Long-baseline neutrino oscillation physics potential of the DUNE experiment: DUNE Collaboration
Authors
Abi, B
Acciarri, R
Acero, MA
Adamov, G
Adams, D
Adinolfi, M
Ahmad, Z
Ahmed, J
Alion, T
Monsalve, SA
Alt, C
Anderson, J
Andreopoulos, C
Andrews, MP
Andrianala, F
Andringa, S
Ankowski, A
Antonova, M
Antusch, S
Aranda-Fernandez, A
Ariga, A
Arnold, LO
Arroyave, MA
Asaadi, J
Aurisano, A
Aushev, V
Autiero, D
Azfar, F
Back, H
Back, JJ
Backhouse, C
Baesso, P
Bagby, L
Bajou, R
Balasubramanian, S
Baldi, P
Bambah, B
Barao, F
Barenboim, G
Barker, GJ
Barkhouse, W
Barnes, C
Barr, G
Monarca, JB
Barros, N
Barrow, JL
Bashyal, A
Basque, V
Bay, F
Alba, JLB
Beacom, JF
Bechetoille, E
Behera, B
Bellantoni, L
Bellettini, G
Bellini, V
Beltramello, O
Belver, D
Benekos, N
Neves, FB
Berger, J
Berkman, S
Bernardini, P
Berner, RM
Berns, H
Bertolucci, S
Betancourt, M
Bezawada, Y
Bhattacharjee, M
Bhuyan, B
Biagi, S
Bian, J
Biassoni, M
Biery, K
Bilki, B
Bishai, M
Bitadze, A
Blake, A
Siffert, BB
Blaszczyk, FDM
Blazey, GC
Blucher, E
Boissevain, J
Bolognesi, S
Bolton, T
Bonesini, M
Bongrand, M
Bonini, F
Booth, A
Booth, C
Bordoni, S
Borkum, A
Boschi, T
Bostan, N
Bour, P
Boyd, SB
Boyden, D
Bracinik, J
Braga, D
Brailsford, D
Publication Date
2020Journal Title
European Physical Journal C
ISSN
1434-6044
Publisher
Springer Science and Business Media LLC
Volume
80
Issue
10
Language
en
Type
Article
This Version
VoR
Metadata
Show full item recordCitation
Abi, B., Acciarri, R., Acero, M., Adamov, G., Adams, D., Adinolfi, M., Ahmad, Z., et al. (2020). Long-baseline neutrino oscillation physics potential of the DUNE experiment: DUNE Collaboration. European Physical Journal C, 80 (10) https://doi.org/10.1140/epjc/s10052-020-08456-z
Abstract
The sensitivity of the Deep Underground Neutrino Experiment (DUNE) to
neutrino oscillation is determined, based on a full simulation, reconstruction,
and event selection of the far detector and a full simulation and parameterized
analysis of the near detector. Detailed uncertainties due to the flux
prediction, neutrino interaction model, and detector effects are included. DUNE
will resolve the neutrino mass ordering to a precision of 5$\sigma$, for all
$\delta_{\mathrm{CP}}$ values, after 2 years of running with the nominal
detector design and beam configuration. It has the potential to observe
charge-parity violation in the neutrino sector to a precision of 3$\sigma$
(5$\sigma$) after an exposure of 5 (10) years, for 50\% of all
$\delta_{\mathrm{CP}}$ values. It will also make precise measurements of other
parameters governing long-baseline neutrino oscillation, and after an exposure
of 15 years will achieve a similar sensitivity to $\sin^{2} 2\theta_{13}$ to
current reactor experiments.
Keywords
hep-ex, hep-ex, hep-ph
Identifiers
s10052-020-08456-z, 8456
External DOI: https://doi.org/10.1140/epjc/s10052-020-08456-z
This record's URL: https://www.repository.cam.ac.uk/handle/1810/329776
Rights
Licence:
http://creativecommons.org/licenses/by/4.0/
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