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PROCESSING OF INTERSTELLAR MEDIUM AS DIVULGED BY AKARI

  • Onaka, Takashi (Department of Astronomy, Graduate School of Science, The University of Tokyo) ;
  • Mori, Tamami I. (Department of Astronomy, Graduate School of Science, The University of Tokyo) ;
  • Ohsawa, Ryou (Department of Astronomy, Graduate School of Science, The University of Tokyo) ;
  • Sakon, Itsuki (Department of Astronomy, Graduate School of Science, The University of Tokyo) ;
  • Bell, Aaron C. (Department of Astronomy, Graduate School of Science, The University of Tokyo) ;
  • Hammonds, Mark (Department of Astronomy, Graduate School of Science, The University of Tokyo) ;
  • Shimonishi, Takashi (Department of Earth and Planetary Sciences, Graduate School of Science, Kobe University) ;
  • Ishihara, Daisuke (Graduate School of Science, Nagoya University) ;
  • Kaneda, Hidehiro (Graduate School of Science, Nagoya University) ;
  • Okada, Yoko (I. Physikalisches Institut, Universitat zu Koln) ;
  • Tanaka, Masahiro (Center for Computational Sciences, University of Tsukuba)
  • Received : 2016.06.18
  • Accepted : 2016.10.25
  • Published : 2017.03.31

Abstract

A wide spectral coverage from near-infrared (NIR) to far-infrared (FIR) of AKARI both for imaging and spectroscopy enables us to efficiently study the emission from gas and dust in the interstellar medium (ISM). In particular, the Infrared Camera (IRC) onboard AKARI offers a unique opportunity to carry out sensitive spectroscopy in the NIR ($2-5{\mu}m$) for the first time from a spaceborn telescope. This spectral range contains a number of important dust bands and gas lines, such as the aromatic and aliphatic emission bands at 3.3 and $3.4-3.5{\mu}m$, $H_2O$ and $CO_2$ ices at 3.0 and $4.3{\mu}m$, CO, $H_2$, and H I gas emission lines. In this paper we concentrate on the aromatic and aliphatic emission and ice absorption features. The balance between dust supply and destruction suggests significant dust processing taking place as well as dust formation in the ISM. Detailed analysis of the aromatic and aliphatic bands of AKARI observations for a number of H ii regions and H ii region-like objects suggests processing of carbonaceous dust in the ISM. The ice formation process can also be studied with IRC NIR spectroscopy efficiently. In this review, dust processing in the ISM divulged by recent analysis of AKARI data is discussed.

