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The scalarization is a very interesting phenomena allowing to endow a compact object with scalar hair while leaving all the predictions in the weak field limit unaltered.
J. D. Bekenstein, “Nonexistence of baryon number for static black holes,” Phys. Rev. D
1972
Earlier work this paper cites.
A. E. Mayo and J. D. Bekenstein, “No hair for spherical black holes: Charged and nonminimally coupled scalar field with self-interaction,” Phys. Rev. D
1996
Earlier work this paper cites.
W. Krivan, P. Laguna, and P. Papadopoulos, “Dynamics of scalar fields in the background of rotating black holes,” Phys. Rev. D
1996
Earlier work this paper cites.
W. Krivan, P. Laguna, P. Papadopoulos, and N. Andersson, “Dynamics of perturbations of rotating black holes,” Phys. Rev. D
1997
Earlier work this paper cites.
PhD thesis, University ot Tuebingen, 2000
J.Ruoff, The Numerical Evolution of Neutron Star Oscillations · 2000
Earlier work this paper cites.
E. Berti, V. Cardoso, and C. M. Will, “On gravitational-wave spectroscopy of massive black holes with the space interferometer LISA,” Phys. Rev. D
2006
Earlier work this paper cites.
Z.-K. Guo, N. Ohta, and T. Torii, “Black Holes in the Dilatonic Einstein-Gauss-Bonnet Theory in Various Dimensions. I. Asymptotically Flat Black Holes,” Prog. Theor. Phys
2008
Earlier work this paper cites.
E. Berti, V. Cardoso, and A. O. Starinets, “Quasinormal modes of black holes and black branes,” Class. Quant. Grav
2009
Earlier work this paper cites.
I. Racz and G. Z. Toth, “Numerical investigation of the late-time Kerr tails,” Class. Quant. Grav
2011
Earlier work this paper cites.
A. Zenginoglu, “Hyperboloidal layers for hyperbolic equations on unbounded domains,” J. Comput. Phys
2011
Earlier work this paper cites.
T. P. Sotiriou and V. Faraoni, “Black holes in scalar-tensor gravity,” Phys. Rev. Lett
2012
Earlier work this paper cites.
E. Harms, S. Bernuzzi, and B. Brügmann, “Numerical solution of the 2+1 Teukolsky equation on a hyperboloidal and horizon penetrating foliation of Kerr and application to late-time decays,” Class. Quant. Grav
2013
Earlier work this paper cites.
C. A. R. Herdeiro and E. Radu, “Kerr black holes with scalar hair,” Phys. Rev. Lett
2014
Earlier work this paper cites.
E. Harms, S. Bernuzzi, A. Nagar, and A. Zenginoglu, “A new gravitational wave generation algorithm for particle perturbations of the Kerr spacetime,” Class. Quant. Grav
2014
Earlier work this paper cites.
T. P. Sotiriou, “Black holes and scalar fields,” Classical and Quantum Gravity
2015
Earlier work this paper cites.
C. A. R. Herdeiro and E. Radu, “Asymptotically flat black holes with scalar hair: A review,” International Journal of Modern Physics D
2015
Earlier work this paper cites.
C. A. R. Herdeiro, E. Radu, and H. Rúnarsson, “Kerr black holes with self-interacting scalar hair: Hairier but not heavier,” Phys. Rev. D
2015
Earlier work this paper cites.
J. F. Delgado, C. A. Herdeiro, E. Radu, and H. Runarsson, “Kerr-newman black holes with scalar hair,” Physics Letters B
2016
Earlier work this paper cites.
C. Herdeiro, E. Radu, and H. Rúnarsson, “Kerr black holes with proca hair,” Classical and Quantum Gravity
2016
Earlier work this paper cites.
P. V. Cunha, C. A. R. Herdeiro, B. Kleihaus, J. Kunz, and E. Radu, “Shadows of Einstein–dilaton–Gauss–Bonnet black holes,” Phys. Lett. B
2017
Cited alongside, same era.
J. L. Blazquez-Salcedo, F. S. Khoo, and J. Kunz, “Quasinormal modes of Einstein-Gauss-Bonnet-dilaton black holes,” Phys. Rev. D
2017
Cited alongside, same era.
D. D. Doneva and S. S. Yazadjiev, “New gauss-bonnet black holes with curvature-induced scalarization in extended scalar-tensor theories,” Phys. Rev. Lett
2018
Cited alongside, same era.
H. O. Silva, J. Sakstein, L. Gualtieri, T. P. Sotiriou, and E. Berti, “Spontaneous scalarization of black holes and compact stars from a gauss-bonnet coupling,” Phys. Rev. Lett
2018
Cited alongside, same era.
G. Antoniou, A. Bakopoulos, and P. Kanti, “Evasion of no-hair theorems and novel black-hole solutions in gauss-bonnet theories,” Phys. Rev. Lett
D. D. Doneva, K. V. Staykov, and S. S. Yazadjiev, “Gauss-bonnet black holes with a massive scalar field,” Phys. Rev. D
2019
Later among the works it cites.
