Accès ouvert déclaré
2020
article
Development of an analysis to probe the neutrino mass ordering with atmospheric neutrinos using three years of IceCube DeepCore data
M. G. Aartsen, M. Ackermann, J. Adams, J. A. Aguilar, M. Ahlers, M. Ahrens, Cyril Martin Alispach, K. Andeen, T. Anderson, I. Ansseau, G. Anton, C. Argüelles, J. Auffenberg, Spencer Axani, Paul Backes, H. Bagherpour, X. Bai, Anastasia Maria Barbano, S. W. Barwick, V. Baum, R. Bay, J. J. Beatty, K. H. Becker, J. Becker Tjus, S. BenZvi, D. Berley, E. Bernardini, D. Besson, G. Binder, D. Bindig, E. Blaufuss, Summer Blot, C. Böhm, M. Börner, S. Böser, O. Botner, Etienne Bourbeau, J. Bourbeau, Federica Bradascio, J. Braun, H.-P. Bretz, S. Bron, Jannes Brostean-Kaiser, A. Burgman, Raffaela Busse, T. Carver, E. Cheung, D. Chirkin, K. Clark, Lew Classen, G. H. Collin, J. M. Conrad, Paul Coppin, Pablo Correa, D. F. Cowen, R. Cross, Pranav Dave, J. P. A. M. de André, C. De Clercq, James DeLaunay, H.-P. Dembinski, Kunal Deoskar, S. De Ridder, P. Desiati, K. D. de Vries, G. de Wasseige, M. de With, T. DeYoung, A. F. Díaz, J. C. Díaz–Vélez, Hrvoje Dujmović, M. Dunkman, Emily Dvorak, B. Eberhardt, Thomas Ehrhardt, B. Eichmann, P. Eller, J. J. Evans, P. A. Evenson, S. Fahey, A. R. Fazely, J. Felde, K. Filimonov, C. Finley, A. Franckowiak, Edward Friedman, Alexander Fritz, T. K. Gaisser, J. S. Gallagher, Erik Ganster, S. Garrappa, L. Gerhardt, K. Ghorbani, Theo Glauch, T. Glüsenkamp, A. Goldschmidt, J. G. González, D. Grant, Z. Griffith, M. Günder, Mehmet Gündüz, Christian Haack, A. Hallgren, L. Halve, F. Halzen, K. Hanson, D. Hebecker, D. Heereman, K. Helbing, R. Hellauer, Felix Henningsen, S. Hickford, J. Hignight, G. C. Hill, K. D. Hoffman, R. Hoffmann, Tobias Hoinka, Benjamin Hokanson-Fasig, K. Hoshina, F. Huang, M. E. Huber, K. Hultqvist, Mirco Hünnefeld, Raamis Hussain, S. In, N. Iovine, A. Ishihara, E. Jacobi, G. S. Japaridze, Minjin Jeong, K. Jero, B. J. P. Jones, Woosik Kang, A. Kappes, David Kappesser, T. Karg, Martina Karl, A. Karle, U. Katz, M. Kauer, J. L. Kelley, Ali Kheirandish, J. Kim, T. Kintscher, J. Kiryluk, T. Kittler, Ramesh Koirala, H. Kolanoski, L. Köpke, Claudio Kopper, S. Kopper, D. J. Koskinen, M. Kowalski, K. Krings, G. Krückl, N. Kulacz, S. Kunwar, N. Kurahashi, A. Kyriacou, M. Labare, J. L. Lanfranchi, M. J. Larson, Frederik Hermann Lauber, Jeffrey Lazar, M. Leuermann, Qinrui Liu, Elisa Lohfink, L. Lu, Francesco Lucarelli, J. Lünemann, William Luszczak, J. Madsen, G. Maggi, K. B. M. Mahn, Yuya Makino, K. Mallot, Sarah Mancina, Ioana Codrina Mariş, R. Maruyama, K. Mase, R. Maunu, K. Meagher, M. Medici, Andrés Medina, Maximilian Meier, S. Meighen-Berger, T. Menne, G. Merino, T. Meures, S. Miarecki, Jessie Micallef, G. Momenté, T. Montaruli, R. W. Moore, Marjon Moulai, R. Nagai, R. Nahnhauer, P. Nakarmi, Uwe Naumann, G. Neer, Hans Niederhausen, Sarah Nowicki, D. R. Nygren, A. Obertacke Pollmann, A. Olivas, A. O’Murchadha, Erin O’Sullivan, T. Palczewski, Hershal Pandya, D. V. Pankova, N. Park, P. Peiffer, C. Pérez de los Heros, D. Pieloth, E. Pinat, A. Pizzuto, M. Plum, P. B. Price, G. T. Przybylski, Christoph Raab, Amirreza Raissi, M. Rameez, L. Rauch, K. Rawlins, I. C. Rea, R. Reimann, B. Relethford, Giovanni Renzi, E. Resconi, W. Rhode, M. Richman, S. Robertson, Martin Rongen, C. Rott, T. Ruhe, D. Ryckbosch, D. Rysewyk, I. Safa, S. E. Sanchez Herrera, Alexander Sandrock, J. Sandroos, M. Santander, S. Sarkar, K. Satalecka, M. Schaufel, P. Schlunder, T. Schmidt, A. Schneider, J. Schneider, L. Schumacher, S. Sclafani, D. Seckel, S. Seunarine, M. Silva, R. Snihur, Jan