Fetching the paper…
Reading the bibliography…
The observational data of primordial black holes and scalar-induced gravitational waves can constrain the primordial curvature perturbation at small scales.
S. Hawking, Gravitationally collapsed objects of very low mass, Mon. Not. Roy. Astron. Soc. 152
1971
Earlier work this paper cites.
B.J. Carr, S.W. Hawking, Black holes in the early Universe, Mon. Not. Roy. Astron. Soc. 168
1974
Earlier work this paper cites.
A.A. Starobinsky, A New Type of Isotropic Cosmological Models Without Singularity, Phys. Lett. B 91
1980
Earlier work this paper cites.
A.H. Guth, The Inflationary Universe: A Possible Solution to the Horizon and Flatness Problems, Phys. Rev. D 23
1981
Earlier work this paper cites.
A.D. Linde, A New Inflationary Universe Scenario: A Possible Solution of the Horizon, Flatness, Homogeneity, Isotropy and Primordial Monopole Problems, Phys. Lett. B 108
1982
Earlier work this paper cites.
A. Albrecht, P.J. Steinhardt, Cosmology for Grand Unified Theories with Radiatively Induced Symmetry Breaking, Phys. Rev. Lett. 48
1982
Earlier work this paper cites.
J.M. Bardeen, J.R. Bond, N. Kaiser, A.S. Szalay, The Statistics of Peaks of Gaussian Random Fields, Astrophys. J. 304
1986
Earlier work this paper cites.
M.W. Choptuik, Universality and scaling in gravitational collapse of a massless scalar field, Phys. Rev. Lett. 70
1993
Earlier work this paper cites.
P. Ivanov, P. Naselsky, I. Novikov, Inflation and primordial black holes as dark matter, Phys. Rev. D 50
1994
Earlier work this paper cites.
C.R. Evans, J.S. Coleman, Observation of critical phenomena and selfsimilarity in the gravitational collapse of radiation fluid, Phys. Rev. Lett. 72
1994
Earlier work this paper cites.
D.J. Fixsen, E.S. Cheng, J.M. Gales, J.C. Mather, R.A. Shafer, E.L. Wright, The Cosmic Microwave Background spectrum from the full COBE FIRAS data set, Astrophys. J. 473
1996
Earlier work this paper cites.
K. Danzmann, LISA: An ESA cornerstone mission for a gravitational wave observatory, Class. Quant. Grav. 14
1997
Earlier work this paper cites.
S. Matarrese, S. Mollerach, M. Bruni, Second order perturbations of the Einstein-de Sitter universe, Phys. Rev. D 58
1998
Earlier work this paper cites.
J.C. Niemeyer, K. Jedamzik, Near-critical gravitational collapse and the initial mass function of primordial black holes, Phys. Rev. Lett. 80
1998
Earlier work this paper cites.
S. Mollerach, D. Harari, S. Matarrese, CMB polarization from secondary vector and tensor modes, Phys. Rev. D 69
2004
Earlier work this paper cites.
A.M. Green, A.R. Liddle, K.A. Malik, M. Sasaki, A New calculation of the mass fraction of primordial black holes, Phys. Rev. D 70
2004
Earlier work this paper cites.
J. Skilling, Nested Sampling, AIP Conf. Proc. 735
2004
Earlier work this paper cites.
M.Y. Khlopov, S.G. Rubin, A.S. Sakharov, Primordial structure of massive black hole clusters, Astropart. Phys. 23
2005
Earlier work this paper cites.
K.N. Ananda, C. Clarkson, D. Wands, The Cosmological gravitational wave background from primordial density perturbations, Phys. Rev. D 75
2007
Earlier work this paper cites.
D. Baumann, P.J. Steinhardt, K. Takahashi, K. Ichiki, Gravitational Wave Spectrum Induced by Primordial Scalar Perturbations, Phys. Rev. D 76
2007
Earlier work this paper cites.
