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Back reaction, covariant anomaly and effective action. (English) Zbl 1288.83021

Summary: In the presence of back reaction, we first produce the one-loop corrections for the event horizon and Hawking temperature of the Reissner-Nordström black hole. Then, based on the covariant anomaly cancelation method and the effective action technique, the modified expressions for the fluxes of gauge current and energy momentum tensor, due to the effect of back reaction, are obtained. The results are consistent with the Hawking fluxes of a (1+1)-dimensional blackbody at the temperature with quantum corrections, thus confirming the robustness of the covariant anomaly cancelation method and the effective action technique for black holes with back reaction.

MSC:

83C45 Quantization of the gravitational field
83C57 Black holes
81T50 Anomalies in quantum field theory

References:

[1] S.W. Hawking, Particle creation by black holes, Commun. Math. Phys.43 (1975) 199 [SPIRES]. · Zbl 1378.83040 · doi:10.1007/BF02345020
[2] S.P. Robinson and F. Wilczek, A relationship between Hawking radiation and gravitational anomalies, Phys. Rev. Lett.95 (2005) 011303 [gr-qc/0502074] [SPIRES]. · doi:10.1103/PhysRevLett.95.011303
[3] S. Iso, H. Umetsu and F. Wilczek, Hawking radiation from charged black holes via gauge and gravitational anomalies, Phys. Rev. Lett.96 (2006) 151302 [hep-th/0602146] [SPIRES]. · doi:10.1103/PhysRevLett.96.151302
[4] S. Iso, H. Umetsu and F. Wilczek, Anomalies, Hawking radiations and regularity in rotating black holes, Phys. Rev.D 74 (2006) 044017 [hep-th/0606018] [SPIRES].
[5] S. Iso, Hawking radiation, gravitational anomaly and conformal symmetry - the origin of universalityx, Int. J. Mod. Phys.A 23 (2008) 2082 [arXiv:0804.0652] [SPIRES]. · Zbl 1151.83341
[6] S. Iso, T. Morita and H. Umetsu, Quantum anomalies at horizon and Hawking radiations in Myers-Perry black holes, JHEP04 (2007) 068 [hep-th/0612286] [SPIRES]. · doi:10.1088/1126-6708/2007/04/068
[7] T. Morita, Modification of gravitational anomaly method in Hawking radiation, Phys. Lett.B 677 (2009) 88 [arXiv:0902.3885] [SPIRES].
[8] T. Morita, Hawking radiation and quantum anomaly in AdS2/CFT1correspondence, JHEP01 (2009) 037 [arXiv:0811.1741] [SPIRES]. · Zbl 1243.83046 · doi:10.1088/1126-6708/2009/01/037
[9] K. Umetsu, Ward identities in the derivation of Hawking radiation from anomalies, Prog. Theor. Phys.119 (2008) 849 [arXiv:0804.0963] [SPIRES]. · Zbl 1192.83037 · doi:10.1143/PTP.119.849
[10] K. Murata and U. Miyamoto, Hawking radiation of a vector field and gravitational anomalies, Phys. Rev.D 76 (2007) 084038 [arXiv:0707.0168] [SPIRES].
[11] U. Miyamoto and K. Murata, On Hawking radiation from black rings, Phys. Rev.D 77 (2008) 024020 [arXiv:0705.3150] [SPIRES].
[12] K. Murata and J. Soda, Hawking radiation from rotating black holes and gravitational anomalies, Phys. Rev.D 74 (2006) 044018 [hep-th/0606069] [SPIRES].
[13] H. Shin and W. Kim, Hawking radiation from non-extremal D1 − D5 black hole via anomalies, JHEP06 (2007) 012 [arXiv:0705.0265] [SPIRES]. · doi:10.1088/1126-6708/2007/06/012
[14] W. Kim and H. Shin, Anomaly analysis of Hawking radiation from acoustic black hole, JHEP07 (2007) 070 [arXiv:0706.3563] [SPIRES]. · doi:10.1088/1126-6708/2007/07/070
[15] W. Kim, H. Shin and M. Yoon, Anomaly and Hawking radiation from regular black holes, arXiv:0803.3849 [SPIRES].
