Hostname: page-component-77c89778f8-gq7q9 Total loading time: 0 Render date: 2024-07-18T18:22:41.114Z Has data issue: false hasContentIssue false

The chemistry of carbon dust formation

Published online by Cambridge University Press:  25 May 2016

Isabelle Cherchneff
Affiliation:
Department of Physics, UMIST, PO Box 88, Manchester M60 1QD, United Kingdom
Piero Cau
Affiliation:
Department of Physics, UMIST, PO Box 88, Manchester M60 1QD, United Kingdom

Abstract

Core share and HTML view are not available for this content. However, as you have access to this content, a full PDF is available via the ‘Save PDF’ action button.

We shall review the various types of chemistry involved in the formation of carbonaceous material present in carbon-rich AGB stars, mainly amorphous carbon, silicon carbide and other metal carbides discovered in pre-solar Stardust extracted from meteorites. The chemistry is discussed in the context of laboratory experiments and their application to circumstellar AGB winds. Emphasis is put on polycyclic aromatic hydrocarbons (PAHs), titanium carbide clusters and silicon carbide grains. Attempt to explain the condensation sequences derived from the study of pre-solar grains of meteoretical origin is made on the basis of physio-chemical models which describe the periodically shocked gas close to the photosphere of AGB stars.

Type
Part 3. Formation, Composition, and Processing of Dust
Copyright
Copyright © Astronomical Society of the Pacific 1999 

References

Bernatowicz, T.J., Amari, S., Zinner, E.K., Lewis, R.S., 1991, ApJ 373, L73 Google Scholar
Bernatowicz, T.J., Cowsik, R., Gibbons, P.C., et al., 1996, ApJ 472, 760 Google Scholar
Byrd, G.D., Burnier, R.C., Freiser, B.S., 1982, J. Am. Chem. Soc. 104, 3565 Google Scholar
Cadwell, B.J., Wang, H., Feigelson, E.D., Frenklach, M., 1994, ApJ 429, 285 Google Scholar
Cartier, S.F., May, B.D., Castleman, A.W., 1996, J. Phys. Chem. 100, 8175 Google Scholar
Cherchneff, I., 1998, in “Abundance profiles: Diagnostic tools for Galaxy history”, San Francisco, ASP Conf. Ser. 147, p. 179 Google Scholar
Cherchneff, I., Cau, P., Tielens, A.G.G.M., 1998, A&A, submitted Google Scholar
Cherchneff, I., Barker, J.R., Tielens, A.G.G.M., 1992, ApJ 401, 269 CrossRefGoogle Scholar
Fantoni, R., Bijen, F., Djurić, N., Piccirillo, S., 1991, Appl. Phys. B 52, 176 CrossRefGoogle Scholar
Fleischer, A.J., Gauger, A., Sedlmayr, E., 1994, A&A 297, 543 Google Scholar
Frenklach, M., Carmer, C.S., Feigelson, E.D., 1989, Nature 339, 196 Google Scholar
Frenklach, M., Feigelson, E.D., 1989, ApJ 341, 372 Google Scholar
Frenklach, M., Feigelson, E.D., 1997, in “From Stardust to Planetesimals”, Pendleton, Y. (ed.), ASP Conference Series 122, p. 107 Google Scholar
Gail, H.-P., Sedlmayr, E., 1988, A&A 206, 153 Google Scholar
Groenewegen, M.A.T., 1997, A&A 317, 503 Google Scholar
Guo, B.C., Kerns, K.P., Castleman, A.W., 1992, Science 255, 1411 Google Scholar
Harano, A., Kinoshita, J., Koda, Seiichiro, 1990, Chem. Phys. Letters 172, 219 Google Scholar
Höfner, S., Feuchtinger, M.U., Dorfi, E.A., 1995, A&A 297, 815 Google Scholar
Lihrmann, J.-M., Cauchetier, M., 1994, J. European Ceramic Soc. 13, 41 Google Scholar
Mukherjee, J., Sarofim, A., Longwell, J.P., 1994, Combustion and Flame 96, 191 Google Scholar
Reddy, B.V., Khanna, S.N., 1993, Chem. Phys. Letters 209, 104 Google Scholar
Ritter, D., Weissharr, J.C., 1990, J. Am. Chem. Soc. 112, 6425 Google Scholar
Ritter, D., Carroll, J.J., Weissharr, J.C., 1992, J. Phys. Chem. 96, 10636 Google Scholar
Tolbert, M.A., Beauchamp, J.L., 1986, J. Am. Chem. Soc. 108, 7509 Google Scholar
Wei, S., Guo, B.C., Purnell, J., Buzza, S., Castleman, A.W., 1992, J. Phys. Chem. 96, 4166 Google Scholar
Wei, S., Castleman, A.W., 1994, Chem. Phys. Letters 227, 305 CrossRefGoogle Scholar
Willacy, K., Cherchneff, I., 1998, A&A 330, 676 Google Scholar