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Non-equilibrium Landauer Transport Model for Hawking radiation from a Black Hole

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arxiv 1009.3974 v4 pith:ZSK7XJD5 submitted 2010-09-21 gr-qc cond-mat.mes-hallquant-ph

classification gr-qccond-mat.mes-hallquant-ph
keywords hawkinglandauerradiationblackentropyholeapproachenergy
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We propose that the Hawking radiation energy and entropy flow rates from a black hole can be viewed as a one-dimensional (1D), non-equilibrium Landauer transport process. Support for this viewpoint comes from previous calculations invoking conformal symmetry in the near-horizon region, which give radiation rates that are identical to those of a single 1D quantum channel connected to a thermal reservoir at the Hawking temperature. The Landauer approach shows in a direct way the particle statistics independence of the energy and entropy fluxes of a black hole radiating into vacuum, as well as one near thermal equilibrium with its environment. As an application of the Landauer approach, we show that Hawking radiation gives a net entropy production that is 50% larger than that obtained assuming standard three-dimensional emission into vacuum.

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  1. A note on entropy of matter in presence of gravity: status of extensivity of entropy

    gr-qc 2025-07 conditional novelty 4.0 of 10

    In a strong uniform Newtonian gravitational field, the entropy of a monoatomic ideal gas depends on the container's cross-sectional area and is extensive when particle number per unit area is fixed.

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