English

Superconducting switch for fast on-chip routing of quantum microwave fields

Quantum Physics 2017-01-10 v1

Abstract

A switch capable of routing microwave signals at cryogenic temperatures is a desirable component for state-of-the-art experiments in many fields of applied physics, including but not limited to quantum information processing, communication and basic research in engineered quantum systems. Conventional mechanical switches provide low insertion loss but disturb operation of dilution cryostats and the associated experiments by heat dissipation. Switches based on semiconductors or microelectromechanical systems have a lower thermal budget but are not readily integrated with current superconducting circuits. Here we design and test an on-chip switch built by combining tunable transmission-line resonators with microwave beam-splitters. The device is superconducting and as such dissipates a negligible amount of heat. It is compatible with current superconducting circuit fabrication techniques, operates with a bandwidth exceeding 100MHz100\,\mathrm{MHz}, is capable of handling photon fluxes on the order of 105μs110^{5}\,\mu\mathrm{s}^{-1}, equivalent to powers exceeding 90dBm-90\,\mathrm{dBm}, and can be switched within approximately 68ns6-8\,\mathrm{ns}. We successfully demonstrate operation of the device in the quantum regime by integrating it on a chip with a single-photon source and using it to route non-classical itinerant microwave fields at the single-photon level.

Keywords

Cite

@article{arxiv.1606.01031,
  title  = {Superconducting switch for fast on-chip routing of quantum microwave fields},
  author = {M. Pechal and J. -C. Besse and M. Mondal and M. Oppliger and S. Gasparinetti and A. Wallraff},
  journal= {arXiv preprint arXiv:1606.01031},
  year   = {2017}
}
R2 v1 2026-06-22T14:16:45.210Z