The effective field theory approach to the strong coupling issue in $f(T)$ gravity with a non-minimally coupled scalar field

Fuente: arXiv
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Autori principali: Hu, Yu-Min, Yu, Yang, Cai, Yi-Fu, Gao, Xian
Natura: Preprint
Pubblicazione: 2023
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author Hu, Yu-Min
Yu, Yang
Cai, Yi-Fu
Gao, Xian
author_facet Hu, Yu-Min
Yu, Yang
Cai, Yi-Fu
Gao, Xian
contents The Hamiltonian analysis for $f(T)$ gravity implies the existence of at least one scalar-type degree of freedom (DoF). However, this scalar DoF of $f(T)$ gravity does not manifest in linear perturbations around a cosmological background, which indicates an underlying strong coupling problem. In this work we expand the scope by introducing an extra scalar field non-minimally coupled to $f(T)$ gravity, aiming to address or alleviate the aforementioned strong coupling problem. Employing the effective field theory (EFT) approach, we provide a class of torsional EFT forms up to second order operators, avoiding the Ostrogradsky ghost. To illustrate this phenomenon, we study a simple model and perform a detailed analysis of its linear scalar perturbations. The results demonstrate that the coupling terms in this toy model are necessary to avoid the initial degenerate situation. The complete avoidance of new constraints requires more coupling terms. Once this vanishing scalar DoF starts propagating in cosmological background at linear level, this phenomenon will demand a revisit of the strong coupling issue that arises in $f(T)$ gravity, particularly in the presence of matter coupling.
format Preprint
id arxiv_https___arxiv_org_abs_2311_12645
institution arXiv
publishDate 2023
record_format arxiv
spellingShingle The effective field theory approach to the strong coupling issue in $f(T)$ gravity with a non-minimally coupled scalar field
Hu, Yu-Min
Yu, Yang
Cai, Yi-Fu
Gao, Xian
General Relativity and Quantum Cosmology
Cosmology and Nongalactic Astrophysics
The Hamiltonian analysis for $f(T)$ gravity implies the existence of at least one scalar-type degree of freedom (DoF). However, this scalar DoF of $f(T)$ gravity does not manifest in linear perturbations around a cosmological background, which indicates an underlying strong coupling problem. In this work we expand the scope by introducing an extra scalar field non-minimally coupled to $f(T)$ gravity, aiming to address or alleviate the aforementioned strong coupling problem. Employing the effective field theory (EFT) approach, we provide a class of torsional EFT forms up to second order operators, avoiding the Ostrogradsky ghost. To illustrate this phenomenon, we study a simple model and perform a detailed analysis of its linear scalar perturbations. The results demonstrate that the coupling terms in this toy model are necessary to avoid the initial degenerate situation. The complete avoidance of new constraints requires more coupling terms. Once this vanishing scalar DoF starts propagating in cosmological background at linear level, this phenomenon will demand a revisit of the strong coupling issue that arises in $f(T)$ gravity, particularly in the presence of matter coupling.
title The effective field theory approach to the strong coupling issue in $f(T)$ gravity with a non-minimally coupled scalar field
topic General Relativity and Quantum Cosmology
Cosmology and Nongalactic Astrophysics
url https://arxiv.org/abs/2311.12645