English

Microscopic charged fluctuators as a limit to the coherence of disordered superconductor devices

Superconductivity 2018-10-31 v1 Mesoscale and Nanoscale Physics

Abstract

By performing experiments with thin-film resonators of NbSi, we elucidate a decoherence mechanism at work in disordered superconductors. This decoherence is caused by charged Two Level Systems (TLS) which couple to the conduction electrons in the BCS ground state; it does not involve any out-of-equilibrium quasiparticles, vortices, etc. Standard theories of mesoscopic disordered conductors enable making predictions regarding this mechanism, notably that decoherence should increase as the superconductor cross section decreases. Given the omnipresence of charged TLS in solid-state systems, this decoherence mechanism affects, to some degree, all experiments involving disordered superconductors. In particular, we show it easily explains the poor coherence observed in quantum phase slip experiments and may contribute to lowering the quality factors in some disordered superconductor resonators.

Keywords

Cite

@article{arxiv.1810.12801,
  title  = {Microscopic charged fluctuators as a limit to the coherence of disordered superconductor devices},
  author = {Hélène le Sueur and Artis Svilans and Nicolas Bourlet and Anil Murani and Laurent Bergé and Louis Dumoulin and Philippe Joyez},
  journal= {arXiv preprint arXiv:1810.12801},
  year   = {2018}
}

Comments

13 pages, 2 figures