Metal-Enriched Plasma in Protogalactic Halos: A Survey of N V Absorption in High-z Damped & Sub-Damped Lyman-alpha Systems
Andrew J. Fox (1), J. Xavier Prochaska (2), C\'edric Ledoux (1),, Patrick Petitjean (3), Arthur M. Wolfe (4), Raghunathan Srianand (5)((1), ESO-Chile, (2) UC-Santa Cruz, (3) IAP, Paris, (4) UC-San Diego, (5) IUCAA,, India)

TL;DR
This study surveys N V absorption in high-redshift DLAs and sub-DLAs to understand their plasma content, revealing a metallicity-dependent detection rate and insights into ionization mechanisms and plasma conditions.
Contribution
It provides the first large-scale survey of N V in high-z DLAs/sub-DLAs, analyzing detection rates, ionization sources, and plasma properties, highlighting the role of metallicity and local radiation.
Findings
N V detection rate is ~13% in DLAs and ~11% in sub-DLAs.
N V detection correlates strongly with metallicity, increasing at higher [N/H].
Some N V components suggest warm photoionized plasma; others are consistent with collisionally-ionized plasma.
Abstract
We continue our recent work to characterize the plasma content of high-redshift damped and sub-damped Lyman-alpha systems (DLAs/sub-DLAs), which represent multi-phase gaseous (proto)galactic disks and halos seen toward a background source. We survey N V absorption in a sample of 91 DLAs and 18 sub-DLAs in the redshift range 1.67<z<4.28 with unblended coverage of the N V doublet, using data from VLT/UVES, Keck/HIRES, and Keck/ESI. In DLAs, we find eight secure N V detections, four marginal detections, and 79 non-detections. The detection rate of N V in DLAs is therefore 13^{+5}_{-4}%. Two sub-DLA N V detections are found among a sample of 18, at a similar detection rate of 11^{+15}_{-7}%. We show that the N V detection rate is a strong function of metallicity, increasing by a factor of ~4 at [N/H]=[NI/HI]>-2.3. The N V and CIV component b-value distributions in DLAs are statistically…
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