High-volume tunable resonator for axion searches above 7 GHz
arXiv:2402.01060 · doi:10.1103/PhysRevApplied.21.L041002
Abstract
We present results from the first experimental demonstration of a tunable thin-shell axion haloscope. This novel geometry decouples the overall volume of the cavity-based resonator from its resonant frequency, thereby evading the steep sensitivity degradation at high-frequencies. An aluminum L ( ) prototype which tunes from to GHz was fabricated and characterized at room temperature. An axion-sensitive, straightforwardly tunable mode is clearly identified with a room temperature quality factor, , of . The on-resonance -field distribution is mapped and found to agree with numerical calculations. Anticipating future cryogenic operation, we develop an alignment protocol relying only on rf measurements of the cavity, maintaining a form factor of across the full tuning range. These measurements demonstrate the feasibility of cavity-based haloscopes with operating volume . We discuss plans for future development and the parameters required for a thin-shell haloscope exploring the post-inflationary axion parameter space ( to GHz) at DFSZ sensitivity.
6 pages, 7 figures; references added, Table 2 updated, acknowledgments made more descriptive, grammar copy edits, and title updated to published version
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