Fetching the paper…
Reading the bibliography…
Gravitational waves can probe the existence of planetary-mass primordial black holes.
J. GarcÃa-Bellido, B. Carr, and S. Clesse, “A common origin for baryons and dark matter,” 4 2019 · 1904
Earlier work this paper cites.
U. Haud and J. Einasto, “Galactic models with massive corona I. Method,” Astron. Astrophys
1989
Earlier work this paper cites.
K. Jedamzik, “Primordial black hole formation during the QCD epoch,” Phys. Rev
1997
Earlier work this paper cites.
T. Nakamura, M. Sasaki, T. Tanaka, and K. S. Thorne, “Gravitational waves from coalescing black hole MACHO binaries,” Astrophys. J. Lett
1997
Earlier work this paper cites.
J. C. Niemeyer and K. Jedamzik, “Near-Critical Gravitational Collapse and the Initial Mass Function of Primordial Black Holes,” Phys. Rev. Lett
1998
Earlier work this paper cites.
B. J. Owen, L. Lindblom, C. Cutler, B. F. Schutz, A. Vecchio, and N. Andersson, “Gravitational waves from hot young rapidly rotating neutron stars,” Physical Review D
1998
Earlier work this paper cites.
G. Ushomirsky, C. Cutler, and L. Bildsten, “Deformations of accreting neutron star crusts and gravitational wave emission,” Monthly Notices of the Royal Astronomical Society
2000
Earlier work this paper cites.
B. Carr, K. Kohri, Y. Sendouda, and J. Yokoyama, “Constraints on Primordial Black Holes,” 2 2020 · 2002
Earlier work this paper cites.
P. Astone, S. Frasca, and C. Palomba, “The short fft database and the peak map for the hierarchical search of periodic sources,” Classical and Quantum Gravity
2005
Earlier work this paper cites.
S. Clesse and J. Garcia-Bellido, “GW190425 and GW190814: Two candidate mergers of primordial black holes from the QCD epoch,” 7 2020 · 2007
Earlier work this paper cites.
A. L. Watts, B. Krishnan, L. Bildsten, and B. F. Schutz, “Detecting gravitational wave emission from the known accreting neutron stars,” Monthly Notices of the Royal Astronomical Society
2008
Earlier work this paper cites.
Oxford University Press, 2008
M. Maggiore, Gravitational Waves: Volume 1: Theory and Experiments · 2008
Earlier work this paper cites.
B. Carr, K. Kohri, Y. Sendouda, and J. Yokoyama, “New cosmological constraints on primordial black holes,” Phys. Rev. D
2010
Earlier work this paper cites.
M. Punturo et al
2010
Earlier work this paper cites.
S. Hild, M. Abernathy, F. Acernese, P. Amaro-Seoane, N. Andersson, K. Arun, F. Barone, B. Barr, M. Barsuglia, M. Beker, et al
2011
Earlier work this paper cites.
Johnson-McDaniel et al
2013
Earlier work this paper cites.
F. Acernese, M. Agathos, K. Agatsuma, D. Aisa, N. Allemandou, A. Allocca, J. Amarni, P. Astone, G. Balestri, G. Ballardin, et al
2014
Earlier work this paper cites.
P. Astone, A. Colla, S. D’Antonio, S. Frasca, and C. Palomba, “Method for all-sky searches of continuous gravitational wave signals using the Frequency-Hough transform,” Physical Review D
2014
Earlier work this paper cites.
J. Aasi, B. Abbott, R. Abbott, T. Abbott, M. Abernathy, K. Ackley, C. Adams, T. Adams, P. Addesso, R. Adhikari, et al
2015
Earlier work this paper cites.
S. Clesse and J. GarcÃa-Bellido, “Massive Primordial Black Holes from Hybrid Inflation as Dark Matter and the seeds of Galaxies,” Phys. Rev
2015
Earlier work this paper cites.
J. Aasi, B. Abbott, R. Abbott, T. Abbott, M. Abernathy, F. Acernese, K. Ackley, C. Adams, T. Adams, P. Addesso, et al
2015
Earlier work this paper cites.
A. Mytidis, M. Coughlin, and B. Whiting, “Constraining the r-mode saturation amplitude from a hypothetical detection of r-mode gravitational waves from a newborn neutron star: Sensitivity study,” The Astrophysical Journal
2015
Earlier work this paper cites.
B. Abbott et al
2016
Earlier work this paper cites.
B. P. Abbott et al
2016
Earlier work this paper cites.