[16] M.R. Setare, Gauge and gravitational anomalies and Hawking radiation of rotating BTZ black holes, Eur. Phys. J.C 49 (2007) 865 [hep-th/0608080] [SPIRES]. · Zbl 1191.83028 · doi:10.1140/epjc/s10052-006-0148-8
[17] E.C. Vagenas and S. Das, Gravitational anomalies, Hawking radiation and spherically symmetric black holes, JHEP10 (2006) 025 [hep-th/0606077] [SPIRES]. · doi:10.1088/1126-6708/2006/10/025
[18] S. Das, S.P. Robinson and E.C. Vagenas, Gravitational anomalies: a recipe for Hawking radiation, Int. J. Mod. Phys.D 17 (2008) 533 [arXiv:0705.2233] [SPIRES]. · Zbl 1153.83355
[19] Q.-Q. Jiang, S.-Q. Wu and X. Cai, Anomalies and de Sitter radiation from the generic black holes in de Sitter spaces, Phys. Lett.B 651 (2007) 65 [arXiv:0705.3871] [SPIRES]. · Zbl 1248.83065
[20] Q.-Q. Jiang, S.-Q. Wu and X. Cai, Hawking radiation from the dilatonic black holes via anomalies, Phys. Rev.D 75 (2007) 064029 [hep-th/0701235] [SPIRES].
[21] Q.-Q. Jiang, S.-Q. Wu and X. Cai, Hawking radiation from (2+1)-dimensional BTZ black holes, Phys. Lett.B 651 (2007) 58 [hep-th/0701048] [SPIRES]. · Zbl 1248.83064
[22] Q.-Q. Jiang, Hawking radiation from black holes in de Sitter spaces, Class. Quant. Grav.24 (2007) 4391 [arXiv:0705.2068] [SPIRES]. · Zbl 1128.83029 · doi:10.1088/0264-9381/24/17/008
[23] Q.-Q. Jiang and S.-Q. Wu, Hawking radiation from rotating black holes in anti-de Sitter spaces via gauge and gravitational anomalies, Phys. Lett.B 647 (2007) 200 [hep-th/0701002] [SPIRES]. · Zbl 1248.83063
[24] S.-Q. Wu and J.-J. Peng, Hawking radiation from the Reissner-Nordstróm black hole with a global monopole via gravitational and gauge anomalies, Class. Quant. Grav.24 (2007) 5123 [arXiv:0706.0983] [SPIRES]. · Zbl 1206.83108 · doi:10.1088/0264-9381/24/20/013
[25] X. Kui, W. Liu and H.-b. Zhang, Anomalies of the Achúcarro-Ortiz black hole, Phys. Lett.B 647 (2007) 482 [hep-th/0702199] [SPIRES]. · Zbl 1248.83088
[26] Z. Xu and B. Chen, Hawking radiation from general Kerr-(anti)de Sitter black holes, Phys. Rev.D 75 (2007) 024041 [hep-th/0612261] [SPIRES].
[27] C.-G. Huang, J.-R. Sun, X.-n. Wu and H.-Q. Zhang, Gravitational Anomaly and Hawking Radiation of Brane World Black Holes, Mod. Phys. Lett.A 23 (2008) 2957 [arXiv:0710.4766] [SPIRES]. · Zbl 1172.83328
[28] X.-n. Wu, C.-G. Huang and J.-R. Sun, On gravitational anomaly and Hawking radiation near weakly isolated horizon, Phys. Rev.D 77 (2008) 124023 [arXiv:0801.1347] [SPIRES].
[29] B. Chen and W. He, Hawking radiation of black rings from anomalies, Class. Quant. Grav.25 (2008) 135011 [arXiv:0705.2984] [SPIRES]. · Zbl 1180.83045 · doi:10.1088/0264-9381/25/13/135011
[30] J.-J. Peng and S.-Q. Wu, Hawking radiation from the Schwarzschild black hole with a global monopole via gravitational anomaly, Chin. Phys.B 17 (2008) 825 [arXiv:0705.1225] [SPIRES].
[31] R. Li, J.-R. Ren and S.-W. Wei, Gravitational anomaly and Hawking radiation of apparent horizon in FRW universe, Eur. Phys. J.C 62 (2009) 455 [SPIRES]. · Zbl 1189.83050 · doi:10.1140/epjc/s10052-009-1081-4
[32] S.-W. Wei, R. Li, Y.-X. Liu and J.-R. Ren, Anomaly analysis of Hawking radiation from Kaluza-Klein black hole with squashed horizon, Eur. Phys. J.C 65 (2010) 281 [arXiv:0901.2614] [SPIRES]. · Zbl 1189.83059 · doi:10.1140/epjc/s10052-009-1203-z
[33] S.-W. Wei, R. Li, Y.-X. Liu and J.-R. Ren, Anomaly analysis of Hawking radiation from 2+1 dimensional spinning black hole, arXiv:0904.2915 [SPIRES].
