English

Temperatures of AdS$_2$ black holes and holography revisited

High Energy Physics - Theory 2024-10-07 v4 General Relativity and Quantum Cosmology

Abstract

In a dilaton gravity model, we revisit the calculation of the temperature of an evaporating black hole that is initially formed by a shock wave, taking into account the quantum backreaction. Based on the holographic principle, along with the assumption of a boundary equation of motion, we show that the black hole energy is maintained for a while during the early stage of evaporation. Gradually, it decreases as time goes on and eventually vanishes. Thus, the Stefan-Boltzmann law tells us that the black hole temperature, defined by the emission rate of the black hole energy, starts from zero temperature and reaches a maximum value at a critical time, and finally vanishes. It is also shown that the maximum temperature of the evaporating black hole never exceeds the Hawking temperature of the eternal AdS2_{2} black hole. We discuss physical implications of the initial zero temperature of the evaporating black hole.

Keywords

Cite

@article{arxiv.2304.04427,
  title  = {Temperatures of AdS$_2$ black holes and holography revisited},
  author = {Wontae Kim and Mungon Nam},
  journal= {arXiv preprint arXiv:2304.04427},
  year   = {2024}
}

Comments

14 pages, 2 figures, version published in Modern Physics Letters A