Superradiant instability of magnetic black holes

被引:2
|
作者
Pereniguez, David [1 ]
de Amicis, Marina [1 ]
Brito, Richard [2 ]
Macedo, Rodrigo Panosso [1 ]
机构
[1] Niels Bohr Inst, Niels Bohr Int Acad, Blegdamsvej 17, DK-2100 Copenhagen, Denmark
[2] Univ Lisbon, IST, Dept Fis, CENTRA, Ave Rovisco Pais 1, P-1049001 Lisbon, Portugal
基金
新加坡国家研究基金会; 欧盟地平线“2020”;
关键词
PARTICLE-EMISSION RATES; MASSLESS PARTICLES; MONOPOLE; CHARGE;
D O I
10.1103/PhysRevD.110.104001
中图分类号
P1 [天文学];
学科分类号
0704 ;
摘要
Black hole superradiance has proven to be very valuable in several realms of gravitational physics and holds a promising discovery potential. In this paper, we consider the superradiant instability of magnetically charged, rotating black holes and find a number of important differences with respect to neutral ones. Considering massive charged bosonic fields, we find that the instability timescale is much shorter, and this is true even if the black hole contains an order-one number of magnetic monopoles, or merely a single one, and possesses either low, moderate, or large values of angular momentum. In particular, the instability is drastically faster than the radiative-decay time of charged pions, potentially making it physically relevant. Furthermore, our analysis identifies the most unstable modes as a class of monopole spheroidal harmonics, which we dub north and south monopole modes, whose morphology is markedly different from the ones in standard superradiance since they extend along the rotational axis. For completeness, we also study the quasinormal mode spectrum and amplification factors of charged massless fields, finding no evidence of instabilities in that case.
引用
收藏
页数:15
相关论文
共 50 条
  • [31] Primordial Black Holes: Observational characteristics of the final evaporation
    Ukwatta, T. N.
    Stump, D. R.
    Linnemann, J. T.
    MacGibbon, J. H.
    Marinelli, S. S.
    Yapici, T.
    Tollefson, K.
    ASTROPARTICLE PHYSICS, 2016, 80 : 90 - 114
  • [32] Greybody factors for rotating black holes in higher dimensions
    Jorge, Rogerio
    de Oliveira, Ednilton S.
    Rocha, Jorge V.
    CLASSICAL AND QUANTUM GRAVITY, 2015, 32 (06)
  • [33] Exploring evaporating primordial black holes with gravitational waves
    Domenech, Guillem
    Takhistov, Volodymyr
    Sasaki, Misao
    PHYSICS LETTERS B, 2021, 823
  • [34] Entanglement from rotating black holes in thermal baths
    Agullo, Ivan
    Brady, Anthony J.
    Delhom, Adria
    Kranas, Dimitrios
    PHYSICAL REVIEW D, 2024, 110 (02)
  • [35] Greybody factors for Myers-Perry black holes
    Boonserm, Petarpa
    Chatrabhuti, Auttakit
    Ngampitipan, Tritos
    Visser, Matt
    JOURNAL OF MATHEMATICAL PHYSICS, 2014, 55 (11)
  • [36] Gauss-bonnet black holes and possibilities for their experimental search
    Alexeyev, S. O.
    Rannu, K. A.
    JOURNAL OF EXPERIMENTAL AND THEORETICAL PHYSICS, 2012, 114 (03) : 406 - 427
  • [37] Grand Unification Scale Primordial Black Holes: Consequences and Constraints
    Anantua, Richard
    Easther, Richard
    Giblin, John T., Jr.
    PHYSICAL REVIEW LETTERS, 2009, 103 (11)
  • [38] Determining the spin of light primordial black holes with Hawking radiation
    Calza, Marco
    Rosa, Joao G.
    JOURNAL OF HIGH ENERGY PHYSICS, 2022, 2022 (12)
  • [39] Hawking Radiation of Renormalization Group Improved Regular Black Holes
    Konoplya, Roman A.
    FORTSCHRITTE DER PHYSIK-PROGRESS OF PHYSICS, 2025, 73 (1-2):
  • [40] CMB and BBN constraints on evaporating primordial black holes revisited
    Acharya, Sandeep Kumar
    Khatri, Rishi
    JOURNAL OF COSMOLOGY AND ASTROPARTICLE PHYSICS, 2020, (06):