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    Gravitational wave signal and noise response of an optically levitated sensor in a Fabry-Pérot cavity

    Andrew Laeuger1,*, Shafaq Gulzar Elahi2,3, Shelby Klomp2, Jackson Larsen4, Jacob Sprague3, Zhiyuan Wang2, George Winstone2, Maddox Wroblewski2, Shane L. Larson5 et al.

    Andrew A. Geraci2,3 and Nancy Aggarwal4,†

    • *Contact author: alaeuger@caltech.edu
    • †Contact author: nqaggarwal@ucdavis.edu

    Phys. Rev. D 114, 064071 – Published 21 September, 2026

    DOI: https://doi.org/10.1103/mhz8-h774

    Abstract

    Optically levitated sensors inside a Fabry-Pérot cavity have been proposed for high-frequency gravitational-wave (GW) detection, though their configuration for gravitational wave sensitivity exhibits counterintuitive features. We provide a new detailed general relativistic derivation of the interaction between a gravitational wave and a levitated object in an optical cavity, demonstrating gauge independence of the observable response. We find a strong asymmetric dependence of the strain signal on trap position, maximized when the sensor is located near the input mirror, and provide an in-depth explanation of its origin from multiple gauge perspectives. A key new result of this work is the consequence of this asymmetry on the noise coupling: the coupling of input-mirror displacements to the strain signal can be highly suppressed relative to that of end-mirror displacements and common-mode mirror motion. These results clarify the physical origin of the gravitational wave interaction with such a sensor and establish crucial design principles for optical levitation based high-frequency GW detectors.

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