Parametrically enhanced interactions and non-trivial bath dynamics in a photon-pressure Kerr amplifier
Ines C. Rodrigues, Gary A. Steele, and Daniel Bothner

TL;DR
This paper explores how Kerr nonlinearities and Josephson parametric amplification can enhance photon-pressure coupling in superconducting circuits, leading to improved measurement precision and novel bath dynamics in RF quantum photonics.
Contribution
It demonstrates Kerr-based enhancement of photon-pressure coupling and reveals non-trivial bath dynamics due to a two-stage amplification process.
Findings
Increased photon-pressure coupling rate by an order of magnitude.
Reduced measurement imprecision through intracavity amplification.
Observed non-trivial bath dynamics affecting RF mode cooling.
Abstract
Photon-pressure coupling between two superconducting circuits is a promising platform for investigating radiation-pressure coupling in novel parameter regimes and for the development of radio-frequency (RF) quantum photonics and quantum-limited RF sensing. So far, the intrinsic Josephson nonlinearity of photon-pressure coupled circuits has not been considered a potential resource for enhanced devices or novel experimental schemes. Here, we implement photon-pressure coupling between a RF circuit and a microwave cavity containing a superconducting quantum interference device (SQUID) which can be operated as a Josephson parametric amplifier (JPA). We demonstrate a Kerr-based enhancement of the photon-pressure single-photon coupling rate and an increase of the cooperativity by one order of magnitude in the amplifier regime. In addition, we characterize the upconverted and Kerr-amplified…
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Taxonomy
TopicsMechanical and Optical Resonators · Advanced Fiber Laser Technologies · Quantum Information and Cryptography
