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Millimeter-Wave Four-Wave Mixing via Kinetic Inductance for Quantum Devices

Quantum Physics 2020-02-26 v1 Mesoscale and Nanoscale Physics Applied Physics

Abstract

Millimeter-wave superconducting devices offer a platform for quantum experiments at temperatures above 1 K, and new avenues for studying light-matter interactions in the strong coupling regime. Using the intrinsic nonlinearity associated with kinetic inductance of thin film materials, we realize four-wave mixing at millimeter-wave frequencies, demonstrating a key component for superconducting quantum systems. We report on the performance of niobium nitride resonators around 100 GHz, patterned on thin (20-50 nm) films grown by atomic layer deposition, with sheet inductances up to 212 pH/square and critical temperatures up to 13.9 K. For films thicker than 20 nm, we measure quality factors from 11-6×1046\times 10^4, likely limited by two-level systems. Finally we measure degenerate parametric conversion for a 95 GHz device with a forward efficiency up to +16 dB, paving the way for the development of nonlinear quantum devices at millimeter-wave frequencies.

Keywords

Cite

@article{arxiv.1909.01487,
  title  = {Millimeter-Wave Four-Wave Mixing via Kinetic Inductance for Quantum Devices},
  author = {Alexander Anferov and Aziza Suleymanzade and Andrew Oriani and Jonathan Simon and David I. Schuster},
  journal= {arXiv preprint arXiv:1909.01487},
  year   = {2020}
}

Comments

13 pages, 9 figures including supplementary materials