Searching for magnetar binaries disrupted by core-collapse supernovae

Author:

Sherman Myles B1ORCID,Ravi Vikram1,El-Badry Kareem1ORCID,Sharma Kritti1ORCID,Ocker Stella Koch12ORCID,Kosogorov Nikita1ORCID,Connor Liam1,Faber Jakob T1

Affiliation:

1. Cahill Center for Astronomy and Astrophysics , MC 249-17 California Institute of Technology, Pasadena CA 91125 , USA

2. The Observatories of the Carnegie Institution of Washington , Pasadena, CA 91101 , USA

Abstract

ABSTRACT Core-collapse supernovae (CCSNe) are considered the primary magnetar formation channel, with 15 magnetars associated with supernova remnants (SNRs). A large fraction of these should occur in massive stellar binaries that are disrupted by the explosion, meaning that $\sim 45~{{\ \rm per\ cent}}$ of magnetars should be nearby high-velocity stars. Here, we conduct a multiwavelength search for unbound stars, magnetar binaries, and SNR shells using public optical (uvgrizy bands), infrared (J, H, K, and Ks bands), and radio (888 MHz, 1.4 GHz, and 3 GHz) catalogues. We use Monte Carlo analyses of candidates to estimate the probability of association with a given magnetar based on their proximity, distance, proper motion, and magnitude. In addition to recovering a proposed magnetar binary, a proposed unbound binary, and 13 of 15 magnetar SNRs, we identify two new candidate unbound systems: an OB star from the Gaia catalogue we associate with SGR J1822.3−1606, and an X-ray pulsar we associate with 3XMM J185246.6 + 003317. Using a Markov Chain Monte Carlo simulation that assumes all magnetars descend from CCSNe, we constrain the fraction of magnetars with unbound companions to $5\lesssim f_u \lesssim 24~{{\ \rm per\ cent}}$, which disagrees with neutron star population synthesis results. Alternate formation channels are unlikely to wholly account for the lack of unbound binaries as this would require $31\lesssim f_{nc} \lesssim 66~{{\ \rm per\ cent}}$ of magnetars to descend from such channels. Our results support a high fraction ($48\lesssim f_m \lesssim 86~{{\ \rm per\ cent}}$) of pre-CCSN mergers, which can amplify fossil magnetic fields to preferentially form magnetars.

Funder

National Science Foundation

MSIP

AAL

EiF

National Aeronautics and Space Administration

Australian Government

Publisher

Oxford University Press (OUP)

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