Cosmological instability of scalar-Gauss-Bonnet theories exhibiting scalarization
arXiv:1903.02399 · doi:10.1088/1475-7516/2019/06/023
Abstract
In a subclass of scalar-tensor theories, it has been shown that standard general relativity solutions of neutron stars and black holes with trivial scalar field profiles are unstable. Such an instability leads to solutions which are different from those of general relativity and have non-trivial scalar field profiles, in a process called scalarization. In the present work we focus on scalarization due to a non-minimal coupling of the scalar field to the Gauss-Bonnet curvature invariant. The coupling acts as a tachyonic mass for the scalar mode, thus leading to the instability of general relativity solutions. We point out that a similar effect may occur for the scalar modes in a cosmological background, resulting in the instability of cosmological solutions. In particular, we show that a catastrophic instability develops during inflation within a period of time much shorter than the minimum required duration of inflation. As a result, the standard cosmological dynamics is not recovered. This raises the question of the viability of scalar-Gauss-Bonnet theories exhibiting scalarization.
11 pages, v3: minor corrections, updated references, comment on the possible resolution of the instability discussed in 1903.06784 added
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- Breaking black-hole uniqueness at supermassive scales
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- Symmetric Teleparallel Gauss-Bonnet Gravity and its Extensions
- Angular and radial stabilities of spontaneously scalarized black holes in the presence of scalar-Gauss-Bonnet couplings
- Shrouded black holes in Einstein-Gauss-Bonnet gravity
- Canonical structure of minimal varying theories
- Cosmology in theories with spontaneous scalarization of neutron stars
- Onset of dark energy from cosmological scalarization and gravitational wave speed
- Black hole sensitivities in Einstein-scalar-Gauss-Bonnet gravity