Thermal bath induced suppression of Hawking radiation
Hong Wang, Jin Wang
Abstract
The cosmic microwave background radiation or particles surrounding a black hole can be modeled as a thermal bath coupled to the black hole. In this study, we investigate the effects of such a thermal bath on black hole radiation. The model involves Hawking radiation particles that are bilinearly coupled to the thermal bath. In this framework, the Hawking radiation particles are treated as the system, and the bath serves as the environment. We analytically derive the effective Keldysh action and the dynamical equation of the system, which are essential for studying the effective dynamics of Hawking radiation. For the specific case of a bath weakly coupled to the radiation particles from a Schwarzschild black hole, we numerically solve the effective dynamical equation. The results indicate that the bath suppresses Hawking radiation. Consequently, an observer located far away from the black hole will detect radiation that is weaker than Hawking's original prediction.
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