Abstract We present analysis of one of the most extreme quasar outflows found to date in our survey of extremely high-velocity outflows (EHVOs). J164653.72+243942.2 (zem ∼ 3.04) shows variable Civλλ1548,1551 absorption at speeds larger than 0.1c, accompanied by Siiv, Nv,and Lyα, and disappearing absorption at lower speeds. We perform absorption measurements using the apparent optical depth method and SimBAL. We find the absorption to be very broad (Δv ∼ 35,100 km s−1in the first epoch and 13,000 km s−1in the second one) and fast (vmax ∼ –50,200 km s−1and −49,000 km s−1, respectively). We measure large column densities ( 21.6 (cm−2)) and are able to place distance estimates for the EHVO (5 ≲ R ≲ 28 pc) and the lower-velocity outflow (7 ≲ R ≲ 540 pc). We estimate a mass outflow rate for the EHVO to be and a kinetic luminosity of in both epochs. The lower-velocity component has a mass outflow rate and a kinetic luminosity of . We find that J164653.72+243942.2 is not an outlier among EHVO quasars in regard to its physical properties. While its column density is lower than typical BAL values, its higher outflow velocities drive most of the mass outflow rate and kinetic luminosity. These results emphasize the crucial role of EHVOs in powering quasar feedback, and failing to account for these outflows likely leads to underestimating the feedback impact on galaxies.
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The RESOLVE and ECO G3 Initiative: Drivers of H i Content and X-Ray Emission in Galaxy Groups
Abstract Adding to the RESOLVE and ECO Gas in Galaxy Groups (G3) initiative, we examine possible drivers of group-integrated Hi-to-halo mass ratios (MHI,grp/Mhalo) and group X-ray emission, including group halo mass (Mhalo), virialization as probed by crossing time (tcross), presence of active galactic nuclei (AGN), and group-integrated fractional stellar mass growth rate (FSMGRgrp). G3 groups spanMhalo= 1011−1014.5M⊙with comprehensive Higas and AGN information, which we combine with X-ray stacking of ROSAT All-Sky data. We detect hot gas emission exceeding AGN and X-ray binary backgrounds confidently forMhalo= 1012.6−1014M⊙and unambiguously forMhalo> 1014M⊙, reflecting an inverse dependence ofMHI,grp/Mhaloand hot gas emission on halo mass. At fixed halo mass,MHI,grp/Mhalotransitions to greater spread belowtcross∼ 2 Gyr. Dividing groups across this transition, lower-tcrossgroups show elevated X-ray emission compared to higher-tcrossgroups forMhalo> 1013.3M⊙, but this trend reverses forMhalo= 1012.6−1013.3M⊙. Additionally, AGN-hosting halos belowMhalo∼ 1012.1M⊙exhibit a broad, ∼0.25 dex deep valley inMHI,grp/Mhalocompared to non-AGN-hosting halos with correspondingly reduced FSMGRgrp. When diluted by non-AGN-hosting halos, this valley becomes shallower and narrower, falling roughly between and in the overallMHI,grp/Mhalovs.Mhalorelation. We may also detect a second, less easily interpreted valley atMhalo∼ 1013M⊙. Neither valley matches theoretical predictions of a deeper valley located at or above .
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- PAR ID:
- 10659251
- Publisher / Repository:
- American Astronomical Society
- Date Published:
- Journal Name:
- The Astrophysical Journal
- Volume:
- 985
- Issue:
- 2
- ISSN:
- 0004-637X
- Page Range / eLocation ID:
- 228
- Format(s):
- Medium: X
- Sponsoring Org:
- National Science Foundation
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