Dispersive Thermometry with a Josephson Junction

ORAL

Abstract

We have constructed a "Josephson bolometer" that detects weak electrical fluctuations and indicates the strength of these fluctuations via a shift in the frequency of a microwave resonator [1]. With this functionality, we demonstrate non-local primary thermometry by detecting the noise of a remote resistor. Importantly, even though this mode of operation resembles that of a noise thermometer, our device indicates the sensed temperature directly through a change in the phase of a microwave probe signal instead of relying on rectification with external electronics. Using a standard HEMT preamplifier, we achieve a noise-equivalent temperature of < 10 μK/√Hz at 50 mK with a power dissipation below 1 fW.

In addition, we combine DC biasing of the junction with microwave probing for a detailed study of the nonlinear junction-environment interactions. We observe strong modulation of the internal quality factor of the resonator, indicating stimulated microwave emission by the junction. All features are accurately described by a theoretical model with few free parameters.

[1] Phys. Rev. Applied 6, 024005 (2016).

*This work was funded through Academy of Finland Grants No. 2722195, No. 284594, and No. 285300, and the EAgLE project (EC-FP7-REGPOT-CT-2013-316014).

Presenters

  • Olli Saira

    • CalTech
    • California Institute of Technology

Authors

  • Olli Saira

    • CalTech
    • California Institute of Technology
  • Maciej Zgirski

    • Institute of Physics, Polish Academy of Sciences
  • Klaara Viisanen

    • Aalto University
  • Dmitry Golubev

    • Aalto University
  • Jukka Pekola

    • School of Science, Aalto University
    • Aalto University
    • Low Temperature Laboratory, Department of Applied Physics, Aalto University