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Thermodynamics and kinetics of state switching for the asymptotically flat black hole in a cavity

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arxiv 2405.09151 v2 pith:FFETD5KV submitted 2024-05-15 gr-qc cond-mat.stat-mechhep-th

classification gr-qccond-mat.stat-mechhep-th
keywords blackholecavityenergyfreelandscapestateswitching
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abstract

We propose that the thermodynamics and the kinetics of state switching for the asymptotically flat black hole enclosed by a cavity can be studied in terms of the free energy landscape formalism. The generalized free energy for the black hole enclosed by a cavity in the canonical ensemble is derived by using the York's approach, where the temperature on the cavity and the charges inside the cavity are kept as the fixed parameters. By quantifying the corresponding free energy landscape, we obtain the phase diagrams for the black hole in cavity, which reveal a Hawking-Page type transition for the uncharged black hole and a Van der Waals type transition for the charged black hole. We further assume that the dynamics of black hole state switching is mutually determined by the gradient force and the stochastic force arising from the free energy landscape and the thermal noises respectively. We then derive a recurrence relation for the $n$-momentum of the first passage time distribution function, which enables the calculation of the kinetic times characterized by the mean first passage time and its relative fluctuation. Our analysis illustrates that the kinetics of black hole state switching is determined by the ensemble temperature and the barrier height on the free energy landscape.

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Cited by 2 Pith papers

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score.

  1. Probabilistic Evolution of Black Hole Thermodynamic States via Fokker-Planck Equation

    gr-qc 2026-04 unverdicted novelty 4.0 of 10

    Solving the Fokker-Planck equation shows RN-AdS black hole phase transitions synchronize with a peak in entropy production rate, driven by maximum thermodynamic dissipation.

  2. Topology of black hole thermodynamics: A brief review

    gr-qc 2026-04 unverdicted novelty 2.0 of 10

    Topological numbers categorize black hole systems into universality classes based on thermodynamic behavior, with calculations for critical points and phase transitions.

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