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Modelling the Future of Gaia Neutron Star-Main Sequence Binaries: From Eccentric Orbits to Millisecond Pulsar-White Dwarfs

Published 17 Oct 2025 in astro-ph.SR and astro-ph.HE | (2510.16201v1)

Abstract: We model the evolution of 21 Gaia neutron star (NS)-main-sequence binaries (orbital period Porb∼200P_{\mathrm{orb}}\sim200--$1000$ days, eccentricity e≳0.2e\gtrsim0.2) using binary evolution with \texttt{MESA}. We examine eccentric mass transfer and models assuming prior circularization. All systems end as NS-white dwarf (WD) binaries, but transfer modes yield distinct outcomes. Under eccentric transfer, binaries are driven to higher ee, forming orbits with e≳0.6e\gtrsim0.6 and Porb∼1000P_{\rm orb}\sim1000-$4000$ days. Periastron bursts are brief (≲10<sup>6\lesssim10<sup>6 yr), transfer only a few ×10<sup>−2\times10<sup>{-2} M<em>⊙<em>\odot, and produce mildly recycled pulsars (P</em>spin≳50P</em>{\mathrm{spin}}\gtrsim50 ms) with low-mass He WDs. Artificially circularized transfer gives Porb∼200P_{\rm orb}\sim200-$2000$ days, lasts ∼10<sup>7\sim10<sup>7 yr, and allows NSs to accrete ∼0.1\sim0.1 M<em>⊙<em>\odot, forming fully recycled MSPs (P</em>spin∼P</em>{\mathrm{spin}}\sim few-30 ms) with CO WDs. Allowing super-Eddington accretion up to 100×100\times the canonical rate makes even eccentric systems efficient MSP producers, though torque coupling remains uncertain. Using an adaptive, field-dependent magnetic-field decay timescale, we find MSPs stay radio-active over Gyr spans. Gaia systems undergoing stable mass transfer remain wide and fail to match the Galactic MSP-WD population, where most, nearly circular systems have Porb≲100P_{\rm orb}\lesssim100 days. Binaries with different mass ratios and initial configurations -- likely leading to unstable mass transfer -- are needed to reproduce the observed MSP-WD distribution.

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