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Constraints on ultra-high-energy cosmic ray sources from a search for neutrinos above 10 PeV with IceCube

Authors :
IceCube Collaboration
Aartsen, M. G.
Abraham, K.
Ackermann, M.
Adams, J.
Aguilar, J. A.
Ahlers, M.
Ahrens, M.
Altmann, D.
Andeen, K.
Anderson, T.
Ansseau, I.
Anton, G.
Archinger, M.
Argüelles, C.
Auffenberg, J.
Axani, S.
Bai, X.
Barwick, S. W.
Baum, V.
Bay, R.
Beatty, J. J.
Tjus, J. Becker
Becker, K. -H.
BenZvi, S.
Berghaus, P.
Berley, D.
Bernardini, E.
Bernhard, A.
Besson, D. Z.
Binder, G.
Bindig, D.
Bissok, M.
Blaufuss, E.
Blot, S.
Bohm, C.
Börner, M.
Bos, F.
Bose, D.
Böser, S.
Botner, O.
Braun, J.
Brayeur, L.
Bretz, H. -P.
Burgman, A.
Carver, T.
Casier, M.
Cheung, E.
Chirkin, D.
Christov, A.
Clark, K.
Classen, L.
Coenders, S.
Collin, G. H.
Conrad, J. M.
Cowen, D. F.
Cross, R.
Day, M.
de André, J. P. A. M.
De Clercq, C.
Rosendo, E. del Pino
Dembinski, H.
De Ridder, S.
Desiati, P.
de Vries, K. D.
de Wasseige, G.
de With, M.
DeYoung, T.
Díaz-Vélez, J. C.
di Lorenzo, V.
Dujmovic, H.
Dumm, J. P.
Dunkman, M.
Eberhardt, B.
Ehrhardt, T.
Eichmann, B.
Eller, P.
Euler, S.
Evenson, P. A.
Fahey, S.
Fazely, A. R.
Feintzeig, J.
Felde, J.
Filimonov, K.
Finley, C.
Flis, S.
Fösig, C. -C.
Franckowiak, A.
Friedman, E.
Fuchs, T.
Gaisser, T. K.
Gallagher, J.
Gerhardt, L.
Ghorbani, K.
Giang, W.
Gladstone, L.
Glagla, M.
Glüsenkamp, T.
Goldschmidt, A.
Golup, G.
Gonzalez, J. G.
Grant, D.
Griffith, Z.
Haack, C.
Ismail, A. Haj
Hallgren, A.
Halzen, F.
Hansen, E.
Hansmann, B.
Hansmann, T.
Hanson, K.
Hebecker, D.
Heereman, D.
Helbing, K.
Hellauer, R.
Hickford, S.
Hignight, J.
Hill, G. C.
Hoffman, K. D.
Hoffmann, R.
Holzapfel, K.
Hoshina, K.
Huang, F.
Huber, M.
Hultqvist, K.
In, S.
Ishihara, A.
Jacobi, E.
Japaridze, G. S.
Jeong, M.
Jero, K.
Jones, B. J. P.
Jurkovic, M.
Kappes, A.
Karg, T.
Karle, A.
Katz, U.
Kauer, M.
Keivani, A.
Kelley, J. L.
Kemp, J.
Kheirandish, A.
Kim, M.
Kintscher, T.
Kiryluk, J.
Kittler, T.
Klein, S. R.
Kohnen, G.
Koirala, R.
Kolanoski, H.
Konietz, R.
Köpke, L.
Kopper, C.
Kopper, S.
Koskinen, D. J.
Kowalski, M.
Krings, K.
Kroll, M.
Krückl, G.
Krüger, C.
Kunnen, J.
Kunwar, S.
Kurahashi, N.
Kuwabara, T.
Labare, M.
Lanfranchi, J. L.
Larson, M. J.
Lauber, F.
Lennarz, D.
Lesiak-Bzdak, M.
Leuermann, M.
Leuner, J.
Lu, L.
Lünemann, J.
Madsen, J.
Maggi, G.
Mahn, K. B. M.
Mancina, S.
Mandelartz, M.
Maruyama, R.
Mase, K.
Maunu, R.
McNally, F.
Meagher, K.
Medici, M.
Meier, M.
Meli, A.
Menne, T.
Merino, G.
Meures, T.
Miarecki, S.
Mohrmann, L.
Montaruli, T.
Moulai, M.
Nahnhauer, R.
Naumann, U.
Neer, G.
Niederhausen, H.
Nowicki, S. C.
Nygren, D. R.
Pollmann, A. Obertacke
Olivas, A.
O'Murchadha, A.
Palczewski, T.
Pandya, H.
Pankova, D. V.
Peiffer, P.
Penek, Ö.
Pepper, J. A.
Heros, C. Pérez de los
Pieloth, D.
Pinat, E.
Price, P. B.
Przybylski, G. T.
Quinnan, M.
Raab, C.
Rädel, L.
Rameez, M.
Rawlins, K.
Reimann, R.
Relethford, B.
Relich, M.
Resconi, E.
Rhode, W.
Richman, M.
Riedel, B.
Robertson, S.
Rongen, M.
Rott, C.
Ruhe, T.
Ryckbosch, D.
Rysewyk, D.
Sabbatini, L.
Herrera, S. E. Sanchez
Sandrock, A.
Sandroos, J.
Sarkar, S.
Satalecka, K.
Schimp, M.
Schlunder, P.
Schmidt, T.
Schoenen, S.
Schöneberg, S.
Schumacher, L.
Seckel, D.
Seunarine, S.
Soldin, D.
Song, M.
Spiczak, G. M.
Spiering, C.
Stahlberg, M.
Stanev, T.
Stasik, A.
Steuer, A.
Stezelberger, T.
Stokstad, R. G.
Stößl, A.
Ström, R.
Strotjohann, N. L.
Sullivan, G. W.
Sutherland, M.
Taavola, H.
Taboada, I.
Tatar, J.
Tenholt, F.
Ter-Antonyan, S.
Terliuk, A.
Tešić, G.
Tilav, S.
Toale, P. A.
Tobin, M. N.
Toscano, S.
Tosi, D.
Tselengidou, M.
Turcati, A.
Unger, E.
Usner, M.
Vandenbroucke, J.
van Eijndhoven, N.
Vanheule, S.
van Rossem, M.
van Santen, J.
Veenkamp, J.
Vehring, M.
Voge, M.
Vraeghe, M.
Walck, C.
Wallace, A.
Wallraff, M.
Wandkowsky, N.
Weaver, Ch.
Weiss, M. J.
Wendt, C.
Westerhoff, S.
Whelan, B. J.
Wickmann, S.
Wiebe, K.
Wiebusch, C. H.
Wille, L.
Williams, D. R.
Wills, L.
Wolf, M.
Wood, T. R.
Woolsey, E.
Woschnagg, K.
Xu, D. L.
Xu, X. W.
Xu, Y.
Yanez, J. P.
Yodh, G.
Yoshida, S.
Zoll, M.
Source :
Phys. Rev. Lett. 117, 241101 (2016) and Phys. Rev. Lett. 119, 259902 (2017) (Erratum)
Publication Year :
2016