[34] L. Bonora and M. Cvitan, Hawking radiation, W-infinity algebra and trace anomalies, JHEP05 (2008) 071 [arXiv:0804.0198] [SPIRES]. · doi:10.1088/1126-6708/2008/05/071
[35] R. Becar, P. Gonzalez, G. Pulgar and J. Saavedra, Anomaly and Hawking radiation from Unruh’s and canonical acoustic black hole, arXiv:0808.1735 [SPIRES]. · Zbl 1189.83041
[36] L. Bonora, M. Cvitan, S. Pallua and I. Smolic, Hawking fluxes, W1 algebra and anomalies, JHEP12 (2008) 021 [arXiv:0808.2360] [SPIRES]. · Zbl 1329.81339 · doi:10.1088/1126-6708/2008/12/021
[37] V. Akhmedova, T. Pilling, A. de Gill and D. Singleton, Comments on anomaly versus WKB/tunneling methods for calculating Unruh radiation, Phys. Lett.B 673 (2009) 227 [arXiv:0808.3413] [SPIRES].
[38] A.P. Porfyriadis, Hawking radiation via anomaly cancelation for the black holes of five-dimensional minimal gauged supergravity, Phys. Rev.D 79 (2009) 084039 [arXiv:0811.2822] [SPIRES].
[39] A.P. Porfyriadis, Anomalies and Hawking fluxes from the black holes of topologically massive gravity, Phys. Lett.B 675 (2009) 235 [arXiv:0904.2042] [SPIRES].
[40] R. Banerjee and B.R. Majhi, Connecting anomaly and tunneling methods for Hawking effect through chirality, Phys. Rev.D 79 (2009) 064024 [arXiv:0812.0497] [SPIRES].
[41] E. Papantonopoulos and P. Skamagoulis, Hawking radiation via gravitational anomalies in non-spherical topologies, Phys. Rev.D 79 (2009) 084022 [arXiv:0812.1759] [SPIRES].
[42] K. Fujikawa, Quantum anomalies and some recent developments, Int. J. Mod. Phys.A 24 (2009) 3306 [arXiv:0902.2066] [SPIRES]. · Zbl 1176.81121
[43] S. Iso, T. Morita and H. Umetsu, Fluxes of higher-spin currents and Hawking radiations from charged black holes, Phys. Rev.D 76 (2007) 064015 [arXiv:0705.3494] [SPIRES].
[44] S. Iso, T. Morita and H. Umetsu, Higher-spin currents and thermal flux from Hawking radiation, Phys. Rev.D 75 (2007) 124004 [hep-th/0701272] [SPIRES].
[45] S. Iso, T. Morita and H. Umetsu, Higher-spin gauge and trace anomalies in two-dimensional backgrounds, Nucl. Phys.B 799 (2008) 60 [arXiv:0710.0453] [SPIRES]. · Zbl 1292.81125 · doi:10.1016/j.nuclphysb.2008.02.014
[46] S. Iso, T. Morita and H. Umetsu, Hawking radiation via higher-spin gauge anomalies, Phys. Rev.D 77 (2008) 045007 [arXiv:0710.0456] [SPIRES].
[47] R. Banerjee and S. Kulkarni, Hawking radiation and covariant anomalies, Phys. Rev.D 77 (2008) 024018 [arXiv:0707.2449] [SPIRES].
[48] S. Gangopadhyay and S. Kulkarni, Hawking radiation in GHS and non-extremal D1 − D5 blackhole via covariant anomalies, Phys. Rev.D 77 (2008) 024038 [arXiv:0710.0974] [SPIRES].
[49] R. Banerjee, Covariant Anomalies, Horizons and Hawking Radiation, Int. J. Mod. Phys.D 17 (2009) 2539 [arXiv:0807.4637] [SPIRES]. · Zbl 1173.83310
[50] S. Gangopadhyay, Hawking radiation from black holes in de Sitter spaces via covariant anomalies, arXiv:0910.2079 [SPIRES]. · Zbl 1189.83046
[51] S. Nam and J.-D. Park, Hawking radiation from covariant anomalies in 2+1 dimensional black holes, Class. Quant. Grav.26 (2009) 145015 [arXiv:0902.0982] [SPIRES]. · Zbl 1172.83331 · doi:10.1088/0264-9381/26/14/145015
[52] J.-J. Peng and S.-Q. Wu, Covariant anomaly and Hawking radiation from the modified black hole in the rainbow gravity theory, Gen. Rel. Grav.40 (2008) 2619 [arXiv:0709.0167] [SPIRES]. · Zbl 1162.83336 · doi:10.1007/s10714-008-0642-4
[53] J.-J. Peng and S.-Q. Wu, Covariant anomalies and Hawking radiation from charged rotating black strings in anti-de Sitter spacetimes, Phys. Lett.B 661 (2008) 300 [arXiv:0801.0185] [SPIRES]. · Zbl 1282.83037
[54] S. Gangopadhyay, Hawking radiation in Reissner-Nordstróm blackhole with a global monopole via covariant anomalies and effective action, Phys. Rev.D 78 (2008) 044026 [arXiv:0803.3492] [SPIRES].
