المساق
arXiv 2010-11-26 DOI 10.1111/j.1365-2966.2010.18109.x 0 مشاهدة

On the nature and evolution of the unique binary pulsar J1903+0327

Freire, P. C. C. · Bassa, C. G. · Wex, N. · Stairs, I. H. · Champion, D. J. · Ransom, S. M. · Lazarus, P. · Kaspi, V. M. · Hessels, J. W. T. · Kramer, M. · Cordes, J. M. · Verbiest, J. P. W. · Podsiadlowski, P. · Nice, D. ~J. · Deneva, J. S. · Lorimer, D. R. · Stappers, B. W. · McLaughlin, M. A. · Camilo, F.

الأصل · EN

(abridged) PSR J1903+0327, a millisecond pulsar in an eccentric (e = 0.44) 95-day orbit with a (1Msun) companion poses a challenge to our understanding of stellar evolution in binary and multiple-star systems. Here we describe optical and radio observations which rule out most of the scenarios proposed to explain formation of this system. Radio timing measurements of three post-Keplerian effects yield the most precise measurement of the mass of a millisecond pulsar to date: 1.667 +/- 0.021 solar masses (99.7% confidence limit) (...). Optical spectroscopy of a proposed main sequence counterpart show that its orbital motion mirrors the pulsar's 95-day orbit; being therefore its binary companion (...) The optical detection also provides a measurement of the systemic radial velocity of the binary; this and the proper motion measured from pulsar timing allow the determination of the systemic 3-D velocity in the Galaxy. We find that the system is always within 270 pc of the plane of the Galaxy, but always more than 3 kpc away from the Galactic centre. Thus an exchange interaction in a dense stellar environment (like a globular cluster or the Galactic centre) is not likely to be the origin of this system. We suggest that after the supernova that formed it, the neutron star was in a tight orbit with a main-sequence star, the present companion was a tertiary farther out. The neutron star then accreted matter from its evolving inner MS companion, forming a millisecond pulsar. The former donor star then disappears, either due to a chaotic 3-body interaction with the outer star (caused by the expansion of the inner orbit that necessarily results from mass transfer), or in the case of a very compact inner system, due to ablation/accretion by the newly formed millisecond pulsar.

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