P. Tisserand, et al., Limits on the Macho Content of the Galactic Halo from the EROS-2 Survey of the Magellanic Clouds, Astron. Astrophys. 469
2007
Earlier work this paper cites.
P.H. Frampton, M. Kawasaki, F. Takahashi, T.T. Yanagida, Primordial Black Holes as All Dark Matter, JCAP 04
2010
Earlier work this paper cites.
E. Bugaev, P. Klimai, Induced gravitational wave background and primordial black holes, Phys. Rev. D 81
2010
Earlier work this paper cites.
R.D. Ferdman, et al., The European Pulsar Timing Array: current efforts and a LEAP toward the future, Class. Quant. Grav. 27
2010
Earlier work this paper cites.
G. Hobbs, et al., The international pulsar timing array project: using pulsars as a gravitational wave detector, Class. Quant. Grav. 27
2010
Earlier work this paper cites.
B.J. Carr, K. Kohri, Y. Sendouda, J. Yokoyama, New cosmological constraints on primordial black holes, Phys. Rev. D 81
2010
Earlier work this paper cites.
G.M. Harry, Advanced LIGO: The next generation of gravitational wave detectors, Class. Quant. Grav. 27
2010
Earlier work this paper cites.
[Erratum: Phys.Rev.Lett. 107, 069901 (2011)]
R. Saito, J. Yokoyama, Gravitational wave background as a probe of the primordial black hole abundance, Phys. Rev. Lett. 102 · 2011
Earlier work this paper cites.
[Erratum: Prog.Theor.Phys. 126, 351–352 (2011)]
R. Saito, J. Yokoyama, Gravitational-Wave Constraints on the Abundance of Primordial Black Holes, Prog. Theor. Phys. 123 · 2011
Earlier work this paper cites.
E. Bugaev, P. Klimai, Constraints on the induced gravitational wave background from primordial black holes, Phys. Rev. D 83
2011
Earlier work this paper cites.
L. Alabidi, K. Kohri, M. Sasaki, Y. Sendouda, Observable Spectra of Induced Gravitational Waves from Inflation, JCAP 09
2012
Earlier work this paper cites.
J. Martin, H. Motohashi, T. Suyama, Ultra Slow-Roll Inflation and the non-Gaussianity Consistency Relation, Phys. Rev. D 87
2013
Earlier work this paper cites.
M.A. McLaughlin, The North American Nanohertz Observatory for Gravitational Waves, Class. Quant. Grav. 30
2013
Earlier work this paper cites.
G. Hobbs, The Parkes Pulsar Timing Array, Class. Quant. Grav. 30
2013
Earlier work this paper cites.
K. Griest, A.M. Cieplak, M.J. Lehner, New Limits on Primordial Black Hole Dark Matter from an Analysis of Kepler Source Microlensing Data, Phys. Rev. Lett. 111
2013
Earlier work this paper cites.
K.M. Belotsky, A.D. Dmitriev, E.A. Esipova, V.A. Gani, A.V. Grobov, M.Y. Khlopov, A.A. Kirillov, S.G. Rubin, I.V. Svadkovsky, Signatures of primordial black hole dark matter, Mod. Phys. Lett. A 29
2014
Earlier work this paper cites.
S. Young, C.T. Byrnes, M. Sasaki, Calculating the mass fraction of primordial black holes, JCAP 07
2014
Earlier work this paper cites.
S. Clesse, J. García-Bellido, Massive Primordial Black Holes from Hybrid Inflation as Dark Matter and the seeds of Galaxies, Phys. Rev. D 92
2015
Earlier work this paper cites.
H. Motohashi, A.A. Starobinsky, J. Yokoyama, Inflation with a constant rate of roll, JCAP 09
2015
Earlier work this paper cites.
C.J. Moore, R.H. Cole, C.P.L. Berry, Gravitational-wave sensitivity curves, Class. Quant. Grav. 32
2015
Earlier work this paper cites.