[55] S.-Q. Wu, J.-J. Peng and Z.-Y. Zhao, Anomalies, effective action and Hawking temperatures of a Schwarzschild black hole in the isotropic coordinates, Class. Quant. Grav.25 (2008) 135001 [arXiv:0803.1338] [SPIRES]. · Zbl 1180.83062 · doi:10.1088/0264-9381/25/13/135001
[56] Q.-Q. Jiang and X. Cai, Covariant anomalies, effective action and Hawking radiation from Kerr-Goedel black hole, Phys. Lett.B 677 (2009) 179 [SPIRES].
[57] R. Banerjee and S. Kulkarni, Hawking radiation, effective actions and covariant boundary conditions, Phys. Lett.B 659 (2008) 827 [arXiv:0709.3916] [SPIRES]. · Zbl 1246.83096
[58] R. Banerjee and S. Kulkarni, Hawking radiation, covariant boundary conditions and vacuum states, Phys. Rev.D 79 (2009) 084035 [arXiv:0810.5683] [SPIRES].
[59] S. Gangopadhyay, Hawking radiation in GHS blackhole, effective action and covariant boundary condition, Phys. Rev.D 77 (2008) 064027 [arXiv:0712.3095] [SPIRES].
[60] R. Banerjee and B.R. Majhi, Quantum tunneling beyond semiclassical approximation, JHEP06 (2008) 095 [arXiv:0805.2220] [SPIRES]. · doi:10.1088/1126-6708/2008/06/095
[61] S.K. Modak, Corrected entropy of BTZ black hole in tunneling approach, Phys. Lett.B 671 (2009) 167 [arXiv:0807.0959] [SPIRES].
[62] B.R. Majhi, Fermion tunneling beyond semiclassical approximation, Phys. Rev.D 79 (2009) 044005 [arXiv:0809.1508] [SPIRES].
[63] R. Banerjee, B.R. Majhi and D. Roy, Corrections to Unruh effect in tunneling formalism and mapping with Hawking effect, arXiv:0901.0466 [SPIRES].
[64] R. Banerjee, B.R. Majhi and E.C. Vagenas, Quantum tunneling and black hole spectroscopy, Phys. Lett.B 686 (2010) 279 [arXiv:0907.4271] [SPIRES].
[65] J. Zhang, Black hole quantum tunnelling and black hole entropy correction, Phys. Lett.B 668 (2008) 353 [arXiv:0806.2441] [SPIRES].
[66] J. Zhang, Black hole entropy, log correction and inverse area correction, Phys. Lett.B 675 (2009) 14 [SPIRES].
[67] R.-G. Cai, L.-M. Cao and Y.-P. Hu, Corrected entropy-area relation and modified Friedmann equations, JHEP08 (2008) 090 [arXiv:0807.1232] [SPIRES]. · doi:10.1088/1126-6708/2008/08/090
[68] T. Zhu, J.-R. Ren and M.-F. Li, Influence of generalized and extended uncertainty principle on thermodynamics of FRW universe, Phys. Lett.B 674 (2009) 204 [arXiv:0811.0212] [SPIRES].
[69] T. Zhu and J.-R. Ren, Corrections to Hawking-like radiation for a Friedmann-Robertson-Walker universe, Eur. Phys. J.C 62 (2009) 413 [arXiv:0811.4074] [SPIRES]. · Zbl 1188.83067 · doi:10.1140/epjc/s10052-009-1044-9
[70] T. Zhu, J.-R. Ren and M.-F. Li, Corrected entropy of Friedmann-Robertson-Walker universe in tunneling method, JCAP08 (2009) 010 [arXiv:0905.1838] [SPIRES].
[71] T. Zhu, J.-R. Ren and M.-F. Li, Corrected entropy of high dimensional black holes, arXiv:0906.4194 [SPIRES].
