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Argonne National Laboratory Argonne IL 60439... 1 Banaras Hindu University Varanasi 221 005 India 1 Beykent University Istanbul Turkey 1 Boston University Boston MA 02215 USA 1 Brookhaven National Laboratory Upton NY 1197... 1 CEA Saclay IRFU Institut de Recherche sur le... 1 CERN The European Organization for Nuclear R... 1 CIEMAT Centro de Investigaciones Energéticas... 1 California Institute of Technology Pasadena ... 1 Central University of South Bihar Gaya 82423... 1 Centro Brasileiro de Pesquisas Físicas Rio d... 1 Centro de Investigación y de Estudios Avanza... 1 Chung Ang University Seoul 06974 South Korea 1 Chungnam National University Daejeon 34134 S... 1 Colorado State University Fort Collins CO 80... 1 Columbia University New York NY 10027 USA 1 Czech Technical University 115 19 Prague 1 C... 1 Dakota State University Madison SD 57042 USA 1 Daresbury Laboratory Cheshire WA4 4AD UK 1 Drexel University Philadelphia PA 19104 USA 1
- Publikační typ
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PubMed
34720713
PubMed Central
PMC8550327
DOI
10.1140/epjc/s10052-021-09007-w
PII: 9007
Knihovny.cz E-zdroje
The Deep Underground Neutrino Experiment (DUNE) will be a powerful tool for a variety of physics topics. The high-intensity proton beams provide a large neutrino flux, sampled by a near detector system consisting of a combination of capable precision detectors, and by the massive far detector system located deep underground. This configuration sets up DUNE as a machine for discovery, as it enables opportunities not only to perform precision neutrino measurements that may uncover deviations from the present three-flavor mixing paradigm, but also to discover new particles and unveil new interactions and symmetries beyond those predicted in the Standard Model (SM). Of the many potential beyond the Standard Model (BSM) topics DUNE will probe, this paper presents a selection of studies quantifying DUNE's sensitivities to sterile neutrino mixing, heavy neutral leptons, non-standard interactions, CPT symmetry violation, Lorentz invariance violation, neutrino trident production, dark matter from both beam induced and cosmogenic sources, baryon number violation, and other new physics topics that complement those at high-energy colliders and significantly extend the present reach.
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Po ukončení testovacího provozu bude odkaz přesměrován adresu produkční verze portálu Medvik.