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A combined maximum-likelihood analysis of the high-energy astrophysical neutrino flux measured with icecubeopen access

Authors
Aartsen, M.G.Abraham, K.Ackermann, M.Adams, J.Aguilar, J.A.Ahlers, M.Ahrens, M.Altmann, D.Anderson, T.Archinger, M.Arguelles, C.Arlen, T.C.Auffenberg, J.Bai, X.Barwick, S.W.Baum, V.Bay, R.Beatty, J.J.Tjus, J.B.Becker, K.-H.Beiser, E.Benzvi, S.Berghaus, P.Berley, D.Bernardini, E.Bernhard, A.Besson, D.Z.Binder, G.Bindig, D.Bissok, M.Blaufuss, E.Blumenthal, J.Boersma, D.J.Bohm, C.Börner, M.Bos, F.Bose, D.Böser, S.Botner, O.Braun, J.Brayeur, L.Bretz, H.-P.Brown, A.M.Buzinsky, N.Casey, J.Casier, M.Cheung, E.Chirkin, D.Christov, A.Christy, B.Clark, K.Classen, L.Coenders, S.Cowen, D.F.Silva, A.H.C.Daughhetee, J.Davis, J.C.Day, M.André, J.P.A.M.D.Clercq, C.D.Dembinski, H.Ridder, S.D.Desiati, P.Vries, K.D.D.Wasseige, G.D.With, M.D.Deyoung, T.Díaz-Vélez, J.C.Dumm, J.P.Dunkman, M.Eagan, R.Eberhardt, B.Ehrhardt, T.Eichmann, B.Euler, S.Evenson, P.A.Fadiran, O.Fahey, S.Fazely, A.R.Fedynitch, A.Feintzeig, J.Felde, J.Filimonov, K.Finley, C.Fischer-Wasels, T.Flis, S.Fuchs, T.Gaisser, T.K.Gaior, R.Gallagher, J.Gerhardt, L.Ghorbani, K.Gier, D.Gladstone, L.Glagla, M.Glüsenkamp, T.Goldschmidt, A.Golup, G.Gonzalez, J.G.Goodman, J.A.Góra, D.Grant, D.Gretskov, P.Groh, J.C.Gross, A.Ha, C.Haack, C.Ismail, A.H.Hallgren, A.Halzen, F.Hansmann, B.Hanson, K.Hebecker, D.Heereman, D.Helbing, K.Hellauer, R.Hellwig, D.Hickford, S.Hignight, J.Hill, G.C.Hoffman, K.D.Hoffmann, R.Holzapfel, K.Homeier, A.Hoshina, K.Huang, F.Huber, M.Huelsnitz, W.Hulth, P.O.Hultqvist, K.In, S.Ishihara, A.Jacobi, E.Japaridze, G.S.Jero, K.Jurkovic, M.Kaminsky, B.Kappes, A.Karg, T.Karle, A.Kauer, M.Keivani, A.Kelley, J.L.Kemp, J.Kheirandish, A.Kiryluk, J.Kläs, J.Klein, S.R.Kohnen, G.Kolanoski, H.Konietz, R.Koob, A.Köpke, L.Kopper, C.Kopper, S.Koskinen, D.J.Kowalski, M.Krings, K.Kroll, G.Kroll, M.Kunnen, J.Kurahashi, N.Kuwabara, T.Labare, M.Lanfranchi, J.L.Larson, M.J.Lesiak-Bzdak, M.Leuermann, M.Leuner, J.Lünemann, J.Madsen, J.Maggi, G.Mahn, K.B.M.Maruyama, R.Mase, K.Matis, H.S.Maunu, R.McNally, F.Meagher, K.Medici, M.Meli, A.Menne, T.Merino, G.Meures, T.Miarecki, S.Middell, E.Middlemas, E.Miller, J.Mohrmann, L.Montaruli, T.Morse, R.Nahnhauer, R.Naumann, U.Niederhausen, H.Nowicki, S.C.Nygren, D.R.Obertacke, A.Olivas, A.Omairat, A.O'Murchadha, A.Palczewski, T.Paul, L.Pepper, J.A.Heros, C.P.D.L.Pfendner, C.Pieloth, D.Pinat, E.Posselt, J.Price, P.B.Przybylski, G.T.Pütz, J.Quinnan, M.Rädel, L.Rameez, M.Rawlins, K.Redl, P.Reimann, R.Relich, M.Resconi, E.Rhode, W.Richman, M.Richter, S.Riedel, B.Robertson, S.Rongen, M.Rott, C.Ruhe, T.Ruzybayev, B.Ryckbosch, D.Saba, S.M.Sabbatini, L.Sander, H.