Magnetic-induced spontaneous scalarization in dynamical Chern–Simons gravity
暂无分享,去创建一个
[1] E. Papantonopoulos,et al. Axion induced angular momentum reversal in Kerr-like black holes , 2022, Physical Review D.
[2] S. Hod. Nonequatorial scalar rings supported by magnetized Schwarzschild-Melvin black holes , 2022, Physical Review D.
[3] C. Herdeiro,et al. Spin-induced scalarization and magnetic fields , 2022, Physics Letters B.
[4] E. Papantonopoulos,et al. Scalarization of Chern-Simons-Kerr black hole solutions and wormholes , 2022, Physical Review D.
[5] C. Corral,et al. Phase transitions of black strings in dynamical Chern-Simons modified gravity , 2021, Physical Review D.
[6] Daniel C. M. Palumbo,et al. First M87 Event Horizon Telescope Results. VIII. Magnetic Field Structure near The Event Horizon , 2021, The Astrophysical Journal Letters.
[7] Y. Brihaye,et al. Spontaneous scalarization of self-gravitating magnetic fields , 2021, Physical Review D.
[8] Shao-Jun Zhang. Massive scalar field perturbation on Kerr black holes in dynamical Chern–Simons gravity , 2021, The European Physical Journal C.
[9] C. Herdeiro,et al. Black holes, stationary clouds and magnetic fields , 2021, Physics Letters B.
[10] D. Doneva,et al. Spontaneously scalarized black holes in dynamical Chern-Simons gravity: Dynamics and equilibrium solutions , 2021, Physical Review D.
[11] D. Doneva,et al. Dynamics of the nonrotating and rotating black hole scalarization , 2021, 2101.03514.
[12] E. Papantonopoulos,et al. Horizon curvature and spacetime structure influences on black hole scalarization , 2020, The European Physical Journal C.
[13] Bin Wang,et al. Black hole scalarization in Gauss-Bonnet extended Starobinsky gravity , 2020, 2004.14395.
[14] Y. S. Myung,et al. Onset of rotating scalarized black holes in Einstein-Chern-Simons-Scalar theory , 2020, 2012.02375.
[15] S. Bergliaffa,et al. Novel exact magnetic black hole solution in four-dimensional extended scalar-tensor-Gauss-Bonnet theory , 2020, 2010.04858.
[16] Anzhong Wang,et al. Object picture of scalar field perturbation on Kerr black hole in scalar-Einstein-Gauss-Bonnet theory , 2020, Physical Review D.
[17] P. K. Panda,et al. GW190521: A Binary Black Hole Merger with a Total Mass of 150 M_{⊙}. , 2020, Physical review letters.
[18] D. Doneva,et al. Black hole scalarization induced by the spin: 2+1 time evolution , 2020, Physical Review D.
[19] D. Doneva,et al. Multiscalar Gauss-Bonnet gravity: Hairy black holes and scalarization , 2020, Physical Review D.
[20] E. Papantonopoulos,et al. Spontaneous holographic scalarization of black holes in Einstein-scalar-Gauss-Bonnet theories , 2020, 2006.10659.
[21] N. Bucciantini,et al. Axisymmetric equilibrium models for magnetised neutron stars in scalar-tensor theories , 2020, Astronomy & Astrophysics.
[22] Yan Peng. Spontaneous scalarization of Gauss-Bonnet black holes surrounded by massive scalar fields , 2020, 2004.12566.
[23] Anzhong Wang,et al. No static regular black holes in Einstein-complex-scalar-Gauss-Bonnet gravity , 2020, 2004.04773.
[24] P. Kanti,et al. Large and ultracompact Gauss-Bonnet black holes with a self-interacting scalar field , 2020, Physical Review D.
[25] P. Kanti,et al. Existence of solutions with a horizon in pure scalar-Gauss-Bonnet theories , 2019, Physical Review D.
[26] K. Bronnikov,et al. Cylindrical systems in general relativity , 2019, Classical and Quantum Gravity.
[27] S. Teukolsky,et al. Numerical binary black hole collisions in dynamical Chern-Simons gravity , 2019, Physical Review D.
[28] S. T. Timmer,et al. First M87 Event Horizon Telescope Results. I. The Shadow of the Supermassive Black Hole , 2019, 1906.11238.
[29] G. Antoniou,et al. Novel black-hole solutions in Einstein-scalar-Gauss-Bonnet theories with a cosmological constant , 2018, Physical Review D.
