Four-Hair Relations for Differentially Rotating Neutron Stars in the Weak-Field Limit
Joseph Bretz, Kent Yagi, Nicolas Yunes

TL;DR
This paper extends universal relations for neutron star multipole moments to differentially rotating stars using weak-field and perturbative approximations, enabling determination of all moments from four key parameters.
Contribution
It introduces the first four-hair relations for differentially rotating neutron stars, improving universality over previous three-hair relations for rigid rotation.
Findings
Four-hair relations are approximately independent of the equation of state.
Relations allow determination of all multipole moments from four moments.
Results are applicable to neutron stars with differential rotation in the weak-field limit.
Abstract
The opportunity to study physics at supra-nuclear densities through X-ray observations of neutron stars has led to in-depth investigations of certain approximately universal relations that can remove degeneracies in pulse profile models. One such set of relations determines all of the multipole moments of a neutron star just from the first three (the mass monopole, the current dipole and the mass quadrupole moment) approximately independently of the equation of state. These three-hair relations were found to hold in neutron stars that rotate rigidly, as is the case in old pulsars, but neutron stars can also rotate differentially, as is the case for proto-neutron stars and hypermassive transient remnants of binary mergers. We here extend the three-hair relations to differentially rotating stars for the first time with a generic rotation law using two approximations: a weak-field scheme…
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Taxonomy
TopicsPulsars and Gravitational Waves Research · Geophysics and Sensor Technology · Geophysics and Gravity Measurements
