A Mesoscopic Spectrometer Based on the Josephson Effect*

ORAL

Abstract

A key element of mesoscopic topological systems, such as hybrid semiconductor-superconductor circuits, are Andreev Bound States, single quasiparticles localized at superconducting weak links. The characteristic transition energy of these states is twice the superconducting gap (90 GHz in Al). Conventional microwave techniques allow probing these states but only in a limited bandwidth. We implement a new broadband spectrometer operating at frequencies up to 180 GHz, with a 2 MHz linewidth and a minimal theoretical sensitivity of 5 kHz, based on the Josephson effect which converts a DC voltage to microwave oscillations at a frequency proportional to this voltage. Conveniently the absorption of the emitted photons is measured in the spectrometer DC current-voltage characteristic. Using a symmetrical SQUID biased at half a flux quantum allows decoupling the spectrometer from parasitic environmental modes. We demonstrate this spectroscopy technique by detecting the plasma frequency, near 100 GHz, of an RF-SQUID, fabricated both on- and off-chip, inductively coupled to the spectrometer.

**Project funded by IDEX grant ANR-10-IDEX-0001-02 PSL, Paris Programme Emergence(s) Grant and the ERC under the European Union's Horizon 2020 research and innovation programme (grant agreement 636744)

Presenters

  • Ramiro Rodriguez

    • Flux Quantum Lab, CNRS USR 3573, Collège de France, Paris, France
    • SPEC, CEA, CNRS, Université Paris-Saclay, CEA Saclay, 91191 Gif-sur-Yvette cedex, France

Authors

  • Joël Griesmar

    • Université de Sherbrooke
    • Flux Quantum Lab, CNRS USR 3573, Collège de France, Paris, France
  • Fabien Lafont

    • Flux Quantum Lab, CNRS USR 3573, Collège de France, Paris, France
  • Ramiro Rodriguez

    • Flux Quantum Lab, CNRS USR 3573, Collège de France, Paris, France
    • SPEC, CEA, CNRS, Université Paris-Saclay, CEA Saclay, 91191 Gif-sur-Yvette cedex, France
  • Vincent Benzoni

    • Flux Quantum Lab, CNRS USR 3573, Collège de France, Paris, France
  • Léo Peyruchat

    • Flux Quantum Lab, CNRS USR 3573, Collège de France, Paris, France
  • Jean-Loup Smirr

    • Flux Quantum Lab, CNRS USR 3573, Collège de France, Paris, France
  • Caglar Girit

    • Flux Quantum Lab, CNRS USR 3573, Collège de France, Paris, France