[72] M.J. Wang, C.K. Ding, S.B. Chen and J.L. Jing, Is Hawking temperature modified by the quantum tunneling beyond semiclassical approximation, Gen. Rel. Grav.42 (2009) 347. · Zbl 1255.83081 · doi:10.1007/s10714-009-0847-1
[73] R. Banerjee and B.R. Majhi, Quantum tunneling, trace anomaly and effective metric, Phys. Lett.B 674 (2009) 218 [arXiv:0808.3688] [SPIRES].
[74] R. Banerjee and S.K. Modak, Exact differential and corrected area law for stationary black holes in tunneling method, JHEP05 (2009) 063 [arXiv:0903.3321] [SPIRES]. · doi:10.1088/1126-6708/2009/05/063
[75] R. Banerjee and B.R. Majhi, Hawking black body spectrum from tunneling mechanism, Phys. Lett.B 675 (2009) 243 [arXiv:0903.0250] [SPIRES].
[76] R. Banerjee and S.K. Modak, Quantum tunneling, blackbody spectrum and non-logarithmic entropy correction for lovelock black holes, JHEP11 (2009) 073 [arXiv:0908.2346] [SPIRES]. · doi:10.1088/1126-6708/2009/11/073
[77] C.O. Lousto and N.G. Sanchez, Back reaction effects in black hole space-times, Phys. Lett.B 212 (1988) 411 [SPIRES].
[78] C.G. Huang, Thermal stress-energy tensor of a scalar field in Reissner-Nordström space-time, Phys. Lett.A 164 (1992) 384.
[79] D.V. Fursaev, Temperature and entropy of a quantum black hole and conformal anomaly, Phys. Rev.D 51 (1995) 5352 [hep-th/9412161] [SPIRES].
[80] R.B. Mann and S.N. Solodukhin, Universality of quantum entropy for extreme black holes, Nucl. Phys.B 523 (1998) 293 [hep-th/9709064] [SPIRES]. · Zbl 0953.83015 · doi:10.1016/S0550-3213(98)00094-7
[81] D.N. Page, Hawking radiation and black hole thermodynamics, New J. Phys.7 (2005) 203 [hep-th/0409024] [SPIRES]. · doi:10.1088/1367-2630/7/1/203
[82] R.K. Kaul and P. Majumdar, Logarithmic correction to the Bekenstein-Hawking entropy, Phys. Rev. Lett.84 (2000) 5255 [gr-qc/0002040] [SPIRES]. · doi:10.1103/PhysRevLett.84.5255
[83] S. Kloster, J. Brannlund and A. DeBenedictis, Phase-space and black hole entropy of higher genus horizons in loop quantum gravity, Class. Quant. Grav.25 (2008) 065008 [gr-qc/0702036] [SPIRES]. · Zbl 1137.83346 · doi:10.1088/0264-9381/25/6/065008
[84] S. Das, P. Majumdar and R.K. Bhaduri, General logarithmic corrections to black hole entropy, Class. Quant. Grav.19 (2002) 2355 [hep-th/0111001] [SPIRES]. · Zbl 1003.83025 · doi:10.1088/0264-9381/19/9/302
[85] S.S. More, Higher order corrections to black hole entropy, Class. Quant. Grav.22 (2005) 4129 [gr-qc/0410071] [SPIRES]. · Zbl 1075.83524 · doi:10.1088/0264-9381/22/19/021
[86] S. Mukherji and S.S. Pal, Logarithmic corrections to black hole entropy and AdS/CFT correspondence, JHEP05 (2002) 026 [hep-th/0205164] [SPIRES]. · doi:10.1088/1126-6708/2002/05/026
[87] S. Carlip, Logarithmic corrections to black hole entropy from the Cardy formula, Class. Quant. Grav.17 (2000) 4175 [gr-qc/0005017] [SPIRES]. · Zbl 0970.83026 · doi:10.1088/0264-9381/17/20/302
[88] M.R. Setare, Logarithmic correction to the Cardy-Verlinde formula in Achúcarro-Ortiz black hole, Eur. Phys. J.C 33 (2004) 555 [hep-th/0309134] [SPIRES]. · Zbl 1191.83029
[89] H. Leutwyler, Gravitational anomalies: a soluble two-dimensional model, Phys. Lett.B 153 (1985) 65 [SPIRES].
This reference list is based on information provided by the publisher or from digital mathematics libraries. Its items are heuristically matched to zbMATH identifiers and may contain data conversion errors. In some cases that data have been complemented/enhanced by data from zbMATH Open. This attempts to reflect the references listed in the original paper as accurately as possible without claiming completeness or a perfect matching.