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Core-collapse supernovae are among the most powerful explosions in the universe, emitting thermal neutrinos that carry away the majority of the gravitational binding energy released.
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2007
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2008
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2015
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2015
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M. Baldoncini, I. Callegari, G. Fiorentini, F. Mantovani, B. Ricci, V. Strati, and G. Xhixha, “Reference worldwide model for antineutrinos from reactors,” Phys. Rev. D
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2016
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2016
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2016
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F. M. Audcent-Ross, G. R. Meurer, O. I. Wong, Z. Zheng, D. Hanish, M. A. Zwaan, J. Bland-Hawthorn, A. Elagali, M. Meyer, M. E. Putman, E. V. Ryan-Weber, S. M. Sweet, D. A. Thilker, M. Seibert, R. Allen, M. A. Dopita, M. T. Doyle-Pegg, M. Drinkwater, H. C. Ferguson, K. C. Freeman, T. M. Heckman, R. C. Kennicutt, V. A. Kilborn, J. H. Kim, P. M. Knezek, B. Koribalski, R. C. Smith, L. Staveley-Smith, R. L. Webster, and J. K. Werk, “Near-identical star formation rate densities from H α \alpha and FUV at redshift zero,” Monthly Notices of the Royal Astronomical Society
2018
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2018
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2018
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2018
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L. Marti et al
2020
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2021
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A. L. Baxter, S. BenZvi, J. C. Jaimes, A. Coleiro, M. C. Molla, D. Dornic, S. Griswold, T. Goldhagen, A. Graf, A. Habig, R. Hill, S. Horiuchi, J. P. Kneller, M. Lamoureux, R. F. Lang, M. Lincetto, J. Migenda, M. Myers, E. O’Connor, A. Renshaw, K. Scholberg, A. Sheshukov, J. Tseng, C. Tunnell, N. Uberoi, and A. Worlikar, “Snewpy: A data pipeline from supernova simulations to neutrino signals,” Journal of Open Source Software
2021
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Borexino
2021
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2022
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2022
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2022
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2022
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Particle Data Group
2022
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2022
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2022
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K. Abe et al
2022
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A. Abusleme et al
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2023
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S. Anandagoda, D. H. Hartmann, C. L. Fryer, M. Ajello, A. Desai, A. L. Hungerford, and L.-S. The, “Cosmic Supernova Neutrino and Gamma-Ray Backgrounds in the MeV Regime,” Astrophys. J
2023
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2023
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Super-Kamiokande
2041
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