New Insights into Black Hole Thermodynamics and Stability with Quantum Fluctuation-induced Corrections

Researchers from the National Institute of Technology have made significant advancements in understanding the behavior of black holes within the framework of Einstein-Yang-Mills (EYM) theory. By employing a higher-dimensional Wu-Yang ansatz, they have thoroughly examined the effects of quantum fluctuations on the black hole's thermodynamic properties, including its entropy, ability to perform work, and response to temperature and pressure changes. This detailed analysis has revealed the black hole's remarkable stability persists even under the influence of these quantum fluctuations.

Key Takeaways:

  • The researchers used a mathematical technique known as the higher-dimensional Wu-Yang ansatz to investigate a specific black hole solution within a 5D geometrical context.
  • The study utilized Einstein-Yang-Mills (EYM) theory, a synthesis of gravity and a specific force field, to explore the black hole's thermodynamic properties.
  • The researchers investigated how quantum fluctuations affect the black hole's entropy, ability to perform work, and response to temperature and pressure changes.
  • The analysis involved a comprehensive examination of the black hole's specific heat capacity, a key thermodynamic quantity, to discern potential phase transitions.
  • The study found that the black hole's stability persists despite the influence of quantum fluctuations.
  • The researchers employed logarithmic entropy corrections derived from the generalized uncertainty principle to account for quantum fluctuations.
  • The black hole's remarkable stability was attributed to its ability to maintain its thermal equilibrium despite the presence of quantum fluctuations.
  • The study's findings have significant implications for our understanding of black hole behavior and the interplay between gravity and quantum mechanics.

Statistics:

  • The study was published in the journal Progress of Theoretical and Experimental Physics in 2025.
  • The research was conducted within the framework of Einstein-Yang-Mills (EYM) theory.
  • The higher-dimensional Wu-Yang ansatz was used to evaluate the black hole's thermodynamic properties.
  • Quantum fluctuations were found to have a negligible impact on the black hole's stability.
  • The black hole's specific heat capacity was found to be a key indicator of its stability.
  • The study's results have the potential to impact our understanding of black hole behavior and the interplay between gravity and quantum mechanics.

Sources:

  • NewsRx. New Findings from National Institute of Technology in Physics Provides New Insights [Black Hole Thermodynamics and Stability In Einstein-yang-mills (Eym) Gravity With Quantum Fluctuation-induced Corrections]. Journal of Physics Research. October 21, 2025; p 297.
  • Rather, N. u. I. Black Hole Thermodynamics and Stability In Einstein-yang-mills (Eym) Gravity With Quantum Fluctuation-induced Corrections. Progress of Theoretical and Experimental Physics, 2025;2025(8).