TL;DR
This paper explores the behavior of neutron stars in scalar-tensor gravity theories with positive coupling, revealing that spontaneous scalarization can occur and lead to diverse outcomes like collapse or scalarization, offering new tests for gravity theories.
Contribution
It demonstrates for the first time that spontaneous scalarization can occur in scalar-tensor theories with positive coupling, expanding the understanding of neutron star phenomenology.
Findings
Spontaneous scalarization can happen for $eta_0>0$.
Final state of instability varies from collapse to scalarization.
The outcome depends on the coupling function details.
Abstract
Scalar-tensor theories of gravity are extensions of General Relativity (GR) including an extra, nonminimally coupled scalar degree of freedom. A wide class of these theories, albeit indistinguishable from GR in the weak field regime, predicts a radically different phenomenology for neutron stars, due to a nonperturbative, strong-field effect referred to as spontaneous scalarization. This effect is known to occur in theories where the effective linear coupling between the scalar and matter fields is sufficiently negative, i.e. , and has been strongly constrained by pulsar timing observations. In the test-field approximation, spontaneous scalarization manifests itself as a tachyonic-like instability. Recently, it was argued that, in theories where , a similar instability would be triggered by sufficiently compact neutron stars obeying…
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