Export citation

Export citation

Choose format for download:

Download Citation

    Modeling frequency instability in high-quality resonant experiments

    Hao-Ran Cui*, Saarik Kalia†, and Zhen Liu‡

    • *Contact author: cui00159@umn.edu
    • †Contact author: kalias@umn.edu
    • ‡Contact author: zliuphys@umn.edu

    Phys. Rev. D 113, 052008 – Published 18 March, 2026

    DOI: https://doi.org/10.1103/w43x-xwh9

    Abstract

    Modern resonant sensing tools can achieve increasingly high quality factors, which correspond to extremely narrow linewidths. In such systems, time variation of the resonator’s natural frequency can potentially impact its ability to accumulate power and its resulting sensitivity. One such example is the Dark SRF experiment, which utilizes superconducting radio frequency (SRF) cavities with quality factors of Q∼1010. Microscopic deformations of the cavity lead to stochastic jittering of its resonant frequency with amplitude 20 times its linewidth. Naively, one may expect this to lead to a large suppression in accumulated power. In this work, we study in detail the effects of frequency instability on high-quality resonant systems, utilizing the Dark SRF experiment as a case study. We show that the timescale of jittering is crucial to determining its effect on power accumulation. Namely, when the resonant frequency varies sufficiently quickly, the system accumulates power as if there were no jittering at all. This implies that the sensitivity of a jittering resonator is comparable to that of a stable resonator. In the case of Dark SRF, we find that jittering only induces a ∼10% loss in power. Our results allow the dark-photon exclusion bound from Dark SRF’s pathfinder run to be refined, leading to a constraint that is an order of magnitude stronger than previously reported (corresponding to a signal-to-noise ratio that is four orders of magnitude larger). This result represents the world-leading constraint on dark photons over a wide range of masses below 6  μeV and translates to the best laboratory-based limits on the photon mass mγ<2.9×10−48  g.

    Physics Subject Headings (PhySH)

    See Also

    Improved Dark Photon Sensitivity from a Superconducting-Radio-Frequency-Cavity Experiment

    Saarik Kalia, Zhen Liu, Bianca Giaccone, Oleksandr Melnychuk, Roman Pilipenko, Asher Berlin, Anson Hook, Sergey Belomestnykh, Crispin Contreras-Martinez, Daniil Frolov, Timergali Khabiboulline, Yuriy Pischalnikov, Sam Posen, Oleg Pronitchev, Vyacheslav Yakovlev, Anna Grassellino, Roni Harnik, and Alexander Romanenko
    Phys. Rev. Lett. 136, 111802 (2026)

    Authorization Required

    We need you to provide your credentials before accessing this content.

    References (Subscription Required)

    Outline

    Information

    Sign In to Your Journals Account

    Filter

    Filter

    Article Lookup

    Enter a citation