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High-energy cosmic neutrinos carry unique information about the most energetic non-thermal sources in the Universe.
1901
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1901
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1901
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1901
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1903
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1966
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1966
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1969
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1975
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1979
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1983
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1993
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1994
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1997
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1998
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E. Waxman and J. N. Bahcall, “High-energy neutrinos from astrophysical sources: An Upper bound,”
1999
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E. Waxman and J. N. Bahcall, “Neutrino afterglow from gamma-ray bursts: Similar to
2000
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K. Mannheim, R. J. Protheroe, and J. P. Rachen, “On the cosmic ray bound for models of extragalactic neutrino production,”
2001
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J. N. Bahcall and E. Waxman, “High-energy astrophysical neutrinos: The Upper bound is robust,”
2001
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R. Engel, D. Seckel, and T. Stanev, “Neutrinos from propagation of ultrahigh-energy protons,”
2001
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P. Mészáros and E. Waxman, “TeV neutrinos from successful and choked gamma-ray bursts,”
2001
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A. Atoyan and C. D. Dermer, “High-energy neutrinos from photomeson processes in blazars,”
2001
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A. Levinson and E. Waxman, “Probing microquasars with TeV neutrinos,”
2001
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C. D. Dermer, “Neutrino, neutron, and cosmic ray production in the external shock model of gamma-ray bursts,”
2002
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C. Distefano, D. Guetta, E. Waxman, and A. Levinson, “Neutrino flux predictions for known galactic microquasars,”
2002
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S. Razzaque, P. Mészáros, and E. Waxman, “Neutrino tomography of gamma-ray bursts and massive stellar collapses,”
2003
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C. D. Dermer and A. Atoyan, “High energy neutrinos from gamma-ray bursts,”
2003
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J. Alvarez-Muniz and P. Mészáros, “High energy neutrinos from radio-quiet AGNs,”
2004
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D. Guetta, D. Hooper, J. Alvarez-Muniz, F. Halzen, and E. Reuveni, “Neutrinos from individual gamma-ray bursts in the BATSE catalog,”
2004
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S. Razzaque, P. Mészáros, and E. Waxman, “Neutrino signatures of the supernova-gamma-ray burst relationship,”
2004
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S. Razzaque, P. Mészáros, and E. Waxman, “TeV neutrinos from core collapse supernovae and hypernovae,”
2005
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S. Ando and J. F. Beacom, “Revealing the supernova-gamma-ray burst connection with TeV neutrinos,”
2005
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L. A. Anchordoqui, H. Goldberg, F. Halzen, and T. J. Weiler, “Neutrinos as a diagnostic of high energy astrophysical processes,”
2005
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A. Loeb and E. Waxman, “The Cumulative background of high energy neutrinos from starburst galaxies,”
2006
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K. Murase, K. Ioka, S. Nagataki, and T. Nakamura, “High Energy Neutrinos and Cosmic-Rays from Low-Luminosity Gamma-Ray Bursts?,”
2006
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K. Murase and S. Nagataki, “High energy neutrino emission and neutrino background from gamma-ray bursts in the internal shock model,”
2006
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K. Murase and S. Nagataki, “High Energy Neutrino Flash from Far-UV/X-ray Flares of Gamma-Ray Bursts,”
2006
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M. D. Kistler and J. F. Beacom, “Guaranteed and Prospective Galactic TeV Neutrino Sources,”
2006
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2007
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N. Gupta and B. Zhang, “Neutrino Spectra from Low and High Luminosity Populations of Gamma Ray Bursts,”
2007
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K. Murase, “High energy neutrino early afterglows gamma-ray bursts revisited,”
2007
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M. Kowalski and A. Mohr, “Detecting neutrino-transients with optical follow-up observations,”
2007
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A. Kappes, J. Hinton, C. Stegmann, and F. A. Aharonian, “Potential Neutrino Signals from Galactic Gamma-Ray Sources,”
2007
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D. F. Torres and F. Halzen, “LS I +61 303 as a potential neutrino source on the light of MAGIC results,”
2007
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L. A. Anchordoqui, J. F. Beacom, H. Goldberg, S. Palomares-Ruiz, and T. J. Weiler, “TeV
2007
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L. Evans and P. Bryant, “LHC Machine,”
2008
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2008
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2008
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2008
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2008
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J. J. Beatty and S. Westerhoff, “The Highest-Energy Cosmic Rays,”
2009
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2009
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2009
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2009
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2009
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2009
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X.-Y. Wang and Z.-G. Dai, “Prompt TeV neutrinos from dissipative photospheres of gamma-ray bursts,”
2009
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2009
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2010
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2010
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2010
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2010
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2010
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2011
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2011
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2011
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2011
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2016
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F. Halzen and A. Kheirandish, “High Energy Neutrinos from Recent Blazar Flares,”
2016
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2016
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2016
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K. Kotera and J. Silk, “Ultrahigh Energy Cosmic Rays and Black Hole Mergers,”
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2012
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M. Ahlers and F. Halzen, “Minimal Cosmogenic Neutrinos,”
2012
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2012
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Z. Li, “Note on the Normalization of Predicted GRB Neutrino Flux,”
2012
Cited alongside, same era.
S. Hummer, P. Baerwald, and W. Winter, “Neutrino Emission from Gamma-Ray Burst Fireballs, Revised,”
2012
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2012
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2013
Cited alongside, same era.
F. W. Stecker, “PeV neutrinos observed by IceCube from cores of active galactic nuclei,”
2013
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2016
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2016
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L. A. Anchordoqui, “Neutrino lighthouse powered by Sagittarius A* disk dynamo,”
2016
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A. Neronov and D. Semikoz, “Neutrinos from Extra-Large Hadron Collider in the Milky Way,”
2016
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2016
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2016
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S. Ando, M. R. Feyereisen, and M. Fornasa, “How bright can the brightest neutrino source be?,”
2017
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2017
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2017
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2017
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2017
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L. Dai and K. Fang, “Can tidal disruption events produce the IceCube neutrinos?,”
2017
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2017
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C. Lunardini and W. Winter, “High Energy Neutrinos from the Tidal Disruption of Stars,”
2017
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2017
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2017
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2017
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2017
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2017
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2017
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2017
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M. Ahlers and F. Halzen, “Opening a New Window onto the Universe with IceCube,”
2018
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2018
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2018
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P. Padovani, A. Turcati, and E. Resconi, “AGN outflows as neutrino sources: an observational test,”
2018
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2018
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E. Resconi, P. Padovani, S. Coenders, A. Turcati, P. Giommi, and L. Caccianiga, “The neutrino filter: connecting blazars with ultra high energy cosmic rays and astrophysical neutrinos,”
2018
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2018
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2018
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2018
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2018
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2018
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K. Murase, “New Prospects for Detecting High-Energy Neutrinos from Nearby Supernovae,”
2018
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2018
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2018
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2018
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2018
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2018
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2018
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2019
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K. Murase and M. Fukugita, “Energetics of High-Energy Cosmic Radiations,”
2019
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L. A. Anchordoqui, “Ultra-High-Energy Cosmic Rays,”
2019
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2019
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2019
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2019
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2019
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2019
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2065
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