Semi-Analytic Stellar Structure in Scalar-Tensor Gravity
arXiv:1006.4411 · doi:10.1088/1475-7516/2011/08/027
Abstract
Precision tests of gravity can be used to constrain the properties of hypothetical very light scalar fields, but these tests depend crucially on how macroscopic astrophysical objects couple to the new scalar field. We develop quasi-analytic methods for solving the equations of stellar structure using scalar-tensor gravity, with the goal of seeing how stellar properties depend on assumptions made about the scalar coupling at a microscopic level. We illustrate these methods by applying them to Brans-Dicke scalars, and their generalization in which the scalar-matter coupling is a weak function of the scalar field. The four observable parameters that characterize the fields external to a spherically symmetric star (the stellar radius, R, mass, M, scalar `charge', Q, and the scalar's asymptotic value, phi_infty) are subject to two relations because of the matching to the interior solution, generalizing the usual mass-radius, M(R), relation of General Relativity. We identify how these relations depend on the microscopic scalar couplings, agreeing with earlier workers when comparisons are possible. Explicit analytical solutions are obtained for the instructive toy model of constant-density stars, whose properties we compare to more realistic equations of state for neutron star models.
39 pages, 9 figures
References in corpus (10)
- The Confrontation between General Relativity and Experiment
- Environmental Dependence of Masses and Coupling Constants
- Gravitational-radiation losses from the pulsar-white-dwarf binary PSR J1141-6545
- Probing Strong-Field Scalar-Tensor Gravity with Gravitational Wave Asteroseismology
- Stellar Oscillations in Scalar-Tensor Theory of Gravity
- Tests of scalar-tensor gravity
- Uber-naturalness: unexpectedly light scalars from supersymmetric extra dimensions
- Dynamic transition to spontaneous scalarization in boson stars
- Dark Energy, Scalar-Tensor Gravity and Large Extra Dimensions
- Charged perfect fluid configurations with a dilaton field
Cited by in corpus (24)
- Gravitational Wave Tests of General Relativity with Ground-Based Detectors and Pulsar Timing Arrays
- Stellar structure models in modified theories of gravity: lessons and challenges
- Compact stars in alternative theories of gravity. Einstein-Dilaton-Gauss-Bonnet gravity
- Spontaneous scalarization
- Parameterized Post-Einsteinian Gravitational Waveforms in Various Modified Theories of Gravity
- Cosmic Black-Hole Hair Growth and Quasar OJ287
- Relativistic stars in scalar-tensor theories with disformal coupling
- Secular effects of Ultralight Dark Matter on Binary Pulsars
- Numerical simulations of stellar collapse in scalar-tensor theories of gravity
- What does a measurement of mass and/or radius of a neutron star constrain: Equation of state or gravity?
- Impact of the equation-of-state -- gravity degeneracy on constraining the nuclear symmetry energy from astrophysical observables
- Extra packing of mass of anisotropic interiors induced by MGD
- Yoga Dark Energy: Natural Relaxation and Other Dark Implications of a Supersymmetric Gravity Sector
- Induced scalarization in boson stars and scalar gravitational radiation
- Axion Homeopathy: Screening Dilaton Interactions
- Universal Relations and Alternative Gravity Theories
- Neutron Star Structure in the Presence of Nonminimally Coupled Scalar Fields
- Packing extra mass in compact stellar structures: An interplay between Kalb-Ramond field and extra dimensions
- Neutron Stars in Scalar-Tensor Theories: Analytic Scalar Charges and Universal Relations
- Invariant quantities of Scalar-Tensor Theories for stellar structure
- Anti-de Sitter neutron stars in the theory of gravity with nonminimal derivative coupling
- Neutron stars as extreme gravity probes
- Numerical Approach to the Exterior Solution of Spherically Symmetric and Static Configuration in Scalar-Tensor Theories
- Shedding Light on the EOS-Gravity Degeneracy and Constraining the Nuclear Symmetry Energy from the Gravitational Binding Energy of Neutron Stars