role of the proximity effect in the thermal hysteresis of superconducting constrictions. From the analysis of successive thermal instabilities in the transport characteristics of micron-size superconducting quantum interference devices with a well-controlled geometry, we obtain a complete picture of the different thermal regimes. These determine whether or not the junctions are hysteretic. Below the superconductor critical temperature, the critical current switches from a classical weak-link behavior to one driven by the proximity effect. The associated small amplitude of the critical current makes it robust with respect to the heat generation by phase slips, leading to a nonhysteretic behavior.
ISSN:0031-9007
1079-7114
DOI:10.1103/physrevlett.114.157003