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October 18, 2025Physical Review Letters4 citationsOpen Access

Hawking Evaporation and the Fate of Black Holes in Loop Quantum Gravity

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IBIdrus Husin BelfaqihMBMartin BojowaldSBSuddhasattwa Brahma

Key Points

  • Hawking radiation is confirmed under loop quantum gravity, demonstrating thermal attributes and energy emission.
  • Absorption rates are shown to relate directly to the horizon area, reflecting consistent thermal behavior.
  • The model explores black-hole evaporation dynamics, particularly outlining a possible black-to-white hole transition.
  • First-principles derivations indicate significant quantum-geometry effects influencing the final state of black holes.

Abstract

A recent covariant formulation, that includes nonperturbative effects from loop quantum gravity (LQG) as self-consistent effective models, has revealed the possibility of nonsingular black hole solutions. The new framework makes it possible to couple scalar matter to such LQG black holes and derive Hawking radiation in the presence of quantum spacetime effects while respecting general covariance. Standard methods to derive particle production both within the geometric optics approximation and the Parikh–Wilczek tunnelling approach are therefore available and confirm the thermal nature of Hawking radiation. The covariant description of scale-dependent decreasing holonomy corrections maintains Hawking temperature as well as universality of the low-energy transmission coefficients, stating that the absorption rates are proportional to the horizon area at leading order. Quantum-geometry effects enter the thermal distribution only through subleading corrections in the graybody factors. Nevertheless, they do impact energy emission of the black hole and its final state in a crucial way regarding one of the main questions of black-hole evaporation: whether a black-to-white-hole transition, or a stable remnant, is preferred. For the first time, a first-principles derivation, based on a discussion of backreaction, finds evidence that points to the former outcome.

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Cite This Study

Belfaqih et al. (2025) studied this question.

synapsesocial.com/papers/68f3b2fb3f213c1f8b4d35f9https://doi.org/10.1103/t6q4-4l77
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