Search for annihilating dark matter in the Sun with 3 years of IceCube dataIceCube Collaboration

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作者
M. G. Aartsen
M. Ackermann
J. Adams
J. A. Aguilar
M. Ahlers
M. Ahrens
D. Altmann
K. Andeen
T. Anderson
I. Ansseau
G. Anton
M. Archinger
C. Argüelles
J. Auffenberg
S. Axani
X. Bai
S. W. Barwick
V. Baum
R. Bay
J. J. Beatty
J. Becker Tjus
K.-H. Becker
S. BenZvi
D. Berley
E. Bernardini
A. Bernhard
D. Z. Besson
G. Binder
D. Bindig
M. Bissok
E. Blaufuss
S. Blot
C. Bohm
M. Börner
F. Bos
D. Bose
S. Böser
O. Botner
J. Braun
L. Brayeur
H.-P. Bretz
S. Bron
A. Burgman
T. Carver
M. Casier
E. Cheung
D. Chirkin
A. Christov
K. Clark
L. Classen
机构
[1] RWTH Aachen University,III. Physikalisches Institut
[2] University of Adelaide,Department of Physics
[3] University of Alaska Anchorage,Department of Physics and Astronomy
[4] Clark-Atlanta University,CTSPS
[5] Georgia Institute of Technology,School of Physics and Center for Relativistic Astrophysics
[6] Southern University,Department of Physics
[7] University of California,Department of Physics
[8] Lawrence Berkeley National Laboratory,Institut für Physik
[9] Humboldt-Universität zu Berlin,Fakultät für Physik & Astronomie
[10] Ruhr-Universität Bochum,Physikalisches Institut
[11] Universität Bonn,Science Faculty CP230
[12] Université Libre de Bruxelles,Dienst ELEM
[13] Vrije Universiteit Brussel (VUB),Department of Physics
[14] Massachusetts Institute of Technology,Department of Physics and Institute for Global Prominent Research
[15] Chiba University,Department of Physics and Astronomy
[16] University of Canterbury,Department of Physics
[17] University of Maryland,Department of Physics and Center for Cosmology and Astro
[18] Ohio State University,Particle Physics
[19] Ohio State University,Department of Astronomy
[20] University of Copenhagen,Niels Bohr Institute
[21] TU Dortmund University,Department of Physics
[22] Michigan State University,Department of Physics and Astronomy
[23] University of Alberta,Department of Physics
[24] Friedrich-Alexander-Universität Erlangen-Nürnberg,Erlangen Centre for Astroparticle Physics
[25] Université de Genève,Département de physique nucléaire et corpusculaire
[26] University of Gent,Department of Physics and Astronomy
[27] University of California,Department of Physics and Astronomy
[28] University of Kansas,Department of Physics and Astronomy
[29] University of Wisconsin,Department of Astronomy
[30] University of Wisconsin,Department of Physics and Wisconsin IceCube Particle Astrophysics Center
[31] University of Mainz,Institute of Physics
[32] Marquette University,Department of Physics
[33] Université de Mons,Physik
[34] Technische Universität München,department
[35] Westfälische Wilhelms-Universität Münster,Institut für Kernphysik
[36] University of Delaware,Department of Physics and Astronomy, Bartol Research Institute
[37] Yale University,Department of Physics
[38] University of Oxford,Department of Physics
[39] Drexel University,Department of Physics
[40] South Dakota School of Mines and Technology,Physics Department
[41] University of Wisconsin,Department of Physics
[42] Stockholm University,Department of Physics, Oskar Klein Centre
[43] Stony Brook University,Department of Physics and Astronomy
[44] Sungkyunkwan University,Department of Physics
[45] University of Toronto,Department of Physics
[46] University of Alabama,Department of Physics and Astronomy
[47] Pennsylvania State University,Department of Astronomy and Astrophysics
[48] Pennsylvania State University,Department of Physics
[49] University of Rochester,Department of Physics and Astronomy
[50] Uppsala University,Department of Physics and Astronomy
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摘要
We present results from an analysis looking for dark matter annihilation in the Sun with the IceCube neutrino telescope. Gravitationally trapped dark matter in the Sun’s core can annihilate into Standard Model particles making the Sun a source of  GeV neutrinos. IceCube is able to detect neutrinos with energies >100 GeV while its low-energy infill array DeepCore extends this to >10 GeV. This analysis uses data gathered in the austral winters between May 2011 and May 2014, corresponding to 532 days of livetime when the Sun, being below the horizon, is a source of up-going neutrino events, easiest to discriminate against the dominant background of atmospheric muons. The sensitivity is a factor of two to four better than previous searches due to additional statistics and improved analysis methods involving better background rejection and reconstructions. The resultant upper limits on the spin-dependent dark matter-proton scattering cross section reach down to 1.46×10-5\documentclass[12pt]{minimal} \usepackage{amsmath} \usepackage{wasysym} \usepackage{amsfonts} \usepackage{amssymb} \usepackage{amsbsy} \usepackage{mathrsfs} \usepackage{upgreek} \setlength{\oddsidemargin}{-69pt} \begin{document}$$1.46\times 10^{-5}$$\end{document} pb for a dark matter particle of mass 500 GeV annihilating exclusively into τ+τ-\documentclass[12pt]{minimal} \usepackage{amsmath} \usepackage{wasysym} \usepackage{amsfonts} \usepackage{amssymb} \usepackage{amsbsy} \usepackage{mathrsfs} \usepackage{upgreek} \setlength{\oddsidemargin}{-69pt} \begin{document}$$\tau ^{+}\tau ^{-}$$\end{document}particles. These are currently the most stringent limits on the spin-dependent dark matter-proton scattering cross section for WIMP masses above 50 GeV.
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