P.W. Graham, S. Rajendran, J. Varela, Dark Matter Triggers of Supernovae, Phys. Rev. D 92
2015
Earlier work this paper cites.
L. Lentati, et al., European Pulsar Timing Array Limits On An Isotropic Stochastic Gravitational-Wave Background, Mon. Not. Roy. Astron. Soc. 453
2015
Earlier work this paper cites.
R.M. Shannon, et al., Gravitational waves from binary supermassive black holes missing in pulsar observations, Science 349
2015
Earlier work this paper cites.
J. Aasi, et al., Advanced LIGO, Class. Quant. Grav. 32
2015
Earlier work this paper cites.
S. Bird, I. Cholis, J.B. Muñoz, Y. Ali-Haïmoud, M. Kamionkowski, E.D. Kovetz, A. Raccanelli, A.G. Riess, Did LIGO detect dark matter?, Phys. Rev. Lett. 116
2016
Earlier work this paper cites.
B.P. Abbott, et al., Observation of Gravitational Waves from a Binary Black Hole Merger, Phys. Rev. Lett. 116
2016
Earlier work this paper cites.
B.P. Abbott, et al., GW151226: Observation of Gravitational Waves from a 22-Solar-Mass Binary Black Hole Coalescence, Phys. Rev. Lett. 116
2016
Earlier work this paper cites.
B. Carr, F. Kuhnel, M. Sandstad, Primordial Black Holes as Dark Matter, Phys. Rev. D 94
2016
Earlier work this paper cites.
J. Luo, et al., TianQin: a space-borne gravitational wave detector, Class. Quant. Grav. 33
2016
Earlier work this paper cites.
K. Inomata, M. Kawasaki, Y. Tada, Revisiting constraints on small scale perturbations from big-bang nucleosynthesis, Phys. Rev. D 94
2016
Earlier work this paper cites.
S. Clesse, J. García-Bellido, The clustering of massive Primordial Black Holes as Dark Matter: measuring their mass distribution with Advanced LIGO, Phys. Dark Univ. 15
2017
Earlier work this paper cites.
B.P. Abbott, et al., GW170814: A Three-Detector Observation of Gravitational Waves from a Binary Black Hole Coalescence, Phys. Rev. Lett. 119
2017
Earlier work this paper cites.
B.P. Abbott, et al., GW170817: Observation of Gravitational Waves from a Binary Neutron Star Inspiral, Phys. Rev. Lett. 119
2017
Earlier work this paper cites.
B..P.. Abbott, et al., GW170608: Observation of a 19-solar-mass Binary Black Hole Coalescence, Astrophys. J. Lett. 851
2017
Earlier work this paper cites.
K. Inomata, M. Kawasaki, K. Mukaida, Y. Tada, T.T. Yanagida, Inflationary Primordial Black Holes as All Dark Matter, Phys. Rev. D 96
2017
Cited alongside, same era.
J. García-Bellido, Massive Primordial Black Holes as Dark Matter and their detection with Gravitational Waves, J. Phys. Conf. Ser. 840
2017
Cited alongside, same era.
E.D. Kovetz, Probing Primordial-Black-Hole Dark Matter with Gravitational Waves, Phys. Rev. Lett. 119
2017
Cited alongside, same era.
J. Garcia-Bellido, E. Ruiz Morales, Primordial black holes from single field models of inflation, Phys. Dark Univ. 18
2017
Cited alongside, same era.
C. Germani, T. Prokopec, On primordial black holes from an inflection point, Phys. Dark Univ. 18
2017
Cited alongside, same era.
R. Abbott, et al., GW190521: A Binary Black Hole Merger with a Total Mass of 150 M ⊙ 150M_{\odot} , Phys. Rev. Lett. 125
2020
Later among the works it cites.