Soedingrekso, D. Soldin, S. Söldner‐Rembold, M. Song, G. M. Spiczak, Christian Spiering, Juliana Stachurska, M. Stamatikos, T. Stanev, A. Stasik, Robert Stein, J. Stettner, A. Steuer, T. Stezelberger, R. G. Stokstad, A. Stößl, N. L. Strotjohann, Thomas Stuttard, G. W. Sullivan, M. Sutherland, I. Taboada, F. Tenholt, S. Ter–Antonyan, A. Terliuk, S. Tilav, L. Tomankova, Christoph Tönnis, S. Toscano, D. Tosi, M. Tselengidou, C. F. Tung, A. Turcati, R. Turcotte, Colin Turley, B. Ty, E. Unger, Martin Unland Elorrieta, M. Usner, J. Vandenbroucke, W. Van Driessche, D. van Eijk, N. van Eijndhoven, S. Vanheule, J. V. Santen, M. Vraeghe, C. Walck, A. Wallace, M. Wallraff, N. Wandkowsky, T. B. Watson, C. Weaver, M. J. Weiss, J. Weldert, Chris Wendt, Johannes Werthebach, S. Westerhoff, B. J. Whelan, N. Whitehorn, K. Wiebe, C. H. Wiebusch, L. Wille, D. R. Williams, L. Wills, Martin Wolf, J. Wood, T. R. Wood, K. Woschnagg, G. Wrede, Steven Wren, Dawei Xu, Xiaolin Xu, Y. Xu, G. Yodh, S. Yoshida, Tiantian Yuan
24Citations signalées, ce qui n’est pas une note de qualité
52Institutions déclarées
12Pays d’affiliation déclarés
Rattachement africain : nz, be, dk, se, ch, us, de, ca, kr, gb, au, jp.
Niveau de preuve : code pays fourni par la source.
Le résumé fourni par la source
Abstract The Neutrino Mass Ordering (NMO) remains one of the outstanding questions in the field of neutrino physics. One strategy to measure the NMO is to observe matter effects in the oscillation pattern of atmospheric neutrinos above $$\sim 1\,\mathrm {GeV}$$ ∼1GeV , as proposed for several next-generation neutrino experiments. Moreover, the existing IceCube DeepCore detector can already explore this type of measurement. We present the development and application of two independent analyses to search for the signature of the NMO with three years of DeepCore data. These analyses include a full treatment of systematic uncertainties and a statistically-rigorous method to determine the significance for the NMO from a fit to the data. Both analyses show that the dataset is fully compatible with both mass orderings. For the more sensitive analysis, we observe a preference for normal ordering with a p-value of $$p_\mathrm {IO} = 15.3\%$$ pIO=15.3% and $$\mathrm {CL}_\mathrm {s}=53.3\%$$ CLs=53.3% for the inverted ordering hypothesis, while the experimental results from both analyses are consistent within their uncertainties. Since the result is independent of the value of $$\delta _\mathrm {CP}$$ δCP and obtained from energies $$E_\nu \gtrsim 5\,\mathrm {GeV}$$ Eν≳5GeV , it is complementary to recent results from long-baseline experiments. These analyses set the groundwork for the future of this measurement with more capable detectors, such as the IceCube Upgrade and the proposed PINGU detector.
Ce résumé expose les affirmations des auteurs. BNTIC ne l’interprète pas comme une validation indépendante des résultats.
Le contrôle bibliographique ouvert
DOI retrouvé dans Crossref DOI retrouvé ; titre concordant.
- Titre Crossref
- Development of an analysis to probe the neutrino mass ordering with atmospheric neutrinos using three years of IceCube DeepCore data
- Date Crossref
- 01/01/2020
- Éditeur
- Springer Science and Business Media LLC
- Type
- journal-article
Ce recoupement confirme des métadonnées liées au DOI. Il ne confirme ni la méthode ni les conclusions de l’étude, et il ne compte pas comme une seconde source scientifique indépendante.
Les institutions déclarées
Une affiliation ne permet pas de déduire la nationalité d’un auteur.
Les sujets associés
Astrophysics and Cosmic PhenomenaNeutrino Physics ResearchParticle physics theoretical and experimental studies