Keywords

References

  1. Barlow, M. J., Krause, O., Swinyard, B. M., et al., 2010, A Herschel PACS and SPIRE Study of the Dust Content of the Cassiopeia A Supernova Remnant, A&A, 518, L138 https://doi.org/10.1051/0004-6361/201014585
  2. Draine, B. T., 2006, Can Dust Explain Variations in the D/H Ratio?, ASP Conf. ser. 348, 58
  3. Gall, C., Hjorth, J., & Andersen, A. C., 2011, Production of Dust by Massive Stars at hHigh Redshift, A&ARv, 19, 43 https://doi.org/10.1007/s00159-011-0043-7
  4. Gomez, H. L., Krause, O., Barlow, M. J., et al., 2012, A Cool Dust Factory in the Crab Nebula: A Herschel Study of the Filaments, ApJ, 760, 96 https://doi.org/10.1088/0004-637X/760/1/96
  5. Hammonds, M., Mori, T. I., Usui, F., & Onaka, T., 2014, Modelling the 3 Micron Region in AKARI IRC Spectra, this volume
  6. Haraguchi, K., Nagayama, T., Kurita, M., Kino, M., & Sato, S., 2012, Spatial Variation of PAH Ionization in the Orion Nebula, PASJ, 64, 127 https://doi.org/10.1093/pasj/64.6.127
  7. Indebetouw, R., Matsuura, M., Dwek, E., et al., 2014, Dust Production and Particle Acceleration in Supernova 1987A Revealed with ALMA, ApJ, 782, L2 https://doi.org/10.1088/2041-8205/782/1/L2
  8. Ioppolo, S., van Boheemen, Y., Cuppen, H. M., van Dishoeck, E. F., & Linnartz, H., 2011 Surface Formation of $CO_2$ Ice at Low Temperatures, MNRAS, 413, 228
  9. Jones, A. P., & Nuth, J. A. 2011, Dust Destruction in the ISM: a Re-evaluation of Dust Lifetimes, A&A, 530, A44 https://doi.org/10.1051/0004-6361/201014440
  10. Jones, A. P., Fanciullo, L., Kohler, M., Verstraete, L., Guillet, V., Bocchio, M., & Ysard, N, 2013, The Evolution of Amorphous Hydrocarbons in the ISM: Dust Modelling from a New Vantage Point, A&A, 558, A62 https://doi.org/10.1051/0004-6361/201321686
  11. Linsky, J. J., Draine, B. T., Moos, H. W., et al., 2006, What Is the Total Deuterium Abundance in the Local Galactic Disk? ApJ, 647, 1106 https://doi.org/10.1086/505556
  12. Matsuura., M., Sloan, G. C., Bernard-Salas, J., et al. 2011, Herschel Detects a Massive Dust Reservoir in Supernova 1987A, Science, 333, 1258 https://doi.org/10.1126/science.1205983
  13. Mori, T. I., Onaka, T., Sakon, I., Ishihara, D., Shimonishi, T., Ohsawa, R., & Bell, A. C., 2014a, Observational Studies on the Near-infrared Unidentied Emission Bands in Galactic HII Regions, ApJ, 784, 53 https://doi.org/10.1088/0004-637X/784/1/53
  14. Mori, T. I., Onaka, T., Sakon, I., et al., 2014b, Ice Absorption Features in Near-Infrared Spectra of Galactic Objects, this volume
  15. Murakami, H., Baba, H., Barthel, P., et al., 2007, The Infrared Astronomical Mission AKARI, 2007, PASJ, 59, S369 https://doi.org/10.1093/pasj/59.sp2.S369
  16. Nummelin, A., Whittet, D. C. B., Gibb, E. L., Gerakines, P. A., & Chiar, J. E., Solid Carbon Dioxide in Regions of Low-Mass Star Formation, 2001, ApJ, 558, 185 https://doi.org/10.1086/322480
  17. Oba, Y., Watanabe, N., Kouchi, A., Hama, T., & Pirronello, V., 2010, Experimental Study of $CO_2$ Formation by Surface Reactions of Non-energetic OH Radicals with CO Molecules, ApJ, 712, L174 https://doi.org/10.1088/2041-8205/712/2/L174
  18. Ohyama, Y., Onaka, T., Matsuhara, H., et al., 2007, Near-Infrared and Mid-Infrared Spectroscopy with the Infrared Camera (IRC) for AKARI, PASJ, 59, S411 https://doi.org/10.1093/pasj/59.sp2.S411
  19. Onaka, T., 2012, AKARI Observations of the Interstellar Medium, PKAS, 27, 187
  20. Onaka, T., 2013, ISM Diagnostics: Dust, Proc. of IAU Symp., 292, 259
  21. Onaka, T., Matsuhara, H., Wada, T., et al., 2007, The Infrared Camera (IRC) for AKARI - Design and Imaging Performance, PASJ, 59, S401
  22. Onaka, T., Matsuhara, H., Wada, T., et al., 2010, AKARI Warm Mission, Proc. of SPIE, 7731, 77310M
  23. Onaka, T., Mori, T. I., Sakon, I., Ohsawa, R., Kaneda, H., Okada, Y., & Tanaka, M., 2014, Search for the Infrared Emission Features from Deuterated Interstellar Polycyclic Aromatic Hydrocarbons, ApJ, 780, 114
  24. Peeters, E., Allamandola, L. J., Bauschlicher, C. W., Jr., Hudgins, D. M., Sandford, S. A., & Tielens, A. G. G. M., 2004, Deuterated Interstellar Polycyclic Aromatic Hydrocarbons, ApJ, 604, 252 https://doi.org/10.1086/381866
  25. Pontoppidan, K. M., et al., 2008, The c2d Spitzer Spectroscopic Survey of Ices around Low-Mass Young Stellar Objects. II. $CO_2$, ApJ, 678, 1005 https://doi.org/10.1086/533431
  26. Shimonishi, T., Onaka, T., Kato, D., Sakon, I., Ita, Y., Kawamura, A., & Kaneda, H., 2008, AKARI Near-Infrared Spectroscopy: Detection of $H_2O$ and $CO_2$ Ices toward Young Stellar Objects in the Large Magellanic Cloud, ApJL, 686, L99 https://doi.org/10.1086/592948
  27. Shimonishi, T., Onaka, T., Kato, D., Sakon, I., Ita, Y., Kawamura, A., & Kaneda, H., 2010, Spectroscopic Observations of Ices around Embedded Young Stellar Objects in the Large Magellanic Cloud with AKARI, A&A, 514, 12 https://doi.org/10.1051/0004-6361/200913815
  28. Sibthorpe, B., Ade, P. A. R., Bock, J. J., et al., 2010, AKARI and BLAST Observations of the Cassiopeia A Supernova Remnant and Surrounding Interstellar Medium, ApJ, 719, 1553 https://doi.org/10.1088/0004-637X/719/2/1553
  29. Whittet, D. C. B., Gerakines, P. A., Hough, J. H., & Shenoy, S. S., 2001, Interstellar Extinction and Polarization in the Taurus Dark Clouds: The Optical Properties of Dust near the Diuse/Dense Cloud Interface, ApJ, 547, 872 https://doi.org/10.1086/318421
  30. Whittet, D. C. B., Shenoy, S. S., Bergin, E. A., Chiar, J. E., Gerakines, P. A., Gibb, E. L., Melnick, G. J., & Neufeld, D. A., 2007, The Abundance of Carbon Dioxide Ice in the Quiescent Intracloud Medium, ApJ, 655, 332 https://doi.org/10.1086/509772