Cyclotron Radiation Emission Spectroscopy of Electrons from Tritium Beta Decay and $^{83\rm m}$Kr Internal Conversion

Project Collaboration,A. Ashtari Esfahani,S. Böser,N. Buzinsky,M. C. Carmona-Benitez,C. Claessens,L. de Viveiros, P. J. Doe,M. Fertl, J. A. Formaggio,J. K. Gaison, L. Gladstone,M. Guigue, J. Hartse,K. M. Heeger,X. Huyan,A. M. Jones,K. Kazkaz, B. H. LaRoque, M. Li, A. Lindman,E. Machado,A. Marsteller, C. Matthé,R. Mohiuddin,B. Monreal, R. Mueller, J. A. Nikkel,E. Novitski, N. S. Oblath, J. I. Peña,W. Pettus,R. Reimann, R. G. H. Robertson,D. Rosa De Jesús, G. Rybka, L. Saldaña, M. Schram, P. L. Slocum, J. Stachurska,Y. -H. Sun,P. T. Surukuchi, J. R. Tedeschi, A. B. Telles, F. Thomas,M. Thomas, L. A. Thorne, T. Thümmler,L. Tvrznikova,W. Van De Pontseele,B. A. VanDevender, J. Weintroub,T. E. Weiss, T. Wendler,A. Young, E. Zayas, A. Ziegler

arxiv(2023)

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摘要
Project 8 has developed a novel technique, Cyclotron Radiation Emission Spectroscopy (CRES), for direct neutrino mass measurements. A CRES-based experiment on the beta spectrum of tritium has been carried out in a small-volume apparatus. We provide a detailed account of the experiment, focusing on systematic effects and analysis techniques. In a Bayesian (frequentist) analysis, we measure the tritium endpoint as $18553^{+18}_{-19}$ ($18548^{+19}_{-19}$) eV and set upper limits of 155 (152) eV (90% C.L.) on the neutrino mass. No background events are observed beyond the endpoint in 82 days of running. We also demonstrate an energy resolution of $1.66\pm0.19$ eV in a resolution-optimized magnetic trap configuration by measuring $^{83\rm m}$Kr 17.8-keV internal-conversion electrons. These measurements establish CRES as a low-background, high-resolution technique with the potential to advance neutrino mass sensitivity.
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关键词
tritium beta decay,beta decay,electrons,emission,radiation
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