Interpretation of Josephson junction fluctuations at very low temperatures by superfluid flow equations

Author:

Cheng Chungho1ORCID,Pagano Sergio234ORCID,Barone Carlo234ORCID,Grønbech-Jensen Niels15ORCID,Salina Gaetano6ORCID,Blackburn James A.7ORCID,Cirillo Matteo8ORCID

Affiliation:

1. Department of Mechanical and Aerospace Engineering, University of California 1 , Davis, California 95616, USA

2. Dipartimento di Fisica “E. R. Caianiello,” Università degli Studi di Salerno 2 , 84084 Fisciano SA, Italy

3. Istituto Nazionale di Fisica Nucleare, Gruppo Collegato Salerno 3 , 84084 Fisciano SA, Italy

4. CNR-SPIN, UOS Salerno 4 , 84084 Fisciano SA, Italy

5. Department of Mathematics, University of California 5 , Davis, California 95616, USA

6. Istituto Nazionale di Fisica Nucleare, Sezione di Roma Tor Vergata 6 , 00133 Roma, Italy

7. Department of Physics and Computer Science, Wilfrid Laurier University 7 , Waterloo, Ontario N2L 3C5, Canada

8. Dipartimento di Fisica and MINAS Lab, Università di Roma Tor Vergata 8 , 00133 Roma, Italy

Abstract

The effect of fluctuations on the stability of the zero-voltage state in the Josephson junction has been extensively investigated in the last four decades, due to the fundamental interest in this macroscopic quantum system and in view of possible application as a detector and, more recently, as base for quantum logic. Thermal induced escape from the zero-voltage state is well explained by consolidated theories based on the standard junction electrical model. However, at very low temperatures, significant deviations have been experimentally observed, which have triggered additional theories based on quantization of the Josephson junction effective potential and on macroscopic quantum tunneling. By looking at experiments carried out in the last forty years, we show here that the reported experimental data can be well described by standard theories down to zero temperature, provided that the Josephson potential is shifted by a constant amount, related to the junction plasma frequency. An explanation of this shift is given in terms of Anderson equations, relating chemical potential to phases, energies, and particle numbers in a superfluid flow.

Funder

Università degli Studi di Salerno

Istituto Nazionale di Fisica Nucleare

Publisher

AIP Publishing

Subject

Physics and Astronomy (miscellaneous)

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