Low-noise amplifiers are of great importance in the field of quantum technologies. We study a thermally driven parametric amplifier based on a superconductor-insulator-graphene-insulator-superconductor (SIGIS) junction coupled to a superconducting microwave cavity. The strong non-linearity in the temperature dependence of our device leads to thermal self-modulation that produces impedance oscillations at frequencies around twice the angular cavity resonance frequency ωr. In particular, reactance modulation of the effective capacitance yields a gain of 18.6 dB over a frequency span of 125 kHz with a minimum noise temperature of TN=1.4 K. Our theoretical modelling gives insight into the exact mixing processes, confirmation of the electron-phonon coupling parameter and possible improvements of the studied system.
@article{arxiv.2408.11807,
title = {Low-noise parametric microwave amplifier based on self-heated nonlinear impedance with sub-nanosecond thermal response},
author = {Marco Will and Mohammad Tasnimul Haque and Yuvraj Chaudhry and Dmitry Golubev and Pertti Hakonen},
journal= {arXiv preprint arXiv:2408.11807},
year = {2024}
}
Comments
9 pages, 5 figures, v2 changes to fig 2 and fig.2 caption