Tensor-multi-scalar theories: Relativistic stars and 3 + 1 decomposition

Michael Horbatsch, Hector O. Silva, Davide Gerosa, Paolo Pani, Emanuele Berti, Leonardo Gualtieri, Ulrich Sperhake

Research output: Contribution to journalArticlepeer-review

Abstract

Gravitational theories with multiple scalar fields coupled to the metric and each other - a natural extension of the well studied single-scalar-tensor theories - are interesting phenomenological frameworks to describe deviations from general relativity in the strong-field regime. In these theories, the N-tuple of scalar fields takes values in a coordinate patch of an N-dimensional Riemannian target-space manifold whose properties are poorly constrained by weak-field observations. Here we introduce for simplicity a non-trivial model with two scalar fields and a maximally symmetric target-space manifold. Within this model we present a preliminary investigation of spontaneous scalarization for relativistic, perfect fluid stellar models in spherical symmetry. We find that the scalarization threshold is determined by the eigenvalues of a symmetric scalar-matter coupling matrix, and that the properties of strongly scalarized stellar configurations additionally depend on the target-space curvature radius. In preparation for numerical relativity simulations, we also write down the 3 + 1 decomposition of the field equations for generic tensor-multi-scalar theories.

Original languageEnglish (US)
Article number204001
JournalClassical and Quantum Gravity
Volume32
Issue number20
DOIs
StatePublished - Oct 22 2015
Externally publishedYes

Keywords

  • black holes
  • gravity
  • modified theories
  • neutron stars

ASJC Scopus subject areas

  • Physics and Astronomy (miscellaneous)

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