[30] E. Berti,et al. Stability of scalarized black hole solutions in scalar-Gauss-Bonnet gravity , 2018, Physical Review D.
[31] M. Minamitsuji,et al. Scalarized black holes in the presence of the coupling to Gauss-Bonnet gravity , 2018, Physical Review D.
[32] C. Corral,et al. Static and rotating black strings in dynamical Chern–Simons modified gravity , 2018, The European Physical Journal C.
[33] Yang Huang,et al. Scalar perturbations on the background of Kerr black holes in the quadratic dynamical Chern-Simons gravity , 2018, Physical Review D.
[34] C. Corral,et al. Homogenous BTZ black strings in Chern-Simons modified gravity , 2018, 1809.02903.
[35] E. Papantonopoulos,et al. Charged Gauss-Bonnet black holes with curvature induced scalarization in the extended scalar-tensor theories , 2018, Physical Review D.
[36] C. Herdeiro,et al. Isolated black holes without Z2 isometry , 2018, Physical Review D.
[37] M. Kimura. Stability analysis of Schwarzschild black holes in dynamical Chern-Simons gravity , 2018, Physical Review D.
[38] C. Herdeiro,et al. Non-perturbative spinning black holes in dynamical Chern–Simons gravity , 2018, Physics Letters B.
[39] J. Font,et al. Spontaneous Scalarization of Charged Black Holes. , 2018, Physical review letters.
[40] Y. S. Myung,et al. Gregory-Laflamme instability of black hole in Einstein-scalar-Gauss-Bonnet theories , 2018, Physical Review D.
[41] G. Antoniou,et al. Black-Hole Solutions with Scalar Hair in Einstein-Scalar-Gauss-Bonnet Theories , 2017, 1711.07431.
[42] P. Kanti,et al. Evasion of No-Hair Theorems and Novel Black-Hole Solutions in Gauss-Bonnet Theories. , 2017, Physical review letters.
[43] E. Berti,et al. Spontaneous Scalarization of Black Holes and Compact Stars from a Gauss-Bonnet Coupling. , 2017, Physical review letters.
[44] D. Doneva,et al. New Gauss-Bonnet Black Holes with Curvature-Induced Scalarization in Extended Scalar-Tensor Theories. , 2017, Physical review letters.
[45] Takahiro Tanaka,et al. Spin-precessing black hole binaries in dynamical Chern-Simons gravity , 2017, Physical Review D.
[46] B. A. Boom,et al. GW170814: A Three-Detector Observation of Gravitational Waves from a Binary Black Hole Coalescence. , 2017, Physical review letters.
[47] B. A. Boom,et al. GW170104: Observation of a 50-Solar-Mass Binary Black Hole Coalescence at Redshift 0.2. , 2017, Physical review letters.
[48] R. Price,et al. Scalar fields in black hole spacetimes , 2017, 1705.04949.
[49] M. Astorino. Thermodynamics of Regular Accelerating Black Holes , 2016, 1612.04387.
[50] The Ligo Scientific Collaboration,et al. GW151226: Observation of Gravitational Waves from a 22-Solar-Mass Binary Black Hole Coalescence , 2016, 1606.04855.
[51] D Huet,et al. GW151226: Observation of Gravitational Waves from a 22-Solar-Mass Binary Black Hole Coalescence , 2016 .
[52] R. Oliveri,et al. Mass of Kerr-Newman black holes in an external magnetic field , 2016, 1602.08110.
[53] The Ligo Scientific Collaboration,et al. Observation of Gravitational Waves from a Binary Black Hole Merger , 2016, 1602.03837.
[54] B. Kleihaus,et al. Rapidly Rotating Neutron Stars in Dilatonic Einstein-Gauss-Bonnet Theory , 2016, 1601.05583.
[55] N. Yunes,et al. Extremal black holes in dynamical Chern–Simons gravity , 2015, 1512.05453.
[56] M. Astorino. Magnetised Kerr/CFT correspondence , 2015, 1508.01583.
[57] Hari K. Kunduri,et al. Insights from Melvin–Kerr–Newman spacetimes , 2015, 1502.07388.
[58] Marco O. P. Sampaio,et al. Testing general relativity with present and future astrophysical observations , 2015, 1501.07274.
[59] L. Stein. Rapidly rotating black holes in dynamical Chern-Simons gravity: Decoupling limit solutions and breakdown , 2014, 1407.2350.
