Kinematics of H I and O VI absorbers: insights into the turbulence driver of the multiphase circumgalactic medium

We investigate large-scale gas kinematics in the multiphase circumgalactic medium (CGM) using the observed correlation between line width (Doppler b parameter) and column density (N) for H i and O vi absorbers. Leveraging extensive public galaxy survey data at z ≲ 0.1, we construct a new galaxy samp...

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Autores principales: Qu, Zhijie (Autor) , Chen, Hsiao-Wen (Autor) , Schiller, Eliana (Autor) , Wang, Jing (Autor) , Grönke, Max (Autor)
Formato: Article (Journal)
Lenguaje:inglés
Publicado: 12 March 2026
In: The astrophysical journal. Part 2, Letters
Year: 2026, Volumen: 1000, Número: 1, Pages: 1-11
ISSN:2041-8213
DOI:10.3847/2041-8213/ae4978
Acceso en línea:Verlag, kostenfrei, Volltext: https://doi.org/10.3847/2041-8213/ae4978
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Notas de Autor:Zhijie Qu, Hsiao-Wen Chen, Eliana Schiller, Jing Wang, and Max Gronke
Descripción
Sumario:We investigate large-scale gas kinematics in the multiphase circumgalactic medium (CGM) using the observed correlation between line width (Doppler b parameter) and column density (N) for H i and O vi absorbers. Leveraging extensive public galaxy survey data at z ≲ 0.1, we construct a new galaxy sample based on the availability of background quasi-stellar objects with far-ultraviolet spectra from the Far Ultraviolet Spectroscopic Explorer (FUSE). By combining this FUSE galaxy sample with literature collections, we find that H i absorbers exhibit a clear inverse correlation between Doppler width and column density over nearly 5 orders of magnitude in NHI, from NHI ≈ 1013 cm−2 to NHI ≈ 1018 cm−2, while O vi absorption follows a positive correlation across NOVI ≈ 3 × 1013-1015 cm−2. We develop a model framework to interpret these contrasting trends and show that H i absorbers are best described as systems of approximately constant total column density (NH), whereas O vi traces regions of roughly constant spatial density (nH and nO VI). Under the latter scenario, the observed bO VI-NO VI relation maps directly to a velocity-size relation consistent with a Kolmogorov-like turbulent spectrum. Together, these findings reveal a coherent physical picture in which H i and O vi trace a continuous turbulent cascade spanning more than 5 orders of magnitude in spatial scale—from cool, photoionized clumps to warm, highly ionized halo gas—with accretion in the halo outskirts likely driving the turbulent energy injection that sustains the multiphase CGM.
Notas:Gesehen am 19.05.2026
Descripción Física:Online Resource
ISSN:2041-8213
DOI:10.3847/2041-8213/ae4978