Gamma-ray and radio populations of millisecond pulsars in globular clusters

arXiv:2608.02768 · astro-ph.HE · Submitted 2026-08-03 · Read on arXiv

Hannah Lawson, Duncan R. Lorimer

astro-ph.HE

Submitted: 2026-08-03

Comments: 16 pages, 6 figures, 2 tables. Submitted to JHEAP

License: http://creativecommons.org/licenses/by/4.0/

The gist: The populations of millisecond pulsars (MSPs) across the Milky Way's globular cluster (GC) system serve as powerful diagnostics of neutron star evolution in a variety of dense stellar environments.

Terminology

Abstract

The populations of millisecond pulsars (MSPs) across the Milky Way's globular cluster (GC) system serve as powerful diagnostics of neutron star evolution in a variety of dense stellar environments. Using properties of 118 Galactic GCs, we performed Monte Carlo simulations of their gamma-ray fluxes observed by Fermi. We compared two luminosity models: a 3D fundamental plane (model A) and a lognormal distribution (model B). Both models reproduce the observed gamma-ray fluxes and mirror the scaling law with the GC stellar encounter rate established for low-mass X-ray binaries and radio MSPs. Due to its lower average gamma-ray luminosities, model B predicts a 6-7 times larger MSP population (5150+720-710) than model A (770 plus or minus60). Furthermore, both models accurately predict a population-wide expectation of roughly three clusters whose aggregate gamma-ray emission is dominated by a single bright MSP. Invoking a radio-to-gamma-ray luminosity scaling (L r about 3.5 times 10-7 L gamma), we find that model B predicts a mean radio pseudoluminosity (L pseudo about-1.6) that is fainter than canonical pulsars. This result is consistent with recent evidence attributing the apparent faintness of Galactic MSPs to geometric effects. In contrast, model A implies an intrinsically brighter population (L pseudo about-0.3) that lacks a clear physical basis and is inconsistent with the results found for Galactic pulsars. The larger underlying population of faint millisecond pulsars predicted by model B could be probed by sensitive surveys with emerging radio facilities to further constrain the evolutionary pathways of MSPs.

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