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Quantum optics meets black hole thermodynamics via conformal quantum mechanics: I. Master equation for acceleration radiation

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arxiv 2108.07570 v1 pith:W6VIMGDM submitted 2021-08-17 gr-qc hep-thquant-ph

classification gr-qchep-thquant-ph
keywords accelerationblackholequantumradiationatomiccloudconformal
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A quantum-optics approach is used to study the nature of the acceleration radiation due to a random atomic cloud falling freely into a generalized Schwarzschild black hole through a Boulware vacuum. The properties of this horizon brightened acceleration radiation (HBAR) are analyzed with a master equation that is fully developed in a multimode format. A scheme for the coarse-graining average for an atomic cloud is considered, with emphasis on the random injection scenario, which is shown to generate a thermal state. The role played by conformal quantum mechanics (CQM) is shown to be critical for detailed balance via a Boltzmann factor governed by the near-horizon physics, with the unique selection of the Hawking temperature. The HBAR thermal state is the basis for a thermodynamic framework that parallels black hole thermodynamics.

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Cited by 2 Pith papers

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

  1. Ringdown modulation of acceleration radiation in the Schwarzschild background

    gr-qc 2025-11 reject novelty 5.0 of 10

    Near a Schwarzschild horizon, a quadrupolar quasinormal ringdown is claimed to modulate the detector detailed-balance exponent by a decaying sinusoid at the QNM frequency, at first order in the perturbation amplitude.

  2. Integrals of motion on extremals of the equation Euler-Lagrange

    physics.class-ph 2025-08 unverdicted novelty 4.0 of 10

    The paper claims that Wronskian determinants of closed first-order ODE systems serve as integrals of motion on Euler-Lagrange extremals, constructed via the Jacobi equation.

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