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Performance of SK-Gd’s Upgraded Real-time Supernova Monitoring System

  • Y. Kashiwagi
  • , K. Abe
  • , C. Bronner
  • , Y. Hayato
  • , K. Hiraide
  • , K. Hosokawa
  • , K. Ieki
  • , M. Ikeda
  • , J. Kameda
  • , Y. Kanemura
  • , R. Kaneshima
  • , Y. Kataoka
  • , S. Miki
  • , S. Mine
  • , M. Miura
  • , S. Moriyama
  • , Y. Nakano
  • , M. Nakahata
  • , S. Nakayama
  • , Y. Noguchi
  • K. Sato, H. Sekiya, H. Shiba, K. Shimizu, M. Shiozawa, Y. Sonoda, Y. Suzuki, A. Takeda, Y. Takemoto, H. Tanaka, T. Yano, S. Han, T. Kajita, K. Okumura, T. Tashiro, T. Tomiya, X. Wang, S. Yoshida, P. Fernandez, L. Labarga, N. Ospina, B. Zaldivar, B. W. Pointon, E. Kearns, J. L. Raaf, L. Wan, T. Wester, J. Bian, N. J. Griskevich, S. Locke, M. B. Smy, H. W. Sobel, V. Takhistov, A. Yankelevich, J. Hill, M. C. Jang, S. H. Lee, D. H. Moon, R. G. Park, B. Bodur, K. Scholberg, C. W. Walter, A. Beauchêne, O. Drapier, A. Giampaolo, Th A. Mueller, A. D. Santos, P. Paganini, B. Quilain, R. Rogly, T. Nakamura, J. S. Jang, L. N. Machado, J. G. Learned, K. Choi, N. Iovine, S. Cao, L. H.V. Anthony, D. Martin, N. W. Prouse, M. Scott, A. A. Sztuc, Y. Uchida, V. Berardi, M. G. Catanesi, E. Radicioni, N. F. Calabria, A. Langella, G. De Rosa, G. Collazuol, F. Iacob, M. Mattiazzi, L. Ludovici, M. Gonin, L. Périssé, G. Pronost, C. Fujisawa, Y. Maekawa, Y. Nishimura, R. Okazaki, R. Akutsu, M. Friend, T. Hasegawa, T. Ishida, T. Kobayashi, M. Jakkapu, T. Matsubara, T. Nakadaira, K. Nakamura, Y. Oyama, K. Sakashita, T. Sekiguchi, T. Tsukamoto, N. Bhuiyan, G. T. Burton, F. Di Lodovico, J. Gao, A. Goldsack, T. Katori, J. Migenda, R. M. Ramsden, Z. Xie, S. Zsoldos, A. T. Suzuki, Y. Takagi, Y. Takeuchi, H. Zhong, J. Feng, L. Feng, J. R. Hu, Z. Hu, M. Kawaue, T. Kikawa, M. Mori, T. Nakaya, R. A. Wendell, K. Yasutome, S. J. Jenkins, N. McCauley, P. Mehta, A. Tarrant, Y. Fukuda, Y. Itow, H. Menjo, K. Ninomiya, Y. Yoshioka, J. Lagoda, S. M. Lakshmi, M. Mandal, P. Mijakowski, Y. S. Prabhu, J. Zalipska, M. Jia, J. Jiang, C. K. Jung, W. Shi, M. J. Wilking, C. Yanagisawa, M. Harada, Y. Hino, H. Ishino, Y. Koshio, F. Nakanishi, S. Sakai, T. Tada, T. Tano, T. Ishizuka, G. Barr, D. Barrow, L. Cook, S. Samani, D. Wark, A. Holin, F. Nova, S. Jung, B. S. Yang, J. Y. Yang, J. Yoo, J. E.P. Fannon, L. Kneale, M. Malek, J. M. McElwee, M. D. Thiesse, L. F. Thompson, S. T. Wilson, H. Okazawa, S. B. Kim, E. Kwon, J. W. Seo, I. Yu, A. K. Ichikawa, K. D. Nakamura, S. Tairafune, K. Nishijima, A. Eguchi, K. Nakagiri, Y. Nakajima, S. Shima, N. Taniuchi, E. Watanabe, M. Yokoyama, P. de Perio, S. Fujita, C. Jesús-Valls, K. Martens, K. M. Tsui, M. R. Vagins, J. Xia, M. Kuze, S. Izumiyama, R. Matsumoto, M. Ishitsuka, H. Ito, Y. Ommura, N. Shigeta, M. Shinoki, K. Yamauchi, T. Yoshida, R. Gaur, V. Gousy-Leblanc, M. Hartz, A. Konaka, X. Li, S. Chen, B. D. Xu, B. Zhang, M. Posiadala-Zezula, S. B. Boyd, R. Edwards, D. Hadley, M. Nicholson, M. O’Flaherty, B. Richards, A. Ali, B. Jamieson, S. Amanai, Ll Marti, A. Minamino, S. Suzuki
  • Institute for Cosmic Ray Research
  • University of Tokyo
  • Department of Physics and Astronomy
  • Long Beach VA and University of California
  • Research Center for Cosmic Neutrinos
  • Facultad de Ciencias
  • Universidad Autónoma de Madrid
  • Department of Physics
  • British Columbia Institute of Technology
  • TRIUMF
  • Boston University
  • High Energy Accelerator Research Organization (KEK)
  • Department of Physics
  • California State University, Dominguez Hills
  • Chonnam National University
  • Department of Physics
  • Duke University
  • Ip Paris
  • Department of Physics
  • Gifu University
  • Gwangju Institute of Science and Technology
  • SUPA
  • University of Glasgow
  • Department of Physics and Astronomy
  • University of Hawaii
  • Institute for Basic Science (IBS)
  • Institute for Interdisciplinary Research in Science and Education
  • ICISE
  • Imperial College London
  • Politecnico di Bari
  • Dipartimento di Fisica
  • University of Naples Federico II
  • Dipartimento di Fisica
  • University of Padova
  • University of Rome
  • Keio University
  • King's College London
  • Department of Physics
  • Kobe University
  • Department of Physics
  • Kyoto University
  • University of Liverpool
  • Department of Physics
  • Miyagi University of Education
  • Institute for Space-Earth Environmental Research
  • Nagoya University
  • National Centre for Nuclear Research (NCBJ)
  • Department of Physics and Astronomy
  • Stony Brook University
  • Department of Physics
  • Okayama University
  • Media Communication Center
  • Osaka Electro-Communication University
  • University of Oxford
  • CCLRC Rutherford Appleton Laboratory
  • Department of Physics
  • Seoul National University
  • Department of Physics and Astronomy
  • The University of Sheffield
  • Department of Informatics in Social Welfare
  • Shizuoka University of Welfare
  • Department of Physics
  • Sungkyunkwan University
  • Department of Physics
  • Tohoku University
  • Department of Physics
  • Tokai University
  • Department of Physics
  • Department of Physics
  • Tokyo Institute of Technology
  • Department of Physics
  • Tokyo University of Science
  • Tsinghua University
  • University of Warsaw
  • University of Warwick
  • Department of Physics
  • University of Winnipeg
  • Department of Physics
  • Yokohama National University

