Constraints on the dense matter equation of state and neutron star properties from NICER's mass-radius estimate of PSR J0740+6620 and multimessenger observations
G. Raaijmakers, S. K. Greif, K. Hebeler, T. Hinderer, S. Nissanke, A., Schwenk, T. E. Riley, A. L. Watts, J. M. Lattimer, W. C. G. Ho

TL;DR
This study combines multimessenger astrophysical data, including NICER's mass-radius measurements of PSR J0740+6620, to place new constraints on the dense matter equation of state and neutron star properties, especially at intermediate densities.
Contribution
It introduces joint analysis of NICER data with other multimessenger observations using two EOS models, providing tighter constraints on neutron star radii and dense matter interactions.
Findings
Neutron star radius for 1.4 solar masses constrained to ~12.2-12.3 km.
NICER data tightly constrains the pressure at twice nuclear saturation density.
Results favor specific EOS models consistent with microscopic nuclear physics calculations.
Abstract
In recent years our understanding of the dense matter equation of state (EOS) of neutron stars has significantly improved by analyzing multimessenger data from radio/X-ray pulsars, gravitational wave events, and from nuclear physics constraints. Here we study the additional impact on the EOS from the jointly estimated mass and radius of PSR J0740+6620, presented in Riley et al. (2021) by analyzing a combined dataset from X-ray telescopes NICER and XMM-Newton. We employ two different high-density EOS parameterizations: a piecewise-polytropic (PP) model and a model based on the speed of sound in a neutron star (CS). At nuclear densities these are connected to microscopic calculations of neutron matter based on chiral effective field theory interactions. In addition to the new NICER data for this heavy neutron star, we separately study constraints from the radio timing mass measurement of…
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