English

Probing Time Reversal Symmetry Breaking using a Nonlinear Superconducting Ring Resonator

Quantum Physics 2026-04-21 v2

Abstract

Time-reversal symmetry breaking (TRSB) has been central to detecting exotic phases of matter. Here, we leverage the circuit electrodynamics capabilities of superconducting devices to propose a novel scheme based on a multimode superconducting ring resonator for sensitive probing of TRSB in quantum materials. A ring resonator enables nonlinear cross-interactions between the modes which act as an built-in amplifiers to be harnessed for enhanced sensing. Using a driven-dissipative model, we explore the nonlinear dynamics of a two-mode superconducting circuit with self- and cross-Kerr nonlinearities under conditions near the bifurcation threshold. By mapping the optimal parameter regimes, we show that even when the photon occupation numbers are subjected to different initial conditions, they can be driven into a symmetric configuration which is broken even with weak TRSB. Through full quantum analysis we demonstrate that the Kerr-nonlinear interactions up-convert the magnetic effects of material-resonator hybrid system, enhancing the probing of TRSB. Our findings highlight the utility of superconducting microwave resonators outside of quantum information processing, as a tool for probing exotic states of matter.

Keywords

Cite

@article{arxiv.2505.21614,
  title  = {Probing Time Reversal Symmetry Breaking using a Nonlinear Superconducting Ring Resonator},
  author = {Nicolas Dirnegger and Marie Wesson and Arpit Arora and Ioannis Petrides and Jonathan B. Curtis and Emily M. Been and Amir Yacoby and Prineha Narang},
  journal= {arXiv preprint arXiv:2505.21614},
  year   = {2026}
}

Comments

14 pages, 8 figures

R2 v1 2026-07-01T02:44:14.332Z