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Linear bosonic and fermionic quantum gauge theories on curved spacetimes

Hack, Thomas-Paul; Schenkel, Alexander

Authors

Thomas-Paul Hack



Abstract

We develop a general setting for the quantization of linear bosonic and fermionic field theories subject to local gauge invariance and show how standard examples such as linearized Yang-Mills theory and linearized general relativity fit into this framework. Our construction always leads to a well-defined and gauge-invariant quantum field algebra, the centre and representations of this algebra, however, have to be analysed on a case-by-case basis. We discuss an example of a fermionic gauge field theory where the necessary conditions for the existence of Hilbert space representations are not met on any spacetime. On the other hand, we prove that these conditions are met for the Rarita-Schwinger gauge field in linearized pure N=1 supergravity on certain spacetimes, including asymptotically flat spacetimes and classes of spacetimes with compact Cauchy surfaces. We also present an explicit example of a supergravity background on which the Rarita-Schwinger gauge field can not be consistently quantized.

Citation

Hack, T.-P., & Schenkel, A. (2013). Linear bosonic and fermionic quantum gauge theories on curved spacetimes. General Relativity and Gravitation, 45(5), 877-910. https://doi.org/10.1007/s10714-013-1508-y

Journal Article Type Article
Acceptance Date Feb 5, 2013
Online Publication Date Mar 16, 2013
Publication Date 2013-05
Deposit Date Aug 22, 2019
Journal General Relativity and Gravitation
Print ISSN 0001-7701
Electronic ISSN 1572-9532
Publisher Springer Verlag
Peer Reviewed Peer Reviewed
Volume 45
Issue 5
Pages 877-910
DOI https://doi.org/10.1007/s10714-013-1508-y
Keywords Mathematical Physics; General Relativity and Quantum Cosmology; High Energy Physics - Theory;
Public URL https://nottingham-repository.worktribe.com/output/2460567
Publisher URL https://link.springer.com/article/10.1007%2Fs10714-013-1508-y