4.7 Article

THERMAL X-RAY EMISSION FROM THE SHOCKED STELLAR WIND OF PULSAR GAMMA-RAY BINARIES

期刊

ASTROPHYSICAL JOURNAL
卷 743, 期 1, 页码 -

出版社

IOP PUBLISHING LTD
DOI: 10.1088/0004-637X/743/1/7

关键词

gamma rays: stars; stars: individual (LS 5039); stars: winds, outflows; X-rays: binaries

资金

  1. Spanish Ministerio de Ciencia e Innovacion (MICINN) [AYA2010-21782-C03-01, FPA2010-22056-C06-02]
  2. Spanish Ministerio de Educacion through FPU [AP2006-00077]
  3. Max Planck Institut fur Kernphysik
  4. European Union [PIEF-GA-2009-252463]
  5. ICREA Academia
  6. Div Atmospheric & Geospace Sciences
  7. Directorate For Geosciences [0904007] Funding Source: National Science Foundation

向作者/读者索取更多资源

Gamma-ray-loud X-ray binaries are binary systems that show non-thermal broadband emission from radio to gamma rays. If the system comprises a massive star and a young non-accreting pulsar, their winds will collide producing broadband non-thermal emission, most likely originated in the shocked pulsar wind. Thermal X-ray emission is expected from the shocked stellar wind, but until now it has neither been detected nor studied in the context of gamma-ray binaries. We present a semi-analytic model of the thermal X-ray emission from the shocked stellar wind in pulsar gamma-ray binaries, and find that the thermal X-ray emission increases monotonically with the pulsar spin-down luminosity, reaching luminosities of the order of 10(33) erg s(-1). The lack of thermal features in the X-ray spectrum of gamma-ray binaries can then be used to constrain the properties of the pulsar and stellar winds. By fitting the observed X-ray spectra of gamma-ray binaries with a source model composed of an absorbed non-thermal power law and the computed thermal X-ray emission, we are able to derive upper limits on the spin-down luminosity of the putative pulsar. We applied this method to LS 5039, the only gamma-ray binary with a radial, powerful wind, and obtain an upper limit on the pulsar spin-down luminosity of similar to 6 x 10(36) erg s(-1). Given the energetic constraints from its high-energy gamma-ray emission, a non-thermal to spin-down luminosity ratio very close to unity may be required.

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