S. Bird, I. Cholis, J. B. Muñ\paroz, Y. Ali-Haï\parmoud, M. Kamionkowski, E. D. Kovetz, A. Raccanelli, and A. G. Riess, “Did LIGO detect dark matter?,” Phys. Rev. Lett
2016
Earlier work this paper cites.
B. Carr, F. Kuhnel, and M. Sandstad, “Primordial Black Holes as Dark Matter,” Phys. Rev. D
2016
Earlier work this paper cites.
S. A. Usman, A. H. Nitz, I. W. Harry, C. M. Biwer, D. A. Brown, M. Cabero, C. D. Capano, T. Dal Canton, T. Dent, S. Fairhurst, et al
2016
Earlier work this paper cites.
A. Kashlinsky, “LIGO gravitational wave detection, primordial black holes and the near-IR cosmic infrared background anisotropies,” Astrophys. J. Lett
2016
Earlier work this paper cites.
B. P. Abbott et al
2017
Earlier work this paper cites.
B. P. Abbott et al
2017
Earlier work this paper cites.
S. Clesse and J. Garcí\para-Bellido, “The clustering of massive Primordial Black Holes as Dark Matter: measuring their mass distribution with Advanced LIGO,” Phys. Dark Universe
2017
Earlier work this paper cites.
Y. Ali-Haimoud, E. D. Kovetz, and M. Kamionkowski, “Merger rate of primordial black-hole binaries,” Phys. Rev. D
2017
Earlier work this paper cites.
P. Mró\parz, A. Udalski, J. Skowron, R. Poleski, S. Kozłowski, M. K. Szymań\parski, I. Soszyń\parski, Ł. Wyrzykowski, P. Pietrukowicz, K. Ulaczyk, et al
2017
Earlier work this paper cites.
P. D. Lasky et al
2017
Cited alongside, same era.
K. Riles, “Recent searches for continuous gravitational waves,” Modern Physics Letters A
2017
Cited alongside, same era.
[Erratum: Phys.Rev.X 8, 039903 (2018)]
B. Abbott et al · 2018
Cited alongside, same era.
[Erratum: Phys.Rev.Lett. 121, 129901 (2018)]
B. P. Abbott et al · 2018
Cited alongside, same era.
[erratum: Phys. Rev. Lett.121,no.5,059901(2018)]
M. Sasaki, T. Suyama, T. Tanaka, and S. Yokoyama, “Primordial Black Hole Scenario for the Gravitational-Wave Event GW150914,” Phys. Rev. Lett · 2018
Cited alongside, same era.
S. Clesse and J. Garcí\para-Bellido, “Seven hints for primordial black hole dark matter,” Physics of the Dark Universe
2018
Cited alongside, same era.
A. L. Miller, P. Astone, et al
2019
Later among the works it cites.
S. Caride, R. Inta, B. J. Owen, and B. Rajbhandari, “How to search for gravitational waves from r r -modes of known pulsars,” Phys. Rev. D
2019
Later among the works it cites.
R. Abbott et al
2020
Closest in time.
B. Abbott et al
2020
Closest in time.
R. Abbott et al
2020
Closest in time.
R. Abbott et al
2020
Closest in time.
R. Abbott et al
2020
Closest in time.
alphaXiv searches the wider corpus for related work and actual follow-ups.
alphaXiv is searching for related work…
C. Kouvaris, P. Tinyakov, and M. H. Tytgat, “Nonprimordial solar mass black holes,” Physical Review Letters
2018
Cited alongside, same era.
C. T. Byrnes, M. Hindmarsh, S. Young, and M. R. S. Hawkins, “Primordial black holes with an accurate QCD equation of state,” JCAP
2018
Cited alongside, same era.
J. M. Ezquiaga, J. Garcia-Bellido, and E. Ruiz Morales, “Primordial Black Hole production in Critical Higgs Inflation,” Phys. Lett. B
2018
Cited alongside, same era.
J. Garcí\para-Bellido and S. Clesse, “Constraints from microlensing experiments on clustered primordial black holes,” Phys. Dark Univ
2018
Cited alongside, same era.
J. Calcino, J. Garcia-Bellido, and T. M. Davis, “Updating the MACHO fraction of the Milky Way dark halowith improved mass models,” Mon. Not. Roy. Astron. Soc
2018
Cited alongside, same era.
N. Sarin, P. D. others Lasky, L. Sammut, and G. Ashton, “X-ray guided gravitational-wave search for binary neutron star merger remnants,” Physical Review D
2018
Cited alongside, same era.
