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May 2, 2026SHILAP Revista de lepidopterología0 citationsOpen Access

Multiphase Gas Structure in the Circumnuclear Region of NGC 5506 Observed with ALMA

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KTKana TakechiInternational Christian UniversityHNHiroshi NagaiThe Graduate University for Advanced Studies, SOKENDAINKNozomu KawakatuNational Institute of Technology, Kure College

Key Points

  • This research aims to understand the multiphase gas structure and kinematics in the circumnuclear region of NGC 5506.
  • Performed observations of [C i ](1–0), CO(3–2), and HCO + (4–3) with ALMA at ∼20 pc resolution.
  • Analyzed geometrical thickness and velocity structures across the CND.
  • Studied correlations between [C i ](1–0)/CO(3–2) ratios and [O iii ] λ 5007 structures.
  • The CND displays a high ratio of velocity dispersion to rotational velocity (≳0.9), indicating geometrically thick structures.
  • No significant differences in thickness or velocity structure between [C i ](1–0) and CO(3–2).
  • CO emission is preferentially dissociated by AGN-driven outflows, as indicated by spatial correlation with observed biconical structures.

Abstract

Abstract We present a study of the multiphase gas structure and kinematics of the circumnuclear disk (CND) of NGC 5506, a nearby edge-on Seyfert galaxy, at a spatial resolution of ∼20 pc. Observations of C i (1–0), CO(3–2), and HCO + (4–3) obtained with the Atacama Large Millimeter/submillimeter Array reveal the CND dominated by rotational motion on scales of several hundred parsecs. No significant differences in geometrical thickness or velocity structure are found between C i (1–0) and CO(3–2) across the CND, whereas HCO + (4–3) emission is more concentrated toward the disk plane. The ratio of velocity dispersion to rotational velocity, a proxy for disk scale height-to-radius ratio, is high (≳0.9) in the central region (≲30 pc) for both C i (1–0) and CO(3–2), indicating geometrically thick structures in both tracers. Regions where the C i (1–0)/CO(3–2) ratio exceeds the CND average are spatially correlated with the O iii λ 5007 bicone observed with the Hubble Space Telescope, suggesting that CO is preferentially dissociated by the AGN-driven biconical ionized outflow. The observed CND scale height and velocity dispersions traced by C i (1–0) and CO(3–2) are consistent with a model in which supernova-driven turbulence provides the vertical support for the CND.

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Cite This Study

Takechi et al. (2026) studied this question.

synapsesocial.com/papers/69f5939871405d493affeb2dhttps://doi.org/10.3847/1538-4357/ae5703
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