English

A low-loss ferrite circulator as a tunable chiral quantum system

Quantum Physics 2021-11-05 v2 Materials Science

Abstract

Ferrite microwave circulators allow one to control the directional flow of microwave signals and noise, and thus play a crucial role in present-day superconducting quantum technology. They are typically viewed as a black-box, and their internal structure is not specified, let alone used as a resource. In this work, we demonstrate a low-loss waveguide circulator constructed with single-crystalline yttrium iron garnet (YIG) in a 3D cavity, and analyze it as a multi-mode hybrid quantum system with coupled photonic and magnonic excitations. We show the coherent coupling of its chiral internal modes with integrated superconducting niobium cavities, and how this enables tunable non-reciprocal interactions between the intra-cavity photons. We also probe experimentally the effective non-Hermitian dynamics of this system and its effective non-reciprocal eigenmodes. The device platform provides a test bed for implementing non-reciprocal interactions in open-system circuit QED.

Keywords

Cite

@article{arxiv.2106.11283,
  title  = {A low-loss ferrite circulator as a tunable chiral quantum system},
  author = {Ying-Ying Wang and Sean van Geldern and Thomas Connolly and Yu-Xin Wang and Alexander Shilcusky and Alexander McDonald and Aashish A. Clerk and Chen Wang},
  journal= {arXiv preprint arXiv:2106.11283},
  year   = {2021}
}

Comments

8 pages of main text, 8 figures

R2 v1 2026-06-24T03:26:14.139Z