Cavity Multimodes as an Array for High-Frequency Gravitational Waves
hep-ph, astro-ph.HE, astro-ph.IM, gr-qc, hep-ex
Submitted: 2026-01-06
Updated: 2026-09-19
Comments: 22 pages, 6 figures, 2 tables, accepted version in JCAP
License: http://creativecommons.org/licenses/by/4.0/
The gist: Microwave cavities operated in the presence of a background magnetic field provide a promising avenue for detecting high-frequency gravitational waves (HFGWs).
Terminology
Abstract
Microwave cavities operated in the presence of a background magnetic field provide a promising avenue for detecting high-frequency gravitational waves (HFGWs). We demonstrate for the first time that the distinct antenna patterns of multiple electromagnetic modes within a single cavity enable localization and reconstruction of key properties of an incoming HFGW signal, including its polarization ratio and frequency drift rate. Using a 9-cell cavity commonly employed in particle accelerators as a representative example, we analyze the time-domain response of 18 nearly degenerate modes, which can be sequentially excited by a frequency-drifting signal. The sensitivity is further enhanced by the number of available modes, in close analogy to the scaling achieved by a network of independent detectors, enabling sensitivity to astrophysically plausible binary sources.
Sources
- Observation of Gravitational Waves from a Binary Black Hole Merger
- Challenges and Opportunities of Gravitational Wave Searches at MHz to GHz Frequencies
- Challenges and Opportunities of Gravitational Wave Searches above 10 kHz
- Axial structure of the nucleon
- Electromagnetic response of a Gaussian beam to high-frequency relic gravitational waves in quintessential inflationary models
- Microwave apparatus for gravitational waves observation
- Gravitational Wave Detection with High Frequency Phonon Trapping Acoustic Cavities
- Detecting Planetary-mass Primordial Black Holes with Resonant Electromagnetic Gravitational Wave Detectors
- Detecting High-Frequency Gravitational Waves with Microwave Cavities
- A novel search for high-frequency gravitational waves with low-mass axion haloscopes
- Searches for New Particles, Dark Matter, and Gravitational Waves with SRF Cavities
- Comparing Instrument Spectral Sensitivity of Dissimilar Electromagnetic Haloscopes to Axion Dark Matter and High Frequency Gravitational Waves
- Electromagnetic field in a cavity induced by gravitational waves
- The future search for low-frequency axions and new physics with the FLASH resonant cavity experiment at Frascati National Laboratories
- MAGO$\,$2.0: Electromagnetic Cavities as Mechanical Bars for Gravitational Waves
- High-Frequency Gravitational Wave Detection via Optical Frequency Modulation
- Simultaneous Resonant and Broadband Detection of Ultralight Dark Matter and High-Frequency Gravitational Waves via Cavities and Circuits
- Symmetries and Selection Rules: Optimising Axion Haloscopes for Gravitational Wave Searches
- Novel high-frequency gravitational waves detection with split cavity
- A M\"ossbauer Scheme to Probe Gravitational Waves
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