4.7 Article

An application of Lorentz-invariance violation in black hole thermodynamics

Journal

EUROPEAN PHYSICAL JOURNAL C
Volume 77, Issue 10, Pages -

Publisher

SPRINGER
DOI: 10.1140/epjc/s10052-017-5220-z

Keywords

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Funding

  1. Sichuan Youth Science and Technology Foundation [2011JQ0019]
  2. FANEDD [201319]
  3. Innovative Research Team in College of Sichuan Province [13TD0003]
  4. Sichuan Natural Science Foundation [16ZB0178]
  5. starting fund of China West Normal University [14D014]
  6. [NCET12-1060]

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In this paper, we have applied the Lorentzinvariance violation (LIV) class of dispersion relations (DRs) with the dimensionless parameter n = 2 and the sign of LIV eta+ = 1, to a phenomenological study of the effect of quantum gravity in a strong gravitational field. Specifically, we have studied the effect of the LIV-DR induced quantum gravity on the Schwarzschild black hole thermodynamics. The result shows that the effect of the LIV-DR induced quantum gravity speeds up the black hole evaporation, and its corresponding black hole entropy undergoes a leading logarithmic correction to the reduced Bekenstein-Hawking entropy, and the ill-defined situations (i.e. the singularity problem and the critical problem) are naturally bypassed when the LIV-DR effect is present. Also, to put our results in a proper perspective, we have compared results with the earlier findings by another quantum-gravity candidate, i.e. the generalized uncertainty principle (GUP). Finally, we conclude from the inert remnants at the final stage of the black hole evaporation that, the GUP as a candidate for describing quantum gravity can always do as well as the LIV-DR by adjusting the model-dependent parameters, but in the same model-dependent parameters the LIV-DR acts as a more suitable candidate.

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