Dynamical transition to spontaneous scalarization in neutron stars: The massive scalar field scenario
arXiv:2407.08124 · doi:10.1103/PhysRevD.110.084011
Abstract
We analyze numerically the dynamical transition to spontaneous scalarization in neutron stars in the framework of a scalar-tensor theory of gravity where the scalar field is free but massive, and it is coupled nonminimally to gravity in the Jordan frame. We show that the quasistatic configuration of the star that settles after the transition can avoid the observational constraints imposed on the amount of scalarization by several observations in binary systems due to the presence of the mass term, which suppresses the range of the scalar field. We also study the impact of the scalar field mass on the total mass of the star relative to the massless scenario.
15 pages, 14 figures. Reviewed version. Matches published version in PRD
References in corpus (13)
- Shapiro delay measurement of a two solar mass neutron star
- A Massive Pulsar in a Compact Relativistic Binary
- PSR J0952-0607: The Fastest and Heaviest Known Galactic Neutron Star
- The relativistic pulsar-white dwarf binary PSR J1738+0333 II. The most stringent test of scalar-tensor gravity
- Black holes as particle detectors: evolution of superradiant instabilities
- Strong-field Gravity Tests with the Double Pulsar
- Rapidly rotating neutron stars with a massive scalar field - structure and universal relations
- Closing a spontaneous-scalarization window with binary pulsars
- Hyperbolicity of scalar-tensor theories of gravity
- Long-lived inverse chirp signals from core collapse in massive scalar-tensor gravity
- Induced scalarization in boson stars and scalar gravitational radiation
- Scalar charges and pulsar-timing observables in the presence of nonminimally coupled scalar fields
- On the formation of "supermassive" neutron stars and dynamical transition to spontaneous scalarization