High-energy neutrino astronomy: the cosmic ray connection

被引:350
|
作者
Halzen, F [1 ]
Hooper, D [1 ]
机构
[1] Univ Wisconsin, Dept Phys, Madison, WI 53706 USA
关键词
D O I
10.1088/0034-4885/65/7/201
中图分类号
O4 [物理学];
学科分类号
0702 ;
摘要
This is a review of neutrino astronomy anchored to the observational fact that Nature accelerates protons and photons to energies in excess of 10(20) and 10(13) eV, respectively. Although the discovery of cosmic rays dates back close to a century, we do not know how and where they are accelerated. There is evidence that the highest-energy cosmic rays are extra-galactic-they cannot be contained by our galaxy's magnetic field anyway because their gyroradius far exceeds its dimension. Elementary elementary-particle physics dictates a universal upper limit on their energy of 5 x 10(19) eV, the so-called Greisen-Kuzmin-Zatsepin cutoff; however, particles in excess of this energy have been observed by all experiments, adding one more puzzle to the cosmic ray mystery. Mystery is fertile ground for progress: we will review the facts as well as the speculations about the sources. There is a realistic hope that the oldest problem in astronomy will be resolved soon by ambitious experimentation: air shower arrays of 10(4) km(2) area, arrays of air Cerenkov detectors and, the subject of this review, kilometre-scale neutrino observatories. We will review why cosmic accelerators are also expected to be cosmic beam dumps producing associated high-energy photon and neutrino beams. We will work in detail through an example of a cosmic beam dump, gamma-ray bursts (GRBs). These are expected to produce neutrinos from MeV to EeV energy by a variety of mechanisms. We will also discuss active galaxies and GUT-scale remnants, two other classes of sources speculated to be associated with the highest-energy cosmic rays. GRBs and active galaxies are also the sources of the highest-energy gamma-rays, with emission observed up to 20 TeV, possibly higher. The important conclusion is that, independently of the specific blueprint of the source, it takes a kilometre-scale neutrino observatory to detect the neutrino beam associated with the highest-energy cosmic rays and gamma-rays. We also briefly review the ongoing efforts to commission such instrumentation.
引用
收藏
页码:1025 / 1078
页数:54
相关论文
共 50 条
  • [31] Nonstandard neutrino properties and the high-energy cosmic neutrino flux
    Horvat, R
    PHYSICAL REVIEW D, 2001, 64 (06)
  • [32] High-Energy Neutrino Astronomy and the Baikal-GVD Neutrino Telescope
    A. D. Avrorin
    A. V. Avrorin
    V. M. Aynutdinov
    R. Bannasch
    Z. Bardáčová
    I. A. Belolaptikov
    V. Dik
    V. B. Brudanin
    N. M. Budnev
    G. V. Domogatsky
    A. A. Doroshenko
    R. Dvornický
    A. N. Dyachok
    Zh.-A. M. Dzhilkibaev
    E. Eckerová
    T. V. Elzhov
    L. Fajt
    S. V. Fialkovski
    A. R. Gafarov
    K. V. Golubkov
    N. S. Gorshkov
    T. I. Gress
    R. A. Ivanov
    M. S. Katulin
    K. G. Kebkal
    O. G. Kebkal
    E. V. Khramov
    M. M. Kolbin
    K. V. Konischev
    K. A. Kopański
    A. V. Korobchenko
    A. P. Koshechkin
    V. A. Kozhin
    M. V. Kruglov
    M. K. Kryukov
    V. F. Kulepov
    M. B. Milenin
    R. R. Mirgazov
    D. V. Naumov
    V. Nazari
    W. Noga
    D. P. Petukhov
    E. N. Pliskovsky
    M. I. Rozanov
    V. D. Rushay
    E. V. Ryabov
    G. B. Safronov
    B. A. Shaybonov
    M. D. Shelepov
    F. Šimkovic
    Physics of Atomic Nuclei, 2021, 84 : 513 - 518
  • [33] The particle physics reach of high-energy neutrino astronomy
    Han, T
    Hooper, D
    NEW JOURNAL OF PHYSICS, 2004, 6 : 1 - 24
  • [34] HIGH-ENERGY NEUTRINO ASTRONOMY - PAST, PRESENT AND FUTURE
    LEARNED, JG
    NUCLEAR PHYSICS B, 1993, : 456 - 474
  • [35] HIGH-ENERGY NEUTRINO ASTRONOMY WITH SMALL UNDERGROUND DETECTORS
    BEREZINSKY, VS
    CASTAGNOLI, C
    GALEOTTI, P
    NUOVO CIMENTO DELLA SOCIETA ITALIANA DI FISICA C-GEOPHYSICS AND SPACE PHYSICS, 1985, 8 (03): : 185 - 211
  • [36] HIGH-ENERGY NEUTRINO ASTRONOMY AND ASTROPHYSICS - AN OUTLOOK INTO THE FUTURE
    LEARNED, JG
    NUCLEAR PHYSICS B, 1993, : 77 - 92
  • [37] High-energy neutrino astronomy: Opportunities for particle physics
    Hooper, D
    ACTA PHYSICA POLONICA B, 2004, 35 (6-7): : 1905 - 1918
  • [38] High-energy neutrino astronomy: a glimpse of the promised land
    Spiering, Ch
    PHYSICS-USPEKHI, 2014, 57 (05) : 470 - 481
  • [39] High-energy neutrino astronomy: Science and first results
    Halzen, F
    EARLY UNIVERSE AND THE COSMIC MICROWAVE BACKGROUND: THEORY AND OBSERVATIONS, 2003, 130 : 401 - 431
  • [40] High-Energy Neutrino Astronomy and the Baikal-GVD Neutrino Telescope
    Avrorin, A. D.
    Avrorin, A., V
    Aynutdinov, V. M.
    Bannasch, R.
    Bardacova, Z.
    Belolaptikov, I. A.
    Dik, V
    Brudanin, V. B.
    Budnev, N. M.
    Domogatsky, G., V
    Doroshenko, A. A.
    Dvornicky, R.
    Dyachok, A. N.
    Dzhilkibaev, Zh-A M.
    Eckerova, E.
    Elzhov, T., V
    Fajt, L.
    Fialkovski, S., V
    Gafarov, A. R.
    Golubkov, K., V
    Gorshkov, N. S.
    Gress, T., I
    Ivanov, R. A.
    Katulin, M. S.
    Kebkal, K. G.
    Kebkal, O. G.
    Khramov, E., V
    Kolbin, M. M.
    Konischev, K., V
    Kopanski, K. A.
    Korobchenko, A., V
    Koshechkin, A. P.
    Kozhin, V. A.
    Kruglov, M., V
    Kryukov, M. K.
    Kulepov, V. F.
    Milenin, M. B.
    Mirgazov, R. R.
    Naumov, D., V
    Nazari, V
    Noga, W.
    Petukhov, D. P.
    Pliskovsky, E. N.
    Rozanov, M., I
    Rushay, V. D.
    Ryabov, E., V
    Safronov, G. B.
    Shaybonov, B. A.
    Shelepov, M. D.
    Simkovic, F.
    PHYSICS OF ATOMIC NUCLEI, 2021, 84 (04) : 513 - 518