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Kinematics and dynamics of molecular gas in galactic centers

Published online by Cambridge University Press:  22 May 2014

K. Sakamoto*
Affiliation:
Academia Sinica, Institute of Astronomy and Astrophysics Taipei 10617, Taiwan email: [email protected]
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Abstract

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The central molecular zone (CMZ) in the central half kpc of the Milky Way is a massive concentration of molecular gas in the center of a barred spiral galaxy. Current and past activities in the Galactic center include the formation of massive stars/clusters, AGN feeding, and feedback. At the same time, observations of molecular gas in external galaxies show that many disk galaxies have similar condensations of molecular gas in their central kpc or so. They also have CMZs, or nuclear molecular rings or concentrations in more common terms among extragalactic observers. The formation of the CMZs are often, but not always, related to stellar bars. The centers of nearby galaxies can provide valuable information on the general properties of galactic centers and CMZs through comparative studies of multiple galactic centers of different characteristics from various viewing angles. Linear resolutions achieved toward nearby extragalactic CMZs with modern radio interferometers are now comparable to those achieved toward the Galactic CMZ with small single-dish telescopes. I review and present work on the formation mechanism and properties of the CMZs in external galaxies with some comparisons with the CMZ of our Galaxy.

Type
Contributed Papers
Copyright
Copyright © International Astronomical Union 2014 

References

Athanassoula, E. 1992, MNRAS 259, 345CrossRefGoogle Scholar
Barnes, J. E., & Hernquist, L. E. 1991, ApJ 370, L65CrossRefGoogle Scholar
Barnes, J. E., & Hernquist, L. 1996, ApJ 471, 115CrossRefGoogle Scholar
Binney, J., Gerhard, O. E., Stark, A. A., Bally, J., & Uchida, K. I. 1991, MNRAS 252, 210CrossRefGoogle Scholar
Blitz, L. & Spergel, D. N. 1991, ApJ 379, 631CrossRefGoogle Scholar
Bolatto, A. D., Wolfire, M., & Leroy, A. K. 2013, ARA&A 51, 207Google Scholar
Bolatto, A. D., Warren, S. R., Leroy, A. K., et al. 2013, Nature 499, 450Google Scholar
Combes, F., & Gerin, M. 1985, A&A 150, 327Google Scholar
Comerón, S., Knapen, J. H., Beckman, J. E., et al. 2010, MNRAS 402, 2462Google Scholar
Dale, D. A., Cohen, S. A., Johnson, L. C., et al. 2009, ApJ 703, 517CrossRefGoogle Scholar
de Vaucouleurs, G., de Vaucouleurs, A., Corwin, H. G. Jr., et al. 1991, Third Reference Catalogue of Bright GalaxiesCrossRefGoogle Scholar
García-Burillo, S., Martín-Pintado, J., Fuente, A., & Neri, R. 2000, A&A 355, 499Google Scholar
Hasegawa, T., Sato, F., Whiteoak, J. B., & Miyawaki, R. 1994, ApJ, 429, L77CrossRefGoogle Scholar
Hsieh, P.-Y., Matsushita, S., Liu, G., et al. 2011, ApJ 736, 129CrossRefGoogle Scholar
Jarrett, T. H., Chester, T., Cutri, R., Schneider, S. E., & Huchra, J. P. 2003, AJ 125, 525CrossRefGoogle Scholar
Kenney, J. D. P., Wilson, C. D., Scoville, N. Z., Devereux, N. A., & Young, J. S. 1992, ApJ 395, L79Google Scholar
Kohno, K., Kawabe, R., & Vila-Vilaró, B. 1999, ApJ 511, 157Google Scholar
Komugi, S., Sofue, Y., Kohno, K., et al. 2008, ApJS 178, 225Google Scholar
Kuno, N., Sato, N., Nakanishi, H., et al. 2007, PASJ 59, 117CrossRefGoogle Scholar
Laurikainen, E., & Salo, H. 2002, MNRAS 337, 1118Google Scholar
Matsuda, T. & Nelson, A. H. 1977, Nature 266, 607CrossRefGoogle Scholar
Morris, M. & Serabyn, E. 1996, ARA&A 34, 645Google Scholar
Murakami, H., Koyama, K., Sakano, M., Tsujimoto, M., & Maeda, Y. 2000, ApJ 534, 283CrossRefGoogle Scholar
Muraoka, K., Kohno, K., Tosaki, T., et al. 2009, PASJ 61, 163CrossRefGoogle Scholar
Oka, T., Onodera, Y., Nagai, M., et al. 2012, ApJS 201, 14CrossRefGoogle Scholar
Regan, M. W., Sheth, K., & Vogel, S. N. 1999, ApJ 526, 97CrossRefGoogle Scholar
Regan, M. W., & Teuben, P. 2003, ApJ 582, 723CrossRefGoogle Scholar
Regan, M. W., Thornley, M. D., Vogel, S. N., et al. 2006, ApJ 652, 1112Google Scholar
Sakamoto, K., Okumura, S. K., Ishizuki, S., & Scoville, N. Z. 1999a, ApJS 124, 403CrossRefGoogle Scholar
Sakamoto, K., Okumura, S. K., Ishizuki, S., & Scoville, N. Z. 1999b, ApJ 525, 691Google Scholar
Sakamoto, K., Matsushita, S., Peck, A. B., Wiedner, M. C., & Iono, D. 2004, ApJ 616, L59CrossRefGoogle Scholar
Sakamoto, K., Ho, P. T. P., Iono, D., et al. 2006a, ApJ 636, 685Google Scholar
Sakamoto, K., Ho, P. T. P., & Peck, A. B. 2006b, ApJ 644, 862Google Scholar
Sakamoto, K., Ho, P. T. P., Mao, R.-Q., Matsushita, S., & Peck, A. B. 2007, ApJ 654, 782Google Scholar
Sakamoto, K. 2013a, IAU Symposium, 292, 143Google Scholar
Sakamoto, K. 2013b, Astronomical Society of the Pacific Conference Series, 477, 21Google Scholar
Sawada, T., Hasegawa, T., Handa, T., et al. 2001, ApJS 136, 189CrossRefGoogle Scholar
Sheth, K., Vogel, S. N., Regan, M. W., Thornley, M. D., & Teuben, P. J. 2005, ApJ 632, 217CrossRefGoogle Scholar
Sorensen, S.-A., Matsuda, T., & Fujimoto, M. 1976, Ap&SS 43, 491Google Scholar
Su, M., Slatyer, T. R., & Finkbeiner, D. P. 2010, ApJ 724, 1044CrossRefGoogle Scholar
Turner, B. E. 1985, ApJ 299, 312CrossRefGoogle Scholar