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Spontaneous scalarization with an extremely massive field and heavy neutron stars

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abstract

We investigate the internal structure and the mass-radius relation of neutron stars in a recently proposed scalar-tensor theory dubbed asymmetron in which a massive scalar field undergoes spontaneous scalarization inside neutron stars. We focus on the case where the Compton wavelength is shorter than 10 km, which has not been investigated in the literature. By solving the modified Einstein equations, either purely numerically or by partially using a semianalytic method, we find that not only the weakening of gravity by spontaneous scalarization but also the scalar force affect the internal structure significantly in the massive case. We also find that the maximum mass of neutron stars is larger for certain parameter sets than that in general relativity and reaches 2 solar mass even if the effect of strange hadrons is taken into account. There is even a range of parameters where the maximum mass of neutron stars largely exceeds the threshold that violates the causality bound in general relativity.

fields

gr-qc 1

years

2026 1

verdicts

UNVERDICTED 1

representative citing papers

Donutization Inside Neutron Stars: Shell-Localized Scalar Fields

gr-qc · 2026-05-25 · unverdicted · novelty 6.0

Heavy scalar fields in neutron stars form interior shell-localized profiles that reshape the effective equation of state and break the I-Q relation while remaining hidden from binary pulsar observations.

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  • Donutization Inside Neutron Stars: Shell-Localized Scalar Fields gr-qc · 2026-05-25 · unverdicted · none · ref 21 · internal anchor

    Heavy scalar fields in neutron stars form interior shell-localized profiles that reshape the effective equation of state and break the I-Q relation while remaining hidden from binary pulsar observations.