Research output: Contribution to journalArticlepeer-review

10 Citations (Scopus)

Abstract

Among multimessenger observations of the next Galactic core-collapse supernova, Super-Kamiokande (SK) plays a critical role in detecting the emitted supernova neutrinos, determining the direction to the supernova (SN), and notifying the astronomical community of these observations in advance of the optical signal. In 2022, SK has increased the gadolinium dissolved in its water target (SK-Gd) and has achieved a Gd concentration of 0.033%, resulting in enhanced neutron detection capability, which in turn enables more accurate determination of the supernova direction. Accordingly, SK-Gd’s real-time supernova monitoring system has been upgraded. SK_SN Notice, a warning system that works together with this monitoring system, was released on 2021 December 13, and is available through GCN Notices. When the monitoring system detects an SN-like burst of events, SK_SN Notice will automatically distribute an alarm with the reconstructed direction to the supernova candidate within a few minutes. In this paper, we present a systematic study of SK-Gd’s response to a simulated Galactic SN. Assuming a supernova situated at 10 kpc, neutrino fluxes from six supernova models are used to characterize SK-Gd’s pointing accuracy using the same tools as the online monitoring system. The pointing accuracy is found to vary from 3° to 7° depending on the models. However, if the supernova is closer than 10 kpc, SK_SN Notice can issue an alarm with three-degree accuracy, which will benefit follow-up observations by optical telescopes with large fields of view.

Original languageEnglish
Article number93
JournalAstrophysical Journal
Volume970
Issue number1
DOIs
Publication statusPublished - 1 Jul 2024

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