A. Hall, A. D. Gow, and C. T. Byrnes, “Bayesian analysis of LIGO-Virgo mergers: Primordial vs. astrophysical black hole populations,” Phys. Rev. D
2020
Closest in time.
V. De Luca, V. Desjacques, G. Franciolini, and A. Riotto, “The clustering evolution of primordial black holes,” JCAP
2020
Closest in time.
K. Jedamzik, “Primordial Black Hole Dark Matter and the LIGO/Virgo observations,” JCAP
2020
Closest in time.
B. Carr and F. Kuhnel, “Primordial Black Holes as Dark Matter: Recent Developments,” Ann. Rev. Nucl. Part. Sci
2020
Closest in time.
Z. Arzoumanian et al
2020
Closest in time.
G. Domè\parnech and S. Pi, “NANOGrav Hints on Planet-Mass Primordial Black Holes,” 10 2020
2020
Closest in time.
M. R. S. Hawkins, “The signature of primordial black holes in the dark matter halos of galaxies,” Astron. Astrophys
2020
Closest in time.
M. Hawkins, “SDSS J1004+4112: the case for a galaxy cluster dominated by primordial black holes,” Astron. Astrophys
2020
Closest in time.
J. Scholtz and J. Unwin, “What if Planet 9 is a Primordial Black Hole?,” Phys. Rev. Lett
2020
Closest in time.
A. Siraj and A. Loeb, “Searching for Black Holes in the Outer Solar System with LSST,” Astrophys. J. Lett
2020
Closest in time.
M. Maggiore et al
2020
Closest in time.
E. L. Osborne and D. I. Jones, “Gravitational waves from magnetically-induced thermal neutron star mountains,” Mon. Not. Roy. Astron. Soc
2020
Closest in time.
O. J. Piccinni, P. Astone, S. D’Antonio, S. Frasca, G. Intini, I. La Rosa, P. Leaci, S. Mastrogiovanni, A. Miller, and C. Palomba, “Directed search for continuous gravitational-wave signals from the galactic center in the advanced ligo second observing run,” Physical Review D
2020
Closest in time.
A. D. Gow, C. T. Byrnes, A. Hall, and J. A. Peacock, “Primordial black hole merger rates: distributions for multiple LIGO observables,” JCAP
2020
Closest in time.
V. Vaskonen and H. Veermä\pare, “Lower bound on the primordial black hole merger rate,” Physical Review D
2020
Closest in time.
[Erratum: Phys.Rev.D 101, 069901 (2020)]
S. Wang, T. Terada, and K. Kohri, “Prospective constraints on the primordial black hole abundance from the stochastic gravitational-wave backgrounds produced by coalescing events and curvature perturbations,” Phys. Rev. D · 2020
Closest in time.
B. Carr, S. Clesse, J. Garcí\para-Bellido, and F. Kü\parhnel, “Cosmic conundra explained by thermal history and primordial black holes,” Phys. Dark Univ
2021
Closest in time.
K. Jedamzik, “Consistency of Primordial Black Hole Dark Matter with LIGO/Virgo Merger Rates,” Phys. Rev. Lett
2021
Closest in time.
C. Boehm, A. Kobakhidze, C. A. J. O’hare, Z. S. C. Picker, and M. Sakellariadou, “Eliminating the LIGO bounds on primordial black hole dark matter,” JCAP
2021
Closest in time.
V. De Luca, G. Franciolini, and A. Riotto, “NANOGrav Data Hints at Primordial Black Holes as Dark Matter,” Phys. Rev. Lett
2021
Closest in time.
B. Carr, S. Clesse, and J. Garcí\para-Bellido, “Primordial black holes from the QCD epoch: Linking dark matter, baryogenesis and anthropic selection,” Mon. Not. Roy. Astron. Soc
2021
Closest in time.
A. M. Green and B. J. Kavanagh, “Primordial Black Holes as a dark matter candidate,” J. Phys. G
2021
Closest in time.
B. Dasgupta, R. Laha, and A. Ray, “Low Mass Black Holes from Dark Core Collapse,” Phys. Rev. Lett
2021
Closest in time.
V. Vaskonen and H. Veermä\pare, “Did NANOGrav see a signal from primordial black hole formation?,” Phys. Rev. Lett
2021
Closest in time.
M. Trashorras, J. Garcí\para-Bellido, and S. Nesseris, “The clustering dynamics of primordial black boles in N N -body simulations,” Universe
2021
Closest in time.
A. L. Miller et al
2021
Closest in time.