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The Chemical Composition and Distribution of Interstellar Grains

Published online by Cambridge University Press:  14 August 2015

J. Mayo Greenberg
Affiliation:
State University of New York at Albany and Dudley Observatory, Albany, N. Y., U.S.A.
Seung-Soo Hong
Affiliation:
State University of New York at Albany and Dudley Observatory, Albany, N. Y., U.S.A.

Abstract

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The chemical composition of interstellar grains is derived here on the basis of (1) the cosmic abundance of the elements; (2) the wavelength dependence of extinction and polarization; (3) the average total extinction; (4) the ratio of polarization to extinction; (5) the predominantly dielectric character of grains in the visible spectral region; and (6) infrared spectral characteristics of grains. It is indicated that the major portion of the grains, by mass, consist of core-mantle particles in the 0.1-µm size range, whose cores consist largely of silicates and whose mantles are a solid mixture of O, C, and N with H in a heterogeneous combination of simple and complex molecules with frozen free radicals. A minor constituent of the solid particles exist in the form of very small uncoated particles generally less than 10-6 cm in size whose precise composition is not certain. Inferences of the core-mantle model with respect to spatial distribution are consistent with the proposition that growth of the mantles occurs in the galactic shock region predicted by the density-wave theory. Estimates of the total visual extinction toward the galactic center and the consequent estimates of the total amount of far infrared radiation are shown to depend critically on the grain model. Variations of the ratio of far ultraviolet to visual extinction are correlated with the conditions for growth of mantles on the bare small particles which are generally prevented from accreting mantles primarily because of their extreme temperature fluctuations produced by the ultraviolet photons in the radiation field.

Type
Part 1: The Interstellar Medium
Copyright
Copyright © Reidel 1974 

References

Bless, R. C. and Savage, B. C.: 1972, Astrophys. J. 171, 293.CrossRefGoogle Scholar
Borgman, J.: 1973, Space Sci. Rev. 15, 121.Google Scholar
Cameron, A. G. W.: 1973, preprint.Google Scholar
Cayrel, R. and Schatzman, E.: 1954, Ann. Astrophys. 17, 555.Google Scholar
Gilra, D. P.: 1971, Nature 229, 237.CrossRefGoogle Scholar
Gillett, F. C. and Forrest, W. J.: 1973, Astrophys. J. 179, 483.CrossRefGoogle Scholar
Greenberg, J. M.: 1960, J. Appl. Phys. 31, 82.CrossRefGoogle Scholar
Greenberg, J. M.: 1968, Stars and Stellar Systems 7, Ch. 6.Google Scholar
Greenberg, J. M.: 1969, Physica 41, 67.Google Scholar
Greenberg, J. M.: 1971, Astron. Astrophys. 12, 240.Google Scholar
Greenberg, J. M.: 1973a, On the Origin of the Solar System (Proc. of Symposium, Nice, France, April 1972, Centre National de la Recherche Scientifique, 1973), p. 135.Google Scholar
Greenberg, J. M.: 1973b, in Gordon, M. A. and Snyder, L. E. (eds.), Molecules in the Galactic Environment, John Wiley and Sons, p. 93.Google Scholar
Greenberg, J. M.: 1973c, ‘Interstellar Dust and Related Topics’, IAU Symp. 52, 3.Google Scholar
Greenberg, J. M. and Hong, S. S.: 1974a, in Cameron, A. G. W. and Field, G. B. (eds.), Proc. of the ‘Dusty Universe Symp., Cambridge, Mass. 1973, in press.Google Scholar
Greenberg, J. M. and Hong, S. S.: 1974b, Proc. of 8th ESLAB Symp. on Hii Regions and Galatic Center, Frascati, Italy, 1974, in press.Google Scholar
Greenberg, J. M., Lind, A. C., Wang, R. T., and Libelo, L. F.: 1963a, Electromagnetic Scattering (Proc. of Interdisciplinary Conf. held at Clerkson College of Technology, Potsdam, New York, August 1962), p. 123.Google Scholar
Greenberg, J. M., Libelo, L. F., Lind, A. C., and Wang, R. T.: 1963b, in Jordan, E. C. (ed.), Electromagnetic Theory and Antennas, Macmillan Co., New York, Part. 1, p. 81.Google Scholar
Greenberg, J. M., Yencha, A. J., Corbett, J. W., and Frisch, H. L.: 1972, Mem. Soc. Roy. Sci. Liège, 6e series, 3.Google Scholar
Greenstein, J. L.: 1938, Harvard Obs. Circ., No. 442.Google Scholar
Hall, J. S.: 1949, Science 109, 166.CrossRefGoogle Scholar
Hiltner, W. A.: 1949, Science 109, 165.Google Scholar
Hoyle, F. and Wickramasinghe, N. C.: 1962, Monthly Notices Roy. Astron. Soc. 124, 417.CrossRefGoogle Scholar
Huffman, D. R. and Stapp, J. L.: 1971, Nature Phys. Sci. 229, 45.Google Scholar
Hulst, H. C. van de: 1943, Ned. Tijdschr. v. Natuurkunