Weyl invariance in metric f(R) gravity

Abstract We aim to derive the most general f(R) gravity theory, including the matter, so that it be Weyl invariant. Making use of the mathematical equivalence of these theories with an type of scalar-tensor theory (which includes a scalar degree of freedom, ϕ) and by imposing the Weyl invariance for the pure gravity (under this label, we understand the part that does not involve fields of matter although it could include kinetic terms linked to ϕ) as well as for the matter sector, we obtain the fundamental equation that restricts the form of V = ˙ R ϕ - f ( R ) (and, accordingly, of f(R)) so that the resulting action to be Weyl invariant in the Jordan frame. We show that this action is not other than the so-called gravity-dilaton action with one scalar field, Φ, which effective mass is R and Φ dependent. In the Einstein frame, the action becomes the Einstein-Hilbert action with the Ricci scalar being constant due to that the effective mass of scalar field in this frame vanish. So, we can assume that the Ricci scalar, in the Einstein frame, is the true Cosmological Constant. Therefore, is not preposterous to guess that, at least mathematically, all Weyl invariant metric f(R) theory in the Jordan frame is equivalent, at classical level, to the Einstein gravity, in the Einstein frame, with a constant Ricci scalar. At quantum level, as it is known, both theories are not equivalent due to the presence of anomalies in one of the frames.

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Main Author: Fernández Cristóbal,J.M.
Format: Digital revista
Language:English
Published: Sociedad Mexicana de Física 2018
Online Access:http://www.scielo.org.mx/scielo.php?script=sci_arttext&pid=S0035-001X2018000200181
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spelling oai:scielo:S0035-001X20180002001812019-05-03Weyl invariance in metric f(R) gravityFernández Cristóbal,J.M. Weyl invariance metric f(R) gravity Jordan frame Einstein frame Abstract We aim to derive the most general f(R) gravity theory, including the matter, so that it be Weyl invariant. Making use of the mathematical equivalence of these theories with an type of scalar-tensor theory (which includes a scalar degree of freedom, ϕ) and by imposing the Weyl invariance for the pure gravity (under this label, we understand the part that does not involve fields of matter although it could include kinetic terms linked to ϕ) as well as for the matter sector, we obtain the fundamental equation that restricts the form of V = ˙ R ϕ - f ( R ) (and, accordingly, of f(R)) so that the resulting action to be Weyl invariant in the Jordan frame. We show that this action is not other than the so-called gravity-dilaton action with one scalar field, Φ, which effective mass is R and Φ dependent. In the Einstein frame, the action becomes the Einstein-Hilbert action with the Ricci scalar being constant due to that the effective mass of scalar field in this frame vanish. So, we can assume that the Ricci scalar, in the Einstein frame, is the true Cosmological Constant. Therefore, is not preposterous to guess that, at least mathematically, all Weyl invariant metric f(R) theory in the Jordan frame is equivalent, at classical level, to the Einstein gravity, in the Einstein frame, with a constant Ricci scalar. At quantum level, as it is known, both theories are not equivalent due to the presence of anomalies in one of the frames.info:eu-repo/semantics/openAccessSociedad Mexicana de FísicaRevista mexicana de física v.64 n.2 20182018-04-01info:eu-repo/semantics/articletext/htmlhttp://www.scielo.org.mx/scielo.php?script=sci_arttext&pid=S0035-001X2018000200181en10.31349/revmexfis.64.181
institution SCIELO
collection OJS
country México
countrycode MX
component Revista
access En linea
databasecode rev-scielo-mx
tag revista
region America del Norte
libraryname SciELO
language English
format Digital
author Fernández Cristóbal,J.M.
spellingShingle Fernández Cristóbal,J.M.
Weyl invariance in metric f(R) gravity
author_facet Fernández Cristóbal,J.M.
author_sort Fernández Cristóbal,J.M.
title Weyl invariance in metric f(R) gravity
title_short Weyl invariance in metric f(R) gravity
title_full Weyl invariance in metric f(R) gravity
title_fullStr Weyl invariance in metric f(R) gravity
title_full_unstemmed Weyl invariance in metric f(R) gravity
title_sort weyl invariance in metric f(r) gravity
description Abstract We aim to derive the most general f(R) gravity theory, including the matter, so that it be Weyl invariant. Making use of the mathematical equivalence of these theories with an type of scalar-tensor theory (which includes a scalar degree of freedom, ϕ) and by imposing the Weyl invariance for the pure gravity (under this label, we understand the part that does not involve fields of matter although it could include kinetic terms linked to ϕ) as well as for the matter sector, we obtain the fundamental equation that restricts the form of V = ˙ R ϕ - f ( R ) (and, accordingly, of f(R)) so that the resulting action to be Weyl invariant in the Jordan frame. We show that this action is not other than the so-called gravity-dilaton action with one scalar field, Φ, which effective mass is R and Φ dependent. In the Einstein frame, the action becomes the Einstein-Hilbert action with the Ricci scalar being constant due to that the effective mass of scalar field in this frame vanish. So, we can assume that the Ricci scalar, in the Einstein frame, is the true Cosmological Constant. Therefore, is not preposterous to guess that, at least mathematically, all Weyl invariant metric f(R) theory in the Jordan frame is equivalent, at classical level, to the Einstein gravity, in the Einstein frame, with a constant Ricci scalar. At quantum level, as it is known, both theories are not equivalent due to the presence of anomalies in one of the frames.
publisher Sociedad Mexicana de Física
publishDate 2018
url http://www.scielo.org.mx/scielo.php?script=sci_arttext&pid=S0035-001X2018000200181
work_keys_str_mv AT fernandezcristobaljm weylinvarianceinmetricfrgravity
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