Schwinger instability, modular flow, and holographic entropy for near-extremal charged BTZ black hole
Mendrit Latifi, Kimet Jusufi

TL;DR
This paper explores quantum effects like Schwinger pair production and entropy flow in the near-horizon region of near-extremal charged BTZ black holes, linking quantum radiation to geometric and gravitational dynamics.
Contribution
It introduces a detailed analysis of quantum instabilities and entropy flow using advanced algebraic and geometric methods, connecting quantum field theory with gravitational equations in a novel setting.
Findings
Identification of an emergent warped AdS2 x S1 geometry with electric field
Calculation of pair production rate and effective temperature near the horizon
Derivation of Einstein equations from entropy extremization and quantum effects
Abstract
We investigate the quantum dynamics of a charged scalar field in the near-horizon region of a near-extremal charged BTZ black hole. A controlled expansion of the Einstein-Maxwell equations reveals an emergent warped AdS throat geometry threaded by a constant electric field--an ideal setting for studying Schwinger pair production, Hawking radiation, and entropy flow. By solving the Klein-Gordon equation using both tunneling and field-theoretic methods, we compute the pair production rate and identify an effective Unruh-like temperature. In particular, we apply the WKB approximation for Hawking tunneling, justified by the infinite blueshift experienced by outgoing modes near the horizon. Instability arises when local acceleration exceeds the AdS curvature scale, linking near-horizon dynamics to thermal emission. Through the generalized uncertainty principle, which implies…
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