Charged particle scattering near the horizon
Publication date
2024-02-21
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Abstract
We study Maxwell theory, in the presence of charged scalar sources, near the black hole horizon in a partial wave basis. We derive the gauge field configuration that solves Maxwell equations in the near-horizon region of a Schwarzschild black hole when sourced by a charge density of a localised charged particle. This is the electromagnetic analog of the gravitational Dray-’t Hooft shockwave near the horizon. We explicitly calculate the S-matrix associated with this shockwave in the first quantised 1 → 1 formalism. We develop a theory for scalar QED near the horizon using which we compute the electromagnetic eikonal S-matrix from elastic 2 → 2 scattering of charged particles exchanging soft photons in the black hole eikonal limit. The resulting ladder resummation agrees perfectly with the result from the first quantised formalism, whereas the field-theoretic formulation allows for a computation of a wider range of amplitudes. As a demonstration, we explicitly compute sub-leading corrections that arise from four-vertices.
Keywords
Black Holes, Effective Field Theories, Models of Quantum Gravity, Scattering Amplitudes
Citation
Feleppa, F, Gaddam, N & Groenenboom, N 2024, 'Charged particle scattering near the horizon', Journal of High Energy Physics, vol. 2024, no. 2, 148. https://doi.org/10.1007/JHEP02(2024)148