English

Development of $^{100}$Mo-containing scintillating bolometers for a high-sensitivity neutrinoless double-beta decay search

Instrumentation and Detectors 2018-01-24 v2 Nuclear Experiment

Abstract

This paper reports on the development of a technology involving 100^{100}Mo-enriched scintillating bolometers, compatible with the goals of CUPID, a proposed next-generation bolometric experiment to search for neutrinoless double-beta decay. Large mass (\sim1~kg), high optical quality, radiopure 100^{100}Mo-containing zinc and lithium molybdate crystals have been produced and used to develop high performance single detector modules based on 0.2--0.4~kg scintillating bolometers. In particular, the energy resolution of the lithium molybdate detectors near the QQ-value of the double-beta transition of 100^{100}Mo (3034~keV) is 4--6~keV FWHM. The rejection of the α\alpha-induced dominant background above 2.6~MeV is better than 8σ\sigma. Less than 10~μ\muBq/kg activity of 232^{232}Th (228^{228}Th) and 226^{226}Ra in the crystals is ensured by boule recrystallization. The potential of 100^{100}Mo-enriched scintillating bolometers to perform high sensitivity double-beta decay searches has been demonstrated with only 10~kg×\timesd exposure: the two neutrino double-beta decay half-life of 100^{100}Mo has been measured with the up-to-date highest accuracy as T1/2T_{1/2} = [6.90 ±\pm 0.15(stat.) ±\pm 0.37(syst.)] ×\times 1018^{18}~yr. Both crystallization and detector technologies favor lithium molybdate, which has been selected for the ongoing construction of the CUPID-0/Mo demonstrator, containing several kg of 100^{100}Mo.

Keywords

Cite

@article{arxiv.1704.01758,
  title  = {Development of $^{100}$Mo-containing scintillating bolometers for a high-sensitivity neutrinoless double-beta decay search},
  author = {E. Armengaud and C. Augier and A. S. Barabash and J. W. Beeman and T. B. Bekker and F. Bellini and A. Benoît and L. Bergé and T. Bergmann and J. Billard and R. S. Boiko and A. Broniatowski and V. Brudanin and P. Camus and S. Capelli and L. Cardani and N. Casali and A. Cazes and M. Chapellier and F. Charlieux and D. M. Chernyak and M. de Combarieu and N. Coron and F. A. Danevich and I. Dafinei and M. De Jesus and L. Devoyon and S. Di Domizio and L. Dumoulin and K. Eitel and C. Enss and F. Ferroni and A. Fleischmann and N. Foerster and J. Gascon and L. Gastaldo and L. Gironi and A. Giuliani and V. D. Grigorieva and M. Gros and L. Hehn and S. Hervé and V. Humbert and N. V. Ivannikova and I. M. Ivanov and Y. Jin and A. Juillard and M. Kleifges and V. V. Kobychev and S. I. Konovalov and F. Koskas and V. Kozlov and H. Kraus and V. A. Kudryavtsev and M. Laubenstein and H. Le Sueur and M. Loidl and P. Magnier and E. P. Makarov and M. Mancuso and P. de Marcillac and S. Marnieros and C. Marrache-Kikuchi and S. Nagorny and X-F. Navick and M. O. Nikolaichuk and C. Nones and V. Novati and E. Olivieri and L. Pagnanini and P. Pari and L. Pattavina and M. Pavan and B. Paul and Y. Penichot and G. Pessina and G. Piperno and S. Pirro and O. Plantevin and D. V. Poda and E. Queguiner and T. Redon and M. Rodrigues and S. Rozov and C. Rusconi and V. Sanglard and K. Schäffner and S. Scorza and V. N. Shlegel and B. Siebenborn and O. Strazzer and D. Tcherniakhovski and C. Tomei and V. I. Tretyak and V. I. Umatov and L. Vagneron and Ya. V. Vasiliev and M. Velazquez and M. Vignati and M. Weber and E. Yakushev and A. S. Zolotarova},
  journal= {arXiv preprint arXiv:1704.01758},
  year   = {2018}
}

Comments

25 pages, 12 figures, 8 tables; submitted to EPJC