A Study of Quasar Proximity in O VI Absorbers at z=2-3
arXiv:0806.0318 · doi:10.1111/j.1365-2966.2008.13529.x
Abstract
(Abridged) With the goal of investigating the nature of OVI absorbers at high redshifts, we study the effects of proximity to the background quasar. In a sample of sixteen quasars at z(QSO) between 2.14 and 2.87 observed at 6.6 km/s resolution with VLT/UVES, we detect 35 OVI absorption-line systems lying within 8000 km/s of z(QSO). The systems can be categorized into 9 strong and 26 weak OVI absorbers. The strong absorbers are defined by the presence of either broad, fully saturated OVI absorption or partial coverage of the continuum source, and have log N(OVI)>~15.0; these systems are intrinsic to the AGN. The weak (narrow) systems show no partial coverage or saturation, and are characterized by log N(OVI)<14.5 and have a median total velocity width of only 42 km/s. The incidence dN/dz of weak OVI systems within 2000 km/s of the quasar is 42+/-12. Between 2000 and 8000 km/s, dN/dz falls to 14+/-4, equal to the incidence of intervening OVI absorbers. Whereas the accompanying H I and C IV column densities are significantly lower (by a mean of ~1 dex) in the weak OVI absorbers within 2000 km/s of z(QSO) than in those at larger velocities, the OVI column densities display no dependence on proximity. Furthermore, significant offsets between the HI and OVI centroids in ~50% of the weak absorbers imply that (at least in these cases) the HI and OVI are not formed in the same phase of gas. In summary, we find no firm evidence that quasar radiation influences the OVI-bearing gas, suggesting the OVI is collisionally ionized rather than photoionized, possibly in the multi-phase halos of foreground galaxies. Non-equilibrium collisional ionization models are needed to explain the low temperatures in the absorbing gas, which are implied by narrow line widths (b<14 km/s) in over half of the observed OVI components.
27 pages, 10 figures all in color, accepted by MNRAS
References in corpus (19)
- Wilkinson Microwave Anisotropy Probe (WMAP) Three Year Results: Implications for Cosmology
- Cosmological Simulations of Intergalactic Medium Enrichment from Galactic Outflows
- Clustering of High Redshift () Quasars from the Sloan Digital Sky Survey
- Time-Dependent Ionization in Radiatively Cooling Gas
- The Low-z Intergalactic Medium. III. HI and Metal Absorbers at z<0.4
- A large population of metal-rich, compact, intergalactic C IV absorbers - Evidence for poor small-scale metal mixing
- A Census of Intrinsic Narrow Absorption Lines in the Spectra of Quasars at z=2-4
- Hot Halos around High Redshift Protogalaxies: Observations of O VI and N V Absorption in Damped Lyman Alpha systems
- C IV absorption in damped and sub-damped Lyman-alpha systems: correlations with metallicity and implications for galactic winds at z~2-3
- The Quasar-frame Velocity Distribution of Narrow CIV Absorbers
- Detection of the Transverse Proximity Effect: Radiative Feedback from Bright QSOs
- Characterizing the Low-Redshift Intergalactic Medium towards PKS1302-102
- Constrained semi-analytical models of Galactic outflows
- Average Properties of a Large Sample of z_abs ~ z_em associated Mg II Absorption Line Systems
- The Line-of-Sight Proximity Effect and the Mass of Quasar Host Halos
- Low Redshift Intergalactic Absorption Lines in the Spectrum of HE0226-4110
- Galactic Wind Signatures around High Redshift Galaxies
- High-Resolution Absorption Spectroscopy of Multi-phase, High-Metallicity Gas Associated with the Luminous Quasar HE 0226-4110
- Clues to the nature of high-redshift OVI absorption systems from their (lack of) small-scale structure
Cited by in corpus (6)
- A downturn in intergalactic CIV as redshift 6 is approached
- Detection of hot, metal-enriched outflowing gas around 2.3 star-forming galaxies in the Keck Baryonic Structure Survey
- HST/COS observations of a new population of associated QSO absorbers
- The nature of NV absorbers at high redshift
- Nature and Origins of Rich Complexes of C IV Associated Absorption Lines
- Solar-Metallicity Gas in the Extended Halo of a Galaxy at