Cosmological Evolution and Solar System Consistency of Massive Scalar-Tensor Gravity
arXiv:1703.06341 · doi:10.1103/PhysRevD.96.064040
Abstract
The scalar-tensor theory of Damour and Esposito-Farèse recently gained some renewed interest because of its ability to suppress modifications to General Relativity in the weak field, while introducing large corrections in the strong field of compact objects through a process called scalarization. A large sector of this theory that allows for scalarization, however, has been shown to be in conflict with Solar System observations when accounting for the cosmological evolution of the scalar field. We here study an extension of this theory by endowing the scalar field with a mass to determine whether this allows the theory to pass Solar System constraints upon cosmological evolution for a larger sector of coupling parameter space. We show that the cosmological scalar field goes first through a quiescent phase, similar to the behavior of a massless field, but then it enters an oscillatory phase, with an amplitude (and frequency) that decays (and grows) exponentially. We further show that after the field enters the oscillatory phase, its effective energy density and pressure are approximately those of dust, as expected from previous cosmological studies. Due to these oscillations, we show that the scalar field cannot be treated as static today on astrophysical scales, and so we use time-dependent perturbation theory to compute the scalar-field-induced modifications to Solar System observables. We find that these modifications are suppressed when the mass of the scalar field and the coupling parameter of the theory are in a wide range, allowing the theory to pass Solar System constraints, while in principle possibly still allowing for scalarization.
19 pages, 4 figures, replaced with version accepted for publication in Phys. Rev. D
References in corpus (5)
- The Confrontation between General Relativity and Experiment
- Projected Constraints on Scalarization with Gravitational Waves from Neutron Star Binaries
- The Effect of Cosmological Evolution on Solar System Constraints and on the Scalarization of Neutron Stars in Massless Scalar-Tensor Theories
- On the possibility of setting a new constraint to scalar-tensor theories
- Instability of nonminimally coupled scalar fields in the spacetime of slowly rotating compact objects
Cited by in corpus (18)
- MICROSCOPE mission: first constraints on the violation of the weak equivalence principle by a light scalar dilaton
- Violation of the equivalence principle from light scalar dark matter
- Early modified gravity in light of the tension and LSS data
- Constraining nonperturbative strong-field effects in scalar-tensor gravity by combining pulsar timing and laser-interferometer gravitational-wave detectors
- Prospects for axion searches with Advanced LIGO through binary mergers
- Spontaneous scalarization in generalised scalar-tensor theory
- Strong-field effects in massive scalar-tensor gravity for slowly spinning neutron stars and application to X-ray pulsar pulse profiles
- Probing Early Modification of Gravity with Planck, ACT and SPT
- Spin-orbit effects for compact binaries in scalar-tensor gravity
- Multi-scalar Gauss-Bonnet gravity -- hairy black holes and scalarization
- Emergent long-range interactions in Bose-Einstein Condensates
- Reconciling spontaneous scalarization with cosmology
- Horndeski gravity without screening in binary pulsars
- Cosmology with subdominant Horndeski scalar field
- Detecting Ultralight Dark Matter with Matter Effect
- Cosmological attractors to general relativity and spontaneous scalarization with disformal coupling
- Spontaneous Scalarization in Scalar-Tensor Theories with Conformal Symmetry as an Attractor
- Black Hole Zeroth Law in Horndeski Gravity