B. Carr, F. Kuhnel, Primordial Black Holes as Dark Matter: Recent Developments, Ann. Rev. Nucl. Part. Sci. 70
2020
Later among the works it cites.
Y. Akrami, et al., Planck 2018 results. X. Constraints on inflation, Astron. Astrophys. 641
2020
Later among the works it cites.
C. Fu, P. Wu, H. Yu, Scalar induced gravitational waves in inflation with gravitationally enhanced friction, Phys. Rev. D 101
2020
Later among the works it cites.
I. Dalianis, S. Karydas, E. Papantonopoulos, Generalized Non-Minimal Derivative Coupling: Application to Inflation and Primordial Black Hole Production, JCAP 06
2020
Later among the works it cites.
alphaXiv searches the wider corpus for related work and actual follow-ups.
alphaXiv is searching for related work…
H. Motohashi, W. Hu, Primordial Black Holes and Slow-Roll Violation, Phys. Rev. D 96
2017
Cited alongside, same era.
J. Garcia-Bellido, M. Peloso, C. Unal, Gravitational Wave signatures of inflationary models from Primordial Black Hole Dark Matter, JCAP 09
2017
Cited alongside, same era.
N. Orlofsky, A. Pierce, J.D. Wells, Inflationary theory and pulsar timing investigations of primordial black holes and gravitational waves, Phys. Rev. D 95
2017
Cited alongside, same era.
T. Nakama, J. Silk, M. Kamionkowski, Stochastic gravitational waves associated with the formation of primordial black holes, Phys. Rev. D 95
2017
Cited alongside, same era.
K. Inomata, M. Kawasaki, K. Mukaida, Y. Tada, T.T. Yanagida, Inflationary primordial black holes for the LIGO gravitational wave events and pulsar timing array experiments, Phys. Rev. D 95
2017
Cited alongside, same era.
P. Amaro-Seoane, et al., Laser Interferometer Space Antenna, arXiv: 1702.00786, (2017)
2017
Cited alongside, same era.
W.R. Hu, Y.L. Wu, The Taiji Program in Space for gravitational wave physics and the nature of gravity, Natl. Sci. Rev. 4
2017
Cited alongside, same era.
M. Braglia, D.K. Hazra, F. Finelli, G.F. Smoot, L. Sriramkumar, A.A. Starobinsky, Generating PBHs and small-scale GWs in two-field models of inflation, JCAP 08
2020
Later among the works it cites.
J. Lin, Q. Gao, Y. Gong, Y. Lu, C. Zhang, F. Zhang, Primordial black holes and secondary gravitational waves from k k and G G inflation, Phys. Rev. D 101
2020
Later among the works it cites.
R.G. Cai, Z.K. Guo, J. Liu, L. Liu, X.Y. Yang, Primordial black holes and gravitational waves from parametric amplification of curvature perturbations, JCAP 06
2020
Later among the works it cites.
G. Domènech, Induced gravitational waves in a general cosmological background, Int. J. Mod. Phys. D 29
2020
Later among the works it cites.
G. Domènech, S. Pi, M. Sasaki, Induced gravitational waves as a probe of thermal history of the universe, JCAP 08
2020
Later among the works it cites.
J. Fumagalli, S. Renaux-Petel, J.W. Ronayne, L.T. Witkowski, Turning in the landscape: a new mechanism for generating Primordial Black Holes, arXiv: 2004.08369 (2020)
2020
Later among the works it cites.
S. Pi, M. Sasaki, Gravitational Waves Induced by Scalar Perturbations with a Lognormal Peak, JCAP 09
2020
Later among the works it cites.
C. Yuan, Z.C. Chen, Q.G. Huang, Scalar induced gravitational waves in different gauges, Phys. Rev. D 101
2020
Later among the works it cites.
C. Yuan, Z.C. Chen, Q.G. Huang, Log-dependent slope of scalar induced gravitational waves in the infrared regions, Phys. Rev. D 101
2020
Later among the works it cites.
