학술논문

Measurement of neutron-proton capture in the SNO+ water phase
Document Type
Working Paper
Author
Collaboration, The SNOAnderson, M. R.Andringa, S.Askins, M.Auty, D. J.Barros, N.Barão, F.Bayes, R.Beier, E. W.Bialek, A.Biller, S. D.Blucher, E.Bonventre, R.Boulay, M.Caden, E.Callaghan, E. J.Caravaca, J.Chauhan, D.Chen, M.Chkvorets, O.Cleveland, B.Cox, M. A.Depatie, M. M.Dittmer, J.Di Lodovico, F.Earle, A. D.Falk, E.Fatemighomi, N.Fischer, V.Fletcher, E.Ford, R.Frankiewicz, K.Gilje, K.Gooding, D.Grant, C.Grove, J.Hallin, A. L.Hallman, D.Hans, S.Hartnell, J.Harvey, P.Heintzelman, W. J.Helmer, R. L.Horne, D.Hreljac, B.Hu, J.Hussain, A. S. M.Inácio, A. S.Jillings, C. J.Kaptanoglu, T.Khaghani, P.Klein, J. R.Knapik, R.Kormos, L. L.Krar, B.Kraus, C.Krauss, C. B.Kroupova, T.Lam, I.Land, B. J.LaTorre, A.Lawson, I.Lebanowski, L.Leming, E. J.Li, A.Lidgard, J.Liggins, B.Lin, Y. H.Liu, Y.Lozza, V.Luo, M.Maguire, S.Maio, A.Manecki, S.Maneira, J.Martin, R. D.Marzec, E.Mastbaum, A.McCauley, N.McDonald, A. B.Mekarski, P.Meyer, M.Mills, C.Morton-Blake, I.Nae, S.Nirkko, M.Nolan, L. J.O'Keeffe, H. M.Gann, G. D. OrebiParnell, M. J.Paton, J.Peeters, S. J. M.Pershing, T.Pickard, L.Prior, G.Reichold, A.Riccetto, S.Richardson, R.Rigan, M.Rose, J.Rosero, R.Rost, P. M.Rumleskie, J.Semenec, I.Shaker, F.Sharma, M. K.Singh, K.Skensved, P.Smiley, M.Stringer, M. I.Svoboda, R.Tam, B.Tian, L.Tseng, J.Turner, E.Van Berg, R.Veinot, J. G. C.Virtue, C. J.Vázquez-Jáuregui, E.Walton, S. C.Wang, J.Ward, M.Weigand, J. J.Wilson, J. R.Woosaree, P.Wright, A.Yanez, J. P.Yeh, M.Zhang, T.Zhang, Y.Zuber, K.Zummo, A.
Source
Phys. Rev. C 102, 014002 (2020)
Subject
Physics - Instrumentation and Detectors
High Energy Physics - Experiment
Nuclear Experiment
Language
Abstract
The SNO+ experiment collected data as a low-threshold water Cherenkov detector from September 2017 to July 2019. Measurements of the 2.2-MeV $\gamma$ produced by neutron capture on hydrogen have been made using an Am-Be calibration source, for which a large fraction of emitted neutrons are produced simultaneously with a 4.4-MeV $\gamma$. Analysis of the delayed coincidence between the 4.4-MeV $\gamma$ and the 2.2-MeV capture $\gamma$ revealed a neutron detection efficiency that is centered around 50% and varies at the level of 1% across the inner region of the detector, which to our knowledge is the highest efficiency achieved among pure water Cherenkov detectors. In addition, the neutron capture time constant was measured and converted to a thermal neutron-proton capture cross section of $336.3^{+1.2}_{-1.5}$ mb.