English

Technical Design Report for the AMoRE $0\nu\beta\beta$ Decay Search Experiment

Instrumentation and Detectors 2015-12-21 v1 High Energy Physics - Experiment

Abstract

The AMoRE (Advanced Mo-based Rare process Experiment) project is a series of experiments that use advanced cryogenic techniques to search for the neutrinoless double-beta decay of \mohundred. The work is being carried out by an international collaboration of researchers from eight countries. These searches involve high precision measurements of radiation-induced temperature changes and scintillation light produced in ultra-pure \Mo[100]-enriched and \Ca[48]-depleted calcium molybdate (48deplCa100MoO4\mathrm{^{48depl}Ca^{100}MoO_4}) crystals that are located in a deep underground laboratory in Korea. The \mohundred nuclide was chosen for this \zeronubb decay search because of its high QQ-value and favorable nuclear matrix element. Tests have demonstrated that \camo crystals produce the brightest scintillation light among all of the molybdate crystals, both at room and at cryogenic temperatures. 48deplCa100MoO4\mathrm{^{48depl}Ca^{100}MoO_4} crystals are being operated at milli-Kelvin temperatures and read out via specially developed metallic-magnetic-calorimeter (MMC) temperature sensors that have excellent energy resolution and relatively fast response times. The excellent energy resolution provides good discrimination of signal from backgrounds, and the fast response time is important for minimizing the irreducible background caused by random coincidence of two-neutrino double-beta decay events of \mohundred nuclei. Comparisons of the scintillating-light and phonon yields and pulse shape discrimination of the phonon signals will be used to provide redundant rejection of alpha-ray-induced backgrounds. An effective Majorana neutrino mass sensitivity that reaches the expected range of the inverted neutrino mass hierarchy, i.e., 20-50 meV, could be achieved with a 200~kg array of 48deplCa100MoO4\mathrm{^{48depl}Ca^{100}MoO_4} crystals operating for three years.

Keywords

Cite

@article{arxiv.1512.05957,
  title  = {Technical Design Report for the AMoRE $0\nu\beta\beta$ Decay Search Experiment},
  author = {V. Alenkov and P. Aryal and J. Beyer and R. S. Boiko and K. Boonin and O. Buzanov and N. Chanthima and M. K. Cheoun D. M. Chernyak and J. Choi and S. Choi and F. A. Danevich and M. Djamal and D. Drung and C. Enss and A. Fleischmann and A. M. Gangapshev and L. Gastaldo and Yu. M. Gavriljuk and A. M. Gezhaev and V. I. Gurentsov and D. H Ha and I. S. Hahn and J. H. Jang and E. J. Jeon and H. S. Jo and H. Joo and J. Kaewkhao and C. S. Kang and S. J. Kang and W. G Kang and S. Karki and V. V. Kazalov and N. Khanbekov and G. B. Kim and H. J. Kim and H. L. Kim and H. O. Kim and I. Kim and J. H. Kim and K. Kim and S. K. Kim and S. R. Kim and Y. D. Kim and Y. H. Kim and K. Kirdsiri and V. V. Kobychev and V. Kornoukhov and V. V. Kuzminov and H. J. Lee and H. S. Lee and J. H. Lee and J. M. Lee and J. Y. Lee and K. B. Lee and M. H. Lee and M. K. Lee and D. S. Leonard and J. Li and J. Li and Y. J. Li and P. Limkitjaroenporn and K. J. Ma and O. V. Mineev and V. M. Mokina and S. L. Olsen and S. I. Panasenko and I. Pandey and H. K. Park and H. S. Park and K. S. Park and D. V. Poda and O. G. Polischuk and P. Polozov and H. Prihtiadi and S. J. Ra and S. S. Ratkevich and G. Rooh and K. Siyeon and N. Srisittipokakun and J. H. So and J. K. Son and J. A. Tekueva and V. I. Tretyak and A. V. Veresnikova and R. Wirawan and S. P. Yakimenko and N. V. Yershov and W. S. Yoon and Y. S. Yoon and Q. Yue},
  journal= {arXiv preprint arXiv:1512.05957},
  year   = {2015}
}

Comments

93 pages

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