Tunable and nonlinearity-enhanced dispersive-plus-dissipative coupling in photon-pressure circuits

M Mohamad Kazouini J Janis Peter Z Zisu Emily Guo B Benedikt Wilde K Kevin Uhl D Dieter Koelle R Reinhold Kleiner D Daniel Bothner

Abstract

Abstract Photon-pressure circuits are the circuit implementation of the cavity optomechanical Hamiltonian and discussed for qubit readout, low-frequency quantum photonics and dark matter axion detection. Due to the enormous design flexibility of superconducting circuits, photon-pressure systems provide fascinating possibilities to explore unusual parameter regimes of the optomechanical Hamiltonian. Here, we report the realization of a photon-pressure platform, in which a GHz circuit interacts with a MHz circuit via a magnetic-flux-tunable combination of dispersive and dissipative photon-pressure. In addition, both coupling rates are considerably enhanced by nonlinearities of the GHz-mode, which leads to the multi-photon coupling rates scaling stronger with the pump photon number n c than the usual $$\sqrt{{n}_{\mathrm{c}}}$$ n c dependence. We demonstrate that interference of the two interaction paths leads to a Fano-like response in photon-pressure induced transparency, and that the dynamical backaction is considerably modified compared to the dispersive case, including a parametric instability caused by a red-detuned pump tone.

Article Details

Volume / Issue Vol. 17, Issue 1
Published March 24, 2026
ISSN 2041-1723
Publisher Nature Portfolio

Journal Info

Nature Communications

Nature Portfolio

ISSN: 2041-1723 Open Access Life Sciences

Authors (8)

M

Mohamad Kazouini

J

Janis Peter

Z

Zisu Emily Guo

B

Benedikt Wilde

K

Kevin Uhl

D

Dieter Koelle

R

Reinhold Kleiner

D

Daniel Bothner