Z. Arzoumanian, et al., The NANOGrav 12.5 yr Data Set: Search for an Isotropic Stochastic Gravitational-wave Background, Astrophys. J. Lett. 905
2020
Later among the works it cites.
S. Young, M. Musso, Application of peaks theory to the abundance of primordial black holes, JCAP 11
2020
Later among the works it cites.
Y. Akrami, et al., Planck 2018 results. X. Constraints on inflation, Astron. Astrophys. 641
2020
Later among the works it cites.
V. Vaskonen, H. Veermäe, Lower bound on the primordial black hole merger rate, Phys. Rev. D 101
2020
Later among the works it cites.
V. De Luca, G. Franciolini, P. Pani, A. Riotto, Primordial Black Holes Confront LIGO/Virgo data: Current situation, JCAP 06
2020
Later among the works it cites.
B. Dasgupta, R. Laha, A. Ray, Neutrino and positron constraints on spinning primordial black hole dark matter, Phys. Rev. Lett. 125
2020
Later among the works it cites.
R. Laha, J.B. Muñoz, T.R. Slatyer, INTEGRAL constraints on primordial black holes and particle dark matter, Phys. Rev. D 101
2020
Later among the works it cites.
J.S. Speagle, dynesty: a dynamic nested sampling package for estimating Bayesian posteriors and evidences, Mon. Not. Roy. Astron. Soc. 493
2020
Later among the works it cites.
R. Abbott, et al., GWTC-2: Compact Binary Coalescences Observed by LIGO and Virgo During the First Half of the Third Observing Run, Phys. Rev. X 11
2021
Later among the works it cites.
A. Gundhi, C.F. Steinwachs, Scalaron–Higgs inflation reloaded: Higgs-dependent scalaron mass and primordial black hole dark matter, Eur. Phys. J. C 81
2021
Later among the works it cites.
D.Y. Cheong, S.M. Lee, S.C. Park, Primordial black holes in Higgs- R 2 R^{2} inflation as the whole of dark matter, JCAP 01
2021
Later among the works it cites.
J. Lin, S. Gao, Y. Gong, Y. Lu, Z. Wang, F. Zhang, Primordial black holes and scalar induced secondary gravitational waves from Higgs inflation with non-canonical kinetic term, arXiv: 2111.01362, (2021)
2021
Later among the works it cites.
Q. Gao, Y. Gong, Z. Yi, Primordial black holes and secondary gravitational waves from natural inflation, Nucl. Phys. B 969
2021
Later among the works it cites.
Q. Gao, Primordial black holes and secondary gravitational waves from chaotic inflation, Sci. China Phys. Mech. Astron. 64
2021
Later among the works it cites.
Z. Yi, Y. Gong, B. Wang, Z.h. Zhu, Primordial black holes and secondary gravitational waves from the Higgs field, Phys. Rev. D 103
2021
Later among the works it cites.
Z. Yi, Q. Gao, Y. Gong, Z.h. Zhu, Primordial black holes and scalar-induced secondary gravitational waves from inflationary models with a noncanonical kinetic term, Phys. Rev. D 103
2021
Later among the works it cites.
S. Kawai, J. Kim, Primordial black holes from Gauss-Bonnet-corrected single field inflation, Phys. Rev. D 104
2021
Later among the works it cites.
R.G. Cai, C. Chen, C. Fu, Primordial black holes and stochastic gravitational wave background from inflation with a noncanonical spectator field, Phys. Rev. D 104
2021
Later among the works it cites.
P. Chen, S. Koh, G. Tumurtushaa, Primordial black holes and induced gravitational waves from inflation in the Horndeski theory of gravity, arXiv: 2107.08638, (2021)
2021
Later among the works it cites.
V. Vaskonen, H. Veermäe, Did NANOGrav see a signal from primordial black hole formation?, Phys. Rev. Lett. 126
2021
Later among the works it cites.
