Gravitational wave signatures of inflationary models from Primordial Black Hole dark matter

被引:222
|
作者
Garcia-Bellido, Juan [1 ]
Peloso, Marco [2 ,3 ]
Unal, Caner [2 ,3 ]
机构
[1] Univ Autonoma Madrid, Inst Fis Teor UAM CSIC, E-28049 Madrid, Spain
[2] Univ Minnesota, Sch Phys & Astron, Minneapolis, MN 55455 USA
[3] Univ Minnesota, Minnesota Inst Astrophys, Minneapolis, MN 55455 USA
关键词
gravitational wave detectors; gravitational waves / experiments; inflation; primordial black holes; MICROWAVE BACKGROUND SPECTRUM; GALACTIC HALO; DATA SET; LIMITS; CONSTRAINTS; GALAXIES;
D O I
10.1088/1475-7516/2017/09/013
中图分类号
P1 [天文学];
学科分类号
0704 ;
摘要
Primordial Black Holes (PBH) could be the cold dark matter of the universe. They could have arisen from large (order one) curvature fluctuations produced during inflation that reentered the horizon in the radiation era. At reentry, these fluctuations source gravitational waves (GW) via second order anisotropic stresses. These GW, together with those (possibly) sourced during inflation by the same mechanism responsible for the large curvature fluctuations, constitute a primordial stochastic GW background (SGWB) that unavoidably accompanies the PBH formation. We study how the amplitude and the range of frequencies of this signal depend on the statistics (Gaussian versus chi(2)) of the primordial curvature fluctuations, and on the evolution of the PBH mass function due to accretion and merging. We then compare this signal with the sensitivity of present and future detectors, at PTA and LISA scales. We find that this SGWB will help to probe, or strongly constrain, the early universe mechanism of PBH production. The comparison between the peak mass of the PBH distribution and the peak frequency of this SGWB will provide important information on the merging and accretion evolution of the PBH mass distribution from their formation to the present era. Different assumptions on the statistics and on the PBH evolution also result in different amounts of CMB it-distortions. Therefore the above results can be complemented by the detection (or the absence) of it-distortions with an experiment such as PIXIE.
引用
收藏
页数:33
相关论文
共 50 条
  • [1] Detecting the gravitational wave background from primordial black hole dark matter
    Clesse, Sebastien
    Garcia-Bellido, Juan
    [J]. PHYSICS OF THE DARK UNIVERSE, 2017, 18 : 105 - 114
  • [2] Signatures of primordial black hole dark matter
    Belotsky, K. M.
    Dmitriev, A. E.
    Esipova, E. A.
    Gani, V. A.
    Grobov, A. V.
    Khlopov, M. Yu
    Kirillov, A. A.
    Rubin, S. G.
    Svadkovsky, I. V.
    [J]. MODERN PHYSICS LETTERS A, 2014, 29 (37)
  • [3] Magnetogenesis with gravitational waves and primordial black hole dark matter
    Balaji, Shyam
    Fairbairn, Malcolm
    Olea-Romacho, Marfa Olalla
    [J]. PHYSICAL REVIEW D, 2024, 109 (07)
  • [4] Probing Primordial Black Hole Dark Matter with Gravitational Waves
    Kovetz, Ely D.
    [J]. PHYSICAL REVIEW LETTERS, 2017, 119 (13)
  • [5] Signatures of primordial black hole dark matter at DUNE and THEIA
    De Romeri, Valentina
    Martinez-Mirave, Pablo
    Tortola, Mariam
    [J]. JOURNAL OF COSMOLOGY AND ASTROPARTICLE PHYSICS, 2021, (10):
  • [6] Constraints on primordial curvature perturbations from primordial black hole dark matter and secondary gravitational waves
    Lu, Yizhou
    Gong, Yungui
    Yi, Zhu
    Zhang, Fengge
    [J]. JOURNAL OF COSMOLOGY AND ASTROPARTICLE PHYSICS, 2019, (12):
  • [7] Planck constraints and gravitational wave forecasts for primordial black hole dark matter seeded by multifield inflation
    Qin, Wenzer
    Geller, Sarah R.
    Balaji, Shyam
    McDonough, Evan
    Kaiser, David, I
    [J]. PHYSICAL REVIEW D, 2023, 108 (04)
  • [8] Inflationary primordial black holes as all dark matter
    Inomata, Keisuke
    Kawasaki, Masahiro
    Mukaida, Kyohei
    Tada, Yuichiro
    Yanagida, Tsutomu T.
    [J]. PHYSICAL REVIEW D, 2017, 96 (04)
  • [9] A Gravitational Wave Background from Primordial Black Hole Lattices in Matter Dominated Era
    Wang, Ke
    [J]. COMMUNICATIONS IN THEORETICAL PHYSICS, 2019, 71 (10) : 1196 - 1204