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Axion dark matter search with a photonic bandgap cavity haloscope and dielectric tuning rod over 10.25-10.45 GHz

Authors: Morgan Lynn (1), Ankur Agrawal (1), (2), Arjun Ghosh (3), Sara Sussman (4), Steven G. Johnson (5), David I. Schuster (1), (2), (6), (7), and Aaron S. Chou (4), (1) ((1) Department of Physics, University of Chicago, (2) James Franck Institute, University of Chicago, (3) Department of Astronomy and Astrophysics, University of Chicago, Chicago, (4) Fermi National Accelerator Laboratory, (5) Department of Mathematics, Massachusetts Institute of Technology, (6) Pritzker School of Molecular Engineering, University of Chicago, (7) Department of Physics and Applied Physics, Stanford University)Published: 2026-08-07Paper ID: 2608.07718Category: astro-ph.COLicense: CC BY 4.0

Abstract

We report the development of a new widely tunable cavity and demonstrate its use in a search for dark matter axions. We achieve unloaded quality factors above $10^{5}$, roughly $25\times$ larger than a bare copper cavity at the same frequency, using concentric sapphire shells to reduce Ohmic losses on the cavity barrel. A rotating sapphire rod tunes our cavity mode over the $10.1-11.7$ GHz range, approximately $16\%$ of its resonant frequency. Using an amplified receiver chain, we demonstrate sensitivity to new axion parameter space by tuning the cavity over the $200$ MHz range between $10.25-10.45$ GHz (42.4 - 43.2, $\mu$eV) to constrain the axion-to-photon coupling to $|g_{a\gamma\gamma}|$ $\leq$ 1 $\times$ $10^{-12}$ ${GeV}^{-1}$. This cavity can scan its tuning range about $9$ times faster compared to a bare copper cavity when paired with a photon counting device, laying the groundwork for a definitive search for the QCD axion over $10.1-11.7$ GHz.

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