4.7 Article

COSMIC ORIGINS SPECTROGRAPH AND FUSE OBSERVATIONS OF T ∼ 105 K GAS IN A NEARBY GALAXY FILAMENT

Journal

ASTROPHYSICAL JOURNAL
Volume 721, Issue 2, Pages 960-974

Publisher

IOP PUBLISHING LTD
DOI: 10.1088/0004-637X/721/2/960

Keywords

galaxies: clusters: individual (GH 158); galaxies: halos; galaxies: individual (NGC 5987, NGC 5982, NGC 5985, NGC 5987,NGC 5989); intergalactic medium; quasars: absorption lines; ultraviolet: general

Funding

  1. NASA [NAS 05-26555, NAS 05-32985, NNX-07AH426]
  2. University of Colorado, Boulder

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We present a clear detection of a broad Ly alpha absorber (BLA) with a matching O VI line in the nearby universe. The BLA is detected at z(Ly alpha) = 0.01028 in the high signal-to-noise ratio spectrum of Mrk 290 obtained using the Cosmic Origins Spectrograph. The Lya absorption has two components, with b(H I) = 55 +/- 1 km s(-1) and b(H I) = 33 +/- 1 km s(-1), separated in velocity by v similar to 115 km s(-1). The O VI, detected by the Far-Ultraviolet Spectroscopic Explorer at z(O VI) = 0.01027, has a b(O VI) = 29 +/- 3 km s(-1) and is kinematically well aligned with the broader Hi component. The non-detection of other ions such as C II, Si II, Fe II, C III, Si III, C IV, Si IV, and N V at the same velocity as the BLA and the O VI implies that the absorber is tracing highly ionized gas. The different line widths of the BLA and O VI suggest a temperature of T = 1.4 x 10(5) K in the absorber. Photoionization, collisional ionization equilibrium as well as non-equilibrium collisional ionization models do not explain the ion ratios at this temperature. The observed line strength ratios and line widths favor an ionization scenario in which both ion-electron collisions and UV photons contribute to the ionization in the gas. Such a model requires a low metallicity of similar to -1.7 dex, ionization parameter of log U similar to -1.4, a large total hydrogen column density of N(H) similar to 4x10(19) cm(-2), and a path length of similar to 400 kpc. The line of sight to Mrk 290 intercepts at the redshift of the absorber, a megaparsec scale filamentary structure extending over similar to 20 degrees in the sky, with several luminous galaxies distributed within similar to 1.5 h(-1) Mpc projected distance from the absorber. The collisionally ionized gas phase of this absorber is most likely tracing a shock-heated gaseous structure, consistent with a few different scenarios for the origin including an overdense region of the warm-hot intergalactic medium in the galaxy filament or highly ionized gas in the extended halo of one of the galaxies in the filament. In general, BLAs with metals provide an efficient means to study T similar to 10(5)-10(6) K gas in galaxy halos and in the intergalactic medium. A substantial fraction of the baryons missing from the present universe is predicted to be in such environments in the form of highly ionized plasma.

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