A.D. Gow, C.T. Byrnes, P.S. Cole, S. Young, The power spectrum on small scales: Robust constraints and comparing PBH methodologies, JCAP 02
2021
Later among the works it cites.
R.G. Cai, Y.C. Ding, X.Y. Yang, Y.F. Zhou, Constraints on a mixed model of dark matter particles and primordial black holes from the galactic 511 keV line, JCAP 03
2021
Later among the works it cites.
J. Fumagalli, S. Renaux-Petel, L.T. Witkowski, Oscillations in the stochastic gravitational wave background from sharp features and particle production during inflation, JCAP 08
2021
Later among the works it cites.
T. Papanikolaou, V. Vennin, D. Langlois, Gravitational waves from a universe filled with primordial black holes, JCAP 03
2021
Later among the works it cites.
B. Goncharov, et al., On the Evidence for a Common-spectrum Process in the Search for the Nanohertz Gravitational-wave Background with the Parkes Pulsar Timing Array, Astrophys. J. Lett. 917
2021
Later among the works it cites.
V. De Luca, G. Franciolini, A. Riotto, NANOGrav Data Hints at Primordial Black Holes as Dark Matter, Phys. Rev. Lett. 126
2021
Later among the works it cites.
K. Inomata, M. Kawasaki, K. Mukaida, T.T. Yanagida, NANOGrav Results and LIGO-Virgo Primordial Black Holes in Axionlike Curvaton Models, Phys. Rev. Lett. 126
2021
Later among the works it cites.
K.W.K. Wong, G. Franciolini, V. De Luca, V. Baibhav, E. Berti, P. Pani, A. Riotto, Constraining the primordial black hole scenario with Bayesian inference and machine learning: the GWTC-2 gravitational wave catalog, Phys. Rev. D 103
2021
Later among the works it cites.
G. Hütsi, M. Raidal, V. Vaskonen, H. Veermäe, Two populations of LIGO-Virgo black holes, JCAP 03
2021
Later among the works it cites.
C.J. Moore, A. Vecchio, Ultra-low-frequency gravitational waves from cosmological and astrophysical processes, Nature Astron. 5
2021
Later among the works it cites.
Z. Yi, Z.H. Zhu, NANOGrav signal and LIGO-Virgo primordial black holes from the Higgs field, JCAP 05
2022
Closest in time.
Z. Yi, Primordial black holes and scalar-induced gravitational waves from scalar-tensor inflation, arXiv: 2206.01039, (2022)
2022
Closest in time.
F. Zhang, Primordial black holes and scalar induced gravitational waves from the E model with a Gauss-Bonnet term, Phys. Rev. D 105
2022
Closest in time.
R. Zheng, J. Shi, T. Qiu, On primordial black holes and secondary gravitational waves generated from inflation with solo/multi-bumpy potential *, Chin. Phys. C 46
2022
Closest in time.
A. Ashoorioon, K. Rezazadeh, A. Rostami, NANOGrav signal from the end of inflation and the LIGO mass and heavier primordial black holes, Phys. Lett. B 835
2022
Closest in time.
T. Papanikolaou, C. Tzerefos, S. Basilakos, E.N. Saridakis, Scalar induced gravitational waves from primordial black hole Poisson fluctuations in f(R) gravity, JCAP 10
2022
Closest in time.
T. Papanikolaou, C. Tzerefos, S. Basilakos, E.N. Saridakis, No constraints for f ( T ) f(T) gravity from gravitational waves induced from primordial black hole fluctuations (2022)
2022
Closest in time.
J. Antoniadis, et al., The International Pulsar Timing Array second data release: Search for an isotropic gravitational wave background, Mon. Not. Roy. Astron. Soc. 510
2022
Closest in time.
G. Domènech, S. Pi, NANOGrav hints on planet-mass primordial black holes, Sci. China Phys. Mech. Astron. 65
2022
Closest in time.