Abstract

We report constraints on the sources of ultra-high-energy cosmic ray (UHECR) above $10^{9}$ GeV, based on an analysis of seven years of IceCube data. This analysis efficiently selects very high energy neutrino-induced events which have deposited energies from $\sim 10^6$ GeV to above $10^{11}$ GeV. Two neutrino-induced events with an estimated deposited energy of $(2.6 \pm 0.3) \times 10^6$ GeV, the highest neutrino energies observed so far, and $(7.7 \pm 2.0) \times 10^5$ GeV were detected. The atmospheric background-only hypothesis of detecting these events is rejected at 3.6$\sigma$. The hypothesis that the observed events are of cosmogenic origin is also rejected at $>$99% CL because of the limited deposited energy and the non-observation of events at higher energy, while their observation is consistent with an astrophysical origin. Our limits on cosmogenic neutrino fluxes disfavor the UHECR sources having cosmological evolution stronger than the star formation rate, e.g., active galactic nuclei and $\gamma$-ray bursts, assuming proton-dominated UHECRs. Constraints on UHECR sources including mixed and heavy UHECR compositions are obtained for models of neutrino production within UHECR sources. Our limit disfavors a significant part of parameter space for active galactic nuclei and new-born pulsar models.<br />Comment: The erratum is bundled with the original published version of the letter together with supplemental materials

Details

Database :
arXiv
Journal :
Phys. Rev. Lett. 117, 241101 (2016) and Phys. Rev. Lett. 119, 259902 (2017) (Erratum)
Publication Type :
Report
Accession number :
edsarx.1607.05886
Document Type :
Working Paper
Full Text :
https://doi.org/10.1103/PhysRevLett.117.241101,