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arXiv · 2112.09979

Prospects for detecting axionlike particles at the Coherent CAPTAIN-Mills experiment

Abstract

We show results from the Coherent CAPTAIN Mills (CCM) 2019 engineering run which begin to constrain regions of parameter space for axion-like particles (ALPs) produced in electromagnetic particle showers in an 800 MeV proton beam dump, and further investigate the sensitivity of ongoing data-taking campaigns for the CCM200 upgraded detector. Based on beam-on background estimates from the engineering run, we make realistic extrapolations for background reduction based on expected shielding improvements, reduced beam width, and analysis-based techniques for background rejection. We obtain reach projections for two classes of signatures; ALPs coupled primarily to photons can be produced in the tungsten target via the Primakoff process, and then produce a gamma-ray signal in the Liquid Argon (LAr) CCM detector either via inverse Primakoff scattering or decay to a photon pair. ALPs with significant electron couplings have several additional production mechanisms (Compton scattering, $e^+e^-$ annihilation, ALP-bremsstrahlung) and detection modes (inverse Compton scattering, external $e^+e^-$ pair conversion, and decay to $e^+e^-$). In some regions, the constraint is marginally better than both astrophysical and terrestrial constraints. With the beginning of a three year run, CCM will be more sensitive to this parameter space by up to an order of magnitude for both ALP-photon and ALP-electron couplings. The CCM experiment will also have sensitivity to well-motivated parameter space of QCD axion models. It is only a recent realization that accelerator-based large volume liquid argon detectors designed for low energy coherent neutrino and dark matter scattering searches are also ideal for probing ALPs in the unexplored $\sim$MeV mass scale.

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A. A. Aguilar-Arevalo, D. S. M. Alves, S. Biedron, J. Boissevain, M. Borrego, L. Bugel, M. Chavez-Estrada, J. M. Conrad, R. L. Cooper, A. Diaz, J. R. Distel, J. C. D'Olivo, E. Dunton, B. Dutta, D. Fields, J. R. Gochanour, M. Gold, E. Guardincerri, E. C. Huang, N. Kamp, D. Kim, K. Knickerbocker, W. C. Louis, J. T. M. Lyles, R. Mahapatra, S. Maludze, J. Mirabal, N. Mishra, D. Newmark, P. deNiverville, V. Pandey, D. Poulson, H. Ray, E. Renner, T. J. Schaub, A. Schneider, M. H. Shaevitz, D. Smith, W. Sondheim, A. M. Szelc, C. Taylor, A. Thompson, W. H. Thompson, M. Tripathi, R. T. Thornton, R. Van Berg, R. G. Van de Water, S. Verma. 2021-12-18. Prospects for detecting axionlike particles at the Coherent CAPTAIN-Mills experiment. https://doi.org/10.1103/physrevd.107.095036

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