-G.Sandrock, A.Sandroos, J.Sarkar, S.Schatto, K.Scheriau, F.Schimp, M.Schmidt, T.Schmitz, M.Schoenen, S.Schöneberg, S.Schönwald, A.Schukraft, A.Schulte, L.Seckel, D.Seunarine, S.Shanidze, R.Smith, M.W.E.Soldin, D.Spiczak, G.M.Spiering, C.Stahlberg, M.Stamatikos, M.Stanev, T.Stanisha, N.A.Stasik, A.Stezelberger, T.Stokstad, R.G.Stössl, A.Strahler, E.A.Ström, R.Strotjohann, N.L.Sullivan, G.W.Sutherland, M.Taavola, H.Taboada, I.Ter-Antonyan, S.Terliuk, A.Tešić, G.Tilav, S.Toale, P.A.Tobin, M.N.Tosi, D.Tselengidou, M.Unger, E.Usner, M.Vallecorsa, S.Vandenbroucke, J.Eijndhoven, N.V.Vanheule, S.Santen, J.V.Veenkamp, J.Vehring, M.Voge, M.Vraeghe, M.Walck, C.Wallace, A.Wallraff, M.Wandkowsky, N.Weaver, C.Wendt, C.Westerhoff, S.Whelan, B.J.Whitehorn, N.Wichary, C.Wiebe, K.Wiebusch, C.H.Wille, L.Williams, D.R.Wissing, H.Wolf, M.Wood, T.R.Woschnagg, K.Xu, D.L.Xu, X.W.Xu, Y.Yanez, J.P.Yodh, G.Yoshida, S.Zarzhitsky, P.Zoll, M.The IceCube Collaboration
Issue Date
Aug-2015
Publisher
Institute of Physics Publishing
Keywords
astroparticle physics; methods: data analysis; neutrinos
Citation
Astrophysical Journal, v.809, no.1
Journal Title
Astrophysical Journal
Volume
809
Number
1
URI
https://scholarworks.bwise.kr/cau/handle/2019.sw.cau/64496
DOI
10.1088/0004-637X/809/1/98
ISSN
0004-637X
1538-4357
Abstract
Evidence for an extraterrestrial flux of high-energy neutrinos has now been found in multiple searches with the IceCube detector. The first solid evidence was provided by a search for neutrino events with deposited energies ≳30 TeV and interaction vertices inside the instrumented volume. Recent analyses suggest that the extraterrestrial flux extends to lower energies and is also visible with throughgoing, νμ-induced tracks from the Northern Hemisphere. Here, we combine the results from six different IceCube searches for astrophysical neutrinos in a maximum-likelihood analysis. The combined event sample features high-statistics samples of shower-like and track-like events. The data are fit in up to three observables: energy, zenith angle, and event topology. Assuming the astrophysical neutrino flux to be isotropic and to consist of equal flavors at Earth, the all-flavor spectrum with neutrino energies between 25 TeV and 2.8 PeV is well described by an unbroken power law with best-fit spectral index -2.50 ± 0.09 and a flux at 100 TeV of (6.7-1.2 +1.1) × 10-18 GeV-1 s-1cm-2. Under the same assumptions, an unbroken power law with index -2 is disfavored with a significance of 3.8σ (p = 0.0066%) with respect to the best fit. This significance is reduced to 2.1σ (p = 1.7%) if instead we compare the best fit to a spectrum with index .2 that has an exponential cut-off at high energies. Allowing the electron-neutrino flux to deviate from the other two flavors, we find a νe fraction of 0.18 ± 0.11 at Earth. The sole production of electron neutrinos, which would be characteristic of neutron-decay-dominated sources, is rejected with a significance of 3.6σ (p = 0.014%). © 2015. The American Astronomical Society. All rights reserved.
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자연과학대학 (물리학과)
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