A More Precise Measurement of the Radius of PSR J0740+6620 Using Updated NICER Data
Alexander J. Dittmann, M. Coleman Miller, Frederick K. Lamb, Isiah, Holt, Cecilia Chirenti, Michael T. Wolff, Slavko Bogdanov, Sebastien Guillot,, Wynn C. G. Ho, Sharon M. Morsink, Zaven Arzoumanian, Keith C. Gendreau

TL;DR
This paper provides a more precise measurement of the neutron star PSR J0740+6620's radius using updated NICER data, refining constraints on the dense matter equation of state.
Contribution
It presents an improved radius measurement of PSR J0740+6620 based on additional NICER and XMM-Newton data, enhancing the precision over previous estimates.
Findings
Radius is approximately 12.92 km with ~83% fractional uncertainty.
Updated data suggests a slightly softer equation of state for neutron star matter.
The measurement aligns with previous results when constraining the radius below 16 km.
Abstract
PSR J0740+6620 is the neutron star with the highest precisely determined mass, inferred from radio observations to be . Measurements of its radius therefore hold promise to constrain the properties of the cold, catalyzed, high-density matter in neutron star cores. Previously, Miller et al. (2021) and Riley et al. (2021) reported measurements of the radius of PSR J0740+6620 based on Neutron Star Interior Composition Explorer (NICER) observations accumulated through 17 April 2020, and an exploratory analysis utilizing NICER background estimates and a data set accumulated through 28 December 2021 was presented in Salmi et al. (2022). Here we report an updated radius measurement, derived by fitting models of X-ray emission from the neutron star surface to NICER data accumulated through 21 April 2022, totaling Ms additional exposure compared to the data…
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Taxonomy
TopicsGeophysics and Gravity Measurements · Pulsars and Gravitational Waves Research · Solar and Space Plasma Dynamics
