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Abstract

We consider theories for scalar and vector fields coupled to the energy-momentum tensor. Since these fields also carry a non-trivial energy-momentum tensor, the coupling prescription generates self-interactions. In analogy with gravity theories, we build the action by means of an iterative process that leads to an infinite series, which can be resumed as the solution of a set of differential equations. We show that, in some particular cases, the equations become algebraic and that is also possible to find solutions in the form of polynomials. We briefly review the case of the scalar field that has already been studied in the literature and extend the analysis to the case of derivative (disformal) couplings. We then explore theories with vector fields, distinguishing between gauge-and non-gauge-invariant couplings. Interactions with matter are also considered, taking a scalar field as a proxy for the matter sector. We also discuss the ambiguity introduced by superpotential (boundary) terms in the definition of the energy-momentum tensor and use them to show that it is also possible to generate Galileon-like interactions with this procedure. We finally use collider and astrophysical observations to set constraints on the dimensionful coupling which characterises the phenomenology of these models.

Details

Title
On scalar and vector fields coupled to the energy-momentum tensor
Author
Jose Beltrán Jiménez 1 ; Cembranos, Jose A R 2   VIAFID ORCID Logo  ; Sánchez Velázquez, Jose M 2   VIAFID ORCID Logo 

 Instituto de Física Teórica UAM-CSIC, Universidad Autónoma de Madrid, Madrid, Spain; Departamento de Física Fundamental, Universidad de Salamanca, Salamanca, Spain 
 Departamento de Física Teórica and UPARCOS, Universidad Complutense de Madrid, Madrid, Spain 
Pages
1-45
Publication year
2018
Publication date
May 2018
Publisher
Springer Nature B.V.
e-ISSN
10298479
Source type
Scholarly Journal
Language of publication
English
ProQuest document ID
2039707297
Copyright
Journal of High Energy Physics is a copyright of Springer, (2018). All Rights Reserved.