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Precise measurement of2νββdecay of¹⁰⁰ Mo with the CUPID-Mo detection technology
by
Schmidt, B
, Pessina, G
, Sanglard, V
, Weber, M
, Misiak, D
, Previtali, E
, Tretyak, VI
, Cardani, L
, Elkhoury, E
, Rozov, S
, Pattavina, L
, Peng, H
, Ouellet, JL
, Billard, J
, Polischuk, OG
, Borovlev, Yu A
, Shen, Y
, Helis, DL
, Briere, M
, Umatov, VI
, Charlieux, F
, Marcillac, P de
, Siebenborn, B
, Juillard, A
, Casali, N
, Fujikawa, BK
, Makarov, EP
, Poda, DV
, Beretta, M
, Kotila, J
, Redon, Th
, Bergé, L
, Dafinei, I
, Winslow, L
, Singh, V
, Zolotarova, AS
, Bellini, F
, Navick, X-F
, Combarieu, M de
, Novati, V
, Schäffner, K
, Xue, M
, Pari, P
, Nones, C
, Cazes, A
, Shlegel, VN
, Benoît, A
, Vagneron, L
, Danevich, FA
, Huang, HZ
, Ma, L
, Velázquez, M
, Ferri, F
, Tomei, C
, Augier, C
, Pagnanini, L
, Kobychev, VV
, Pavan, M
, Welliver, B
, Barabash, AS
, Gironi, L
, Olivieri, E
, Kleifges, M
, Huang, R
, Leder, A
, Brudanin, V
, Giuliani, A
, Johnston, J
, Guerard, E
, Benato, G
, Pirro, S
, Khalife, H
, Marnieros, S
, Loaiza, P
, Marini, L
, Konovalov, SI
, Eitel, K
, Grigorieva, VD
, Gascon, J
, Kolomensky, Yu G
, Jesus, M De
, Bourgeois, Ch
, Chapellier, M
, Armengaud, E
, Dumoulin, L
, Paul, B
, Rusconi, C
, Yakushev, E
, Camus, P
, Gros, M
in
100Mo
/ double-beta decay
/ low counting experiment
/ low temperature detector
2020
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Precise measurement of2νββdecay of¹⁰⁰ Mo with the CUPID-Mo detection technology
by
Schmidt, B
, Pessina, G
, Sanglard, V
, Weber, M
, Misiak, D
, Previtali, E
, Tretyak, VI
, Cardani, L
, Elkhoury, E
, Rozov, S
, Pattavina, L
, Peng, H
, Ouellet, JL
, Billard, J
, Polischuk, OG
, Borovlev, Yu A
, Shen, Y
, Helis, DL
, Briere, M
, Umatov, VI
, Charlieux, F
, Marcillac, P de
, Siebenborn, B
, Juillard, A
, Casali, N
, Fujikawa, BK
, Makarov, EP
, Poda, DV
, Beretta, M
, Kotila, J
, Redon, Th
, Bergé, L
, Dafinei, I
, Winslow, L
, Singh, V
, Zolotarova, AS
, Bellini, F
, Navick, X-F
, Combarieu, M de
, Novati, V
, Schäffner, K
, Xue, M
, Pari, P
, Nones, C
, Cazes, A
, Shlegel, VN
, Benoît, A
, Vagneron, L
, Danevich, FA
, Huang, HZ
, Ma, L
, Velázquez, M
, Ferri, F
, Tomei, C
, Augier, C
, Pagnanini, L
, Kobychev, VV
, Pavan, M
, Welliver, B
, Barabash, AS
, Gironi, L
, Olivieri, E
, Kleifges, M
, Huang, R
, Leder, A
, Brudanin, V
, Giuliani, A
, Johnston, J
, Guerard, E
, Benato, G
, Pirro, S
, Khalife, H
, Marnieros, S
, Loaiza, P
, Marini, L
, Konovalov, SI
, Eitel, K
, Grigorieva, VD
, Gascon, J
, Kolomensky, Yu G
, Jesus, M De
, Bourgeois, Ch
, Chapellier, M
, Armengaud, E
, Dumoulin, L
, Paul, B
, Rusconi, C
, Yakushev, E
, Camus, P
, Gros, M
in
100Mo
/ double-beta decay
/ low counting experiment
/ low temperature detector
2020
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Precise measurement of2νββdecay of¹⁰⁰ Mo with the CUPID-Mo detection technology
by
Schmidt, B
, Pessina, G
, Sanglard, V
, Weber, M
, Misiak, D
, Previtali, E
, Tretyak, VI
, Cardani, L
, Elkhoury, E
, Rozov, S
, Pattavina, L
, Peng, H
, Ouellet, JL
, Billard, J
, Polischuk, OG
, Borovlev, Yu A
, Shen, Y
, Helis, DL
, Briere, M
, Umatov, VI
, Charlieux, F
, Marcillac, P de
, Siebenborn, B
, Juillard, A
, Casali, N
, Fujikawa, BK
, Makarov, EP
, Poda, DV
, Beretta, M
, Kotila, J
, Redon, Th
, Bergé, L
, Dafinei, I
, Winslow, L
, Singh, V
, Zolotarova, AS
, Bellini, F
, Navick, X-F
, Combarieu, M de
, Novati, V
, Schäffner, K
, Xue, M
, Pari, P
, Nones, C
, Cazes, A
, Shlegel, VN
, Benoît, A
, Vagneron, L
, Danevich, FA
, Huang, HZ
, Ma, L
, Velázquez, M
, Ferri, F
, Tomei, C
, Augier, C
, Pagnanini, L
, Kobychev, VV
, Pavan, M
, Welliver, B
, Barabash, AS
, Gironi, L
, Olivieri, E
, Kleifges, M
, Huang, R
, Leder, A
, Brudanin, V
, Giuliani, A
, Johnston, J
, Guerard, E
, Benato, G
, Pirro, S
, Khalife, H
, Marnieros, S
, Loaiza, P
, Marini, L
, Konovalov, SI
, Eitel, K
, Grigorieva, VD
, Gascon, J
, Kolomensky, Yu G
, Jesus, M De
, Bourgeois, Ch
, Chapellier, M
, Armengaud, E
, Dumoulin, L
, Paul, B
, Rusconi, C
, Yakushev, E
, Camus, P
, Gros, M
in
100Mo
/ double-beta decay
/ low counting experiment
/ low temperature detector
2020
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Precise measurement of2νββdecay of¹⁰⁰ Mo with the CUPID-Mo detection technology
Journal Article
Precise measurement of2νββdecay of¹⁰⁰ Mo with the CUPID-Mo detection technology
2020
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Overview
We report the measurement of the two-neutrino double-beta (2νββ) decay of ¹⁰⁰Mo to the ground state of ¹⁰⁰Ru using lithium molybdate (\\crystal) scintillating bolometers. The detectors were developed for the CUPID-Mo program and operated at the EDELWEISS-III low background facility in the Modane underground laboratory. From a total exposure of 42.235 kg×d, the half-life of ¹⁰⁰Mo is determined to be T_(1/2)^(2ν)=[7.12^(+0.18)_(-0.14) \\mathrm{(stat.)}{±}{0}.10 \\mathrm{(syst.)}{]}{×}10¹⁸ years. This is the most accurate determination of the 2νββ half-life of ¹⁰⁰Mo to date. We also confirm, with the statistical significance of >3σ, that the single-state dominance model of the 2νββ decay of ¹⁰⁰Mo is favored over the high-state dominance model.
Publisher
Springer
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