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Published November 19, 2020 | Version v1
Journal article

Revisiting the renormalization of Einstein-Maxwell theory at one-loop

Creators

  • 1. Department of Applied Mathematics, Philander Smith College, Little Rock, AR 72223 (United States)

Description

In a series of recent works based on foliation-based quantization in which renormalizability has been achieved for the physical sector of the theory, we have shown that the use of the standard graviton propagator interferes, due to the presence of the trace mode, with the four-dimensional covariance. A subtlety in the background field method also requires careful handling. This status of the matter motivated us to revisit an Einstein-scalar system in one of the sequels. Continuing the endeavors, we revisit the one-loop renormalization of an Einstein-Maxwell system in the present work. The systematic renormalization of the cosmological and Newton constants is carried out by applying the refined background field method. The one-loop beta function of the vector coupling constant is explicitly computed and compared with the literature. The longstanding problem of the gauge choice dependence of the effective action is addressed, and the manner in which gauge choice independence is restored in the present framework is discussed. The formalism also sheds light on background independent analysis. The renormalization involves a metric field redefinition originally introduced by 't Hooft; with the field redefinition the theory should be predictive.

Availability note (English)

Available from http://dx.doi.org/10.1093/ptep/ptaa167; Available from http://repo.scoap3.org/records/59895

Additional details

Additional titles

Augmented title (English)
(free terms) Lattice gauge field theories; Other topics in gauge field theories; B06; Renormalization and renormalization group equation; Quantization and formalism

Publishing Information

Journal Title
Progress of Theoretical and Experimental Physics
Journal Volume
2021
Journal Issue
1
Journal Page Range
30 p.
ISSN
2050-3911

Optional Information

Copyright
Copyright (c) The Author(s) 2020. Published by Oxford University Press on behalf of the Physical Society of Japan.
Notes
PUBLISHER-ID: ptaa167; OAI: oai:repo.scoap3.org:59895