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We analyze the Hawking radiation process due to collapsing configurations in the presence of superluminal modifications of the dispersion relation.
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G. E. Volovik, “The Universe in a helium droplet,” Clarendon Press, Oxford (2003)
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M. Visser, “Essential and inessential features of Hawking radiation,” Int. J. Mod. Phys. D 12
C. Barceló, A. Cano, L. J. Garay and G. Jannes, “Stability analysis of sonic horizons in Bose-Einstein condensates,” Phys. Rev. D 74
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R. Schützhold, “On the detectability of quantum radiation in Bose-Einstein Condensates,” Phys. Rev. Lett. 97
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C. Barceló, S. Liberati, S. Sonego and M. Visser, “Quasi-particle creation by analogue black holes,” Class. Quant. Grav. 23
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2003
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C. Barceló, S. Liberati and M. Visser, “Towards the observation of Hawking radiation in Bose-Einstein condensates,” Int. J. Mod. Phys. A 18
2003
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C. Barceló, S. Liberati and M. Visser, “Analogue gravity,” Living Rev. Rel. 8
2005
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F. R. Klinkhamer and G. E. Volovik, “Merging gauge coupling constants without grand unification,” Pisma Zh. Eksp. Teor. Fiz. 81
2005
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D. Mattingly, “Modern tests of Lorentz invariance,” Living Rev. Rel. 8
2005
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W. G. Unruh and R. Schützhold, “On the universality of the Hawking effect,” Phys. Rev. D 71
2005
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A. Fabbri and J. Navarro-Salas, “Modeling black hole evaporation,” Imperial College Press, London (2005)
2005
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I. Agullo, J. Navarro-Salas, G. J. Olmo and L. Parker, “Short-distance contribution to the spectrum of Hawking radiation,” Phys. Rev. D 76
2007
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S. Wüster and C. M. Savage, “Limits to the analogue Hawking temperature in a Bose-Einstein condensate,” Phys. Rev. A 76
2007
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2007
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2008
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