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Tracing Warm Gas through C IV Radiative Transfer

Published 10 Sep 2026 in astro-ph.GA | (2609.11487v1)

Abstract: The C IV λλ1548,1551λ\lambda1548,1551 resonance doublet is a key tracer of warm gas (T10<sup>5</sup>KT\sim10<sup>5\,{\rm</sup> K}) within and around galaxies. Recent observations have detected this line in both absorption and emission, revealing asymmetric profiles in galaxies and spatially extended haloes around active galactic nuclei (AGNs). Resonance scattering can strongly modify the emergent spectra and spatial distributions, complicating their interpretation. Using 3D Monte Carlo radiative transfer simulations, we study C IV resonance scattering over a broad range of column densities, intrinsic emission-line widths, and outflow velocities. We find that multiple scattering broadens the line profile and, in outflowing media, modifies the doublet ratio, RCIVR_{\rm CIV}, defined as the flux ratio of the K and H components at 1548 and 1551 A˚\mathrm{\mathring{A}}, respectively. When the outflow velocity approaches or exceeds the doublet separation (500kms<sup>1\simeq500\,{\rm km\,s<sup>{-1}}), K-line photons are redistributed around the H component, driving RCIVR_{\rm CIV} below its intrinsic value and, in optically thick fast outflows, even below unity. We also combine photoionization models with resonance scattering to investigate extended C IV haloes around AGNs and compare them with He II λ1640\lambda1640 emission. Simple photoionization models do not produce C IV emission more extended than He II, whereas resonance scattering redistributes locally produced and central-source C IV photons to larger radii. These results demonstrate that the C IV doublet ratio and spatial distribution provide complementary diagnostics of warm gas.

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