Broad Spectrum Quantum Frequency Conversion with Kinetic Inductance Superconducting Metastructures

ORAL

Abstract

Quantum frequency converters (QFCs) play a critical role in bridging the frequency gap between quantum information carriers. QFCs in the microwave band are particularly important for superconducting quantum processors, but their operating bandwidth is often strongly limited. Here, we present a multimode kinetic metastructure for parametric quantum frequency conversion between broadly spanning frequency modes. This device comprises a chain of asymmetric kinetic inductance grids designed to deliver efficient three-wave mixing nonlinearity. We demonstrate near-unity conversion efficiency among broadly distributed modes, and the mode frequency is continuously tunable by controlling the external magnetic field strength, making it ideally suited for quantum computing and communication applications requiring flexible and efficient frequency conversion.

*This research was funded in part by the US Department of Energy Co-design Center for Quantum Advantage (C2QA) under Contract No. DE-SC0012704, the Defense Advanced Research Projects Agency under cooperative agreement HR0011-24-2-0346, and by the Air Force Office of Sponsored Research MURI grant under contract number FA9550-23-1-0338.

Presenters

  • Yufeng Wu

    • Yale University

Authors

  • Yufeng Wu

    • Yale University
  • Chaofan Wang

    • Yale University
  • Danqing Wang

    • Yale University
  • Mingrui Xu

    • Yale University
  • Yiyu Zhou

    • Yale University
  • Hong X Tang

    • Yale University