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arXiv · astro-ph/0409501

Disks, Tori, and Cocoons: Emission and Absorption Diagnostics of AGN Environments

Abstract

One of the most important problems in the study of active galaxies is understanding the detailed geometry, physics, and evolution of the central engines and their environments. The leading models involve an accretion disk and torus structure around a central dense object, thought to be a supermassive black hole. Gas found in the environment of AGN is associated with different structures: molecular accretion disks, larger scale atomic tori, ionized and neutral "cocoons" in which the nuclear regions can be embedded. All of them can be studied at radio wavelengths by various means. Here, we summarize the work that has been done to date in the radio band to characterize these structures. Much has been learned about the central few parsecs of AGN in the last few decades with contemporary instruments but the picture remains incomplete. In order to be able to define a more accurate model of this region, significant advances in sensitivity, spectral and angular resolution, and bandpass stability are required. The necessary advances will only be provided by the Square Kilometer Array and we discuss the possibilities that these dramatic improvements will open for the study of the gas in the central region of AGN.

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R. Morganti, L. J. Greenhill, A. B. Peck, D. L. Jones, C. Henkel. 2004-09-21. Disks, Tori, and Cocoons: Emission and Absorption Diagnostics of AGN Environments. https://doi.org/10.1016/j.newar.2004.09.022

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