C. F. B. Macedo, J. Sakstein, E. Berti, L. Gualtieri, H. O. Silva, and T. P. Sotiriou, “Self-interactions and spontaneous black hole scalarization,” Phys. Rev. D
2019
Later among the works it cites.
P. V. P. Cunha, C. A. R. Herdeiro, and E. Radu, “Spontaneously scalarized kerr black holes in extended scalar-tensor–gauss-bonnet gravity,” Phys. Rev. Lett
2019
Later among the works it cites.
Y.-X. Gao, Y. Huang, and D.-J. Liu, “Scalar perturbations on the background of Kerr black holes in the quadratic dynamical Chern-Simons gravity,” Phys. Rev. D
2019
Later among the works it cites.
C. Krüger and K. Kokkotas, “Fast Rotating Relativistic Stars: Spectra and Stability without Approximation,” 10 2019
2019
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2018
Cited alongside, same era.
G. Antoniou, A. Bakopoulos, and P. Kanti, “Black-hole solutions with scalar hair in einstein-scalar-gauss-bonnet theories,” Phys. Rev. D
2018
Cited alongside, same era.
D. D. Doneva, S. Kiorpelidi, P. G. Nedkova, E. Papantonopoulos, and S. S. Yazadjiev, “Charged gauss-bonnet black holes with curvature induced scalarization in the extended scalar-tensor theories,” Phys. Rev. D
2018
Cited alongside, same era.
J. L. Blazquez-Salcedo, D. D. Doneva, J. Kunz, and S. S. Yazadjiev, “Radial perturbations of the scalarized einstein-gauss-bonnet black holes,” Phys. Rev. D
2018
Cited alongside, same era.
D. D. Doneva and S. S. Yazadjiev, “Neutron star solutions with curvature induced scalarization in the extended Gauss-Bonnet scalar-tensor theories,” JCAP
2018
Cited alongside, same era.
Y.-Q. Wang, Y.-X. Liu, and S.-W. Wei, “Excited kerr black holes with scalar hair,” Phys. Rev. D
2019
Cited alongside, same era.
J. F. Delgado, C. A. Herdeiro, and E. Radu, “Kerr black holes with synchronised scalar hair and higher azimuthal harmonic index,” Physics Letters B
2019
Cited alongside, same era.
J. Kunz, I. Perapechka, and Y. Shnir, “Kerr black holes with parity-odd scalar hair,” Phys. Rev. D
2019
Cited alongside, same era.
Later among the works it cites.
N. M. Santos, C. L. Benone, L. C. Crispino, C. A. Herdeiro, and E. Radu, “Black holes with synchronised Proca hair: linear clouds and fundamental non-linear solutions,” JHEP
2020
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L. G. Collodel, D. D. Doneva, and S. S. Yazadjiev, “Rotating tensor-multi-scalar- N = 2 N=2 black holes,” 7 2020
2020
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G. Antoniou, A. Bakopoulos, P. Kanti, B. Kleihaus, and J. Kunz, “Novel einstein–scalar-gauss-bonnet wormholes without exotic matter,” Phys. Rev. D
2020
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J. L. Blazquez-Salcedo, D. D. Doneva, S. Kahlen, J. Kunz, P. Nedkova, and S. S. Yazadjiev, “Axial perturbations of the scalarized Einstein-Gauss-Bonnet black holes,” Phys. Rev. D
2020
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J. L. Blazquez-Salcedo, D. D. Doneva, S. Kahlen, J. Kunz, P. Nedkova, and S. S. Yazadjiev, “Polar quasinormal modes of the scalarized Einstein-Gauss-Bonnet black holes,” Phys. Rev. D
2020
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D. D. Doneva, K. V. Staykov, S. S. Yazadjiev, and R. Z. Zheleva, “Multi-scalar Gauss-Bonnet gravity – hairy black holes and scalarization,” 6 2020
2020
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B. Kleihaus, J. Kunz, and P. Kanti, “Particle-like ultracompact objects in einstein-scalar-gauss-bonnet theories,” Physics Letters B
2020
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B. Kleihaus, J. Kunz, and P. Kanti, “Properties of ultracompact particlelike solutions in einstein-scalar-gauss-bonnet theories,” Phys. Rev. D
2020
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L. G. Collodel, B. Kleihaus, J. Kunz, and E. Berti, “Spinning and excited black holes in einstein-scalar-gauss–bonnet theory,” Classical and Quantum Gravity
2020
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A. Dima, E. Barausse, N. Franchini, and T. P. Sotiriou, “Spin-induced black hole spontaneous scalarization,” 6 2020
2020
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S. Hod, “Onset of spontaneous scalarization in spinning Gauss-Bonnet black holes,” 6 2020
2020
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A. Dima and E. Barausse, “Numerical investigation of plasma-driven superradiant instabilities,” Class. Quant. Grav
2020
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C. Krüger and K. Kokkotas, “Dynamics of Fast Rotating Neutron Stars: An Approach in the Hilbert Gauge,” 8 2020
2020
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