[60] Mark Trodden,et al. Beyond the Cosmological Standard Model , 2014, 1407.0059.
[61] R. Takahashi,et al. Scalar field excited around a rapidly rotating black hole in Chern-Simons modified gravity , 2014, 1406.0957.
[62] N. Yunes,et al. Slowly-Rotating Black Holes in Einstein-Dilaton-Gauss-Bonnet Gravity: Quadratic Order in Spin Solutions , 2014, 1405.2133.
[63] V. Cardoso,et al. Can environmental effects spoil precision gravitational-wave astrophysics? , 2014, 1404.7149.
[64] Gaurav Khanna,et al. Mode coupling mechanism for late-time Kerr tails , 2013, 1312.5247.
[65] G. Gibbons,et al. Thermodynamics of magnetized Kerr-Newman black holes , 2013, 1310.3286.
[66] V. Kaspi,et al. THE McGILL MAGNETAR CATALOG , 2013, 1309.4167.
[67] Gaurav Khanna,et al. Intermediate behavior of Kerr tails , 2012, 1208.5839.
[68] C. Will. The Confrontation between General Relativity and Experiment , 1980, Living reviews in relativity.
[69] R. P. Eatough,et al. A strong magnetic field around the supermassive black hole at the centre of the Galaxy , 2013, Nature.
[70] N. Gehrels,et al. SWIFT DISCOVERY OF A NEW SOFT GAMMA REPEATER, SGR J1745−29, NEAR SAGITTARIUS A* , 2013, 1305.2128.
[71] Kristin K. Madsen,et al. NuSTAR DISCOVERY OF A 3.76 s TRANSIENT MAGNETAR NEAR SAGITTARIUS A* , 2013, 1305.1945.
[72] G. Gibbons,et al. Ergoregions in magnetized black hole spacetimes , 2013, 1301.3927.
[73] S. Dolan,et al. Self-force via $m$-mode regularization and 2+1D evolution: III. Gravitational field on Schwarzschild spacetime , 2012, 1211.4586.
[74] Takahiro Tanaka,et al. Slowly Rotating Black Holes in Dynamical Chern-Simons Gravity: Deformation Quadratic in the Spin , 2012, 1206.6130.
[75] Antonio Padilla,et al. Modified Gravity and Cosmology , 2011, 1106.2476.
[76] P. Cochat,et al. Et al , 2008, Archives de pediatrie : organe officiel de la Societe francaise de pediatrie.
[77] P. Chruściel,et al. Stationary Black Holes: Uniqueness and Beyond , 1998, Living Reviews in Relativity.
[78] D. robinson. Four decades of black hole uniqueness theorems , 2012 .
[79] P. Joshi,et al. Recent developments in gravitational collapse and spacetime singularities , 2011, 1201.3660.
[80] S. Dolan,et al. Self-force via m-mode regularization and 2+1D evolution. II. Scalar-field implementation on Kerr spacetime , 2011, 1107.0012.
[81] R. Konoplya,et al. Quasinormal modes of black holes: From astrophysics to string theory , 2011, 1102.4014.
[82] L. Urrutia,et al. Extended solution space for Chern-Simons gravity: The slowly rotating Kerr black hole , 2010, 1010.4526.
[83] F. Pretorius,et al. Linear stability analysis and the speed of gravitational waves in dynamical Chern-Simons modified gravity , 2010, 1007.2429.
[84] Jiliang Jing,et al. Geodetic precession and strong gravitational lensing in dynamical Chern–Simons-modified gravity , 2010, 1005.1325.
[85] L. Amarilla,et al. Null geodesics and shadow of a rotating black hole in extended Chern-Simons modified gravity , 2010, 1005.0607.
[86] J. Ott,et al. A lower limit of 50 microgauss for the magnetic field near the Galactic Centre , 2010, Nature.
[87] V. Cardoso,et al. Perturbations of Schwarzschild black holes in dynamical Chern-Simons modified gravity , 2009, 0907.5008.
[88] N. Yunes,et al. Chern-Simons Modified General Relativity , 2009, 0907.2562.
[89] Vitor Cardoso,et al. Quasinormal modes of black holes and black branes , 2009, 0905.2975.
[90] C. Sopuerta,et al. Extreme- and intermediate-mass ratio inspirals in dynamical Chern-Simons modified gravity , 2009, 0904.4501.
[91] S. Tanda,et al. Rotating Black Hole in Extended Chern-Simons Modified Gravity , 2009, 0902.4767.
[92] F. Pretorius,et al. Dynamical Chern-Simons modified gravity: Spinning black holes in the slow-rotation approximation , 2009, 0902.4669.
[93] S. Scott,et al. The Kerr spacetime : rotating black holes in general relativity , 2009 .
[94] R. Konoplya. Superradiant instability for black holes immersed in a magnetic field , 2008, 0801.0846.
[95] R. Konoplya. Magnetic field creates strong superradiant instability , 2008 .
[96] Tristan L. Smith,et al. Effects of Chern-Simons gravity on bodies orbiting the Earth , 2007, 0708.0001.
[97] R. Konoplya,et al. Quasinormal modes of black holes immersed in a strong magnetic field , 2007, 0707.1156.
[98] Richard H. Price,et al. Black Holes , 1997 .
[99] Chiang-Mei Chen,et al. Extremal black holes in D=4 Gauss-Bonnet gravity , 2006, hep-th/0701004.
[100] J. Bivc'ak,et al. Black Holes and Magnetic Fields , 2015, 1510.00301.
[101] Filipe Moura,et al. Higher-derivative-corrected black holes: perturbative stability and absorption cross section in heterotic string theory , 2006, hep-th/0605001.
[102] S. D. Odintsov,et al. INTRODUCTION TO MODIFIED GRAVITY AND GRAVITATIONAL ALTERNATIVE FOR DARK ENERGY , 2006, hep-th/0601213.
[103] C. Lousto,et al. Numerical integration of the Teukolsky equation in the time domain , 2004, gr-qc/0409065.
[104] R. Jackiw,et al. Chern-Simons modification of general relativity , 2003, gr-qc/0308071.
[105] R. Penrose,et al. Gravitational Collapse : The Role of General Relativity 1 , 2002 .
[106] J. Ruoff. The Numerical Evolution of Neutron Star Oscillations , 2000, gr-qc/0010041.
[107] J. Bekenstein. Black Holes: Classical Properties, Thermodynamics and Heuristic Quantization , 1998, gr-qc/9808028.
[108] K. Maeda,et al. Dilatonic black holes with Gauss-Bonnet term , 1996, gr-qc/9606034.
[109] Papadopoulos,et al. Dynamics of scalar fields in the background of rotating black holes. , 1996, Physical review. D, Particles and fields.
[110] Anzhong Wang,et al. Geodesic motion and confinement in van Stockum space–time , 1996 .
[111] T. Damour,et al. Nonperturbative strong-field effects in tensor-scalar theories of gravitation. , 1993, Physical review letters.
[112] K. Olive,et al. Axion hair and dynamical torsion from anomalies , 1992 .
[113] K. Olive,et al. Classical hair for Kerr-Newman black holes in string gravity☆ , 1992 .
[114] W. Schiesser. The Numerical Method of Lines: Integration of Partial Differential Equations , 1991 .
[115] K. Olive,et al. Gravitational dynamics with Lorentz Chern-Simons terms , 1991 .
[116] K. Olive,et al. Axion hair for Kerr black holes , 1990 .
[117] D. Christodoulou. Violation of cosmic censorship in the gravitational collapse of a dust cloud , 1984 .
[118] D. Gal’tsov,et al. Black hole in an external magnetic field , 1978 .
[119] R. Blandford,et al. Electromagnetic extraction of energy from Kerr black holes , 1977 .
[120] W. Wild,et al. Kerr black holes in a magnetic universe , 1976 .
[121] F. J. Ernst. Black holes in a magnetic universe , 1976 .
[122] R. Wald,et al. Black hole in a uniform magnetic field , 1974 .
[123] G. W. Horndeski. Second-order scalar-tensor field equations in a four-dimensional space , 1974 .
[124] M. A. Melvin. Dynamics of Cylindrical Electromagnetic Universes , 1965 .
[125] K. Thorne. Absolute Stability of Melvin's Magnetic Universe , 1965 .
[126] K. Thorne. Energy of Infinitely Long, Cylindrically Symmetric Systems in General Relativity , 1965 .
[127] M. A. Melvin. Pure magnetic and electric geons , 1964 .
[128] J. Oppenheimer,et al. On Continued Gravitational Contraction , 1939 .
[129] R. Tolman. Static Solutions of Einstein's Field Equations for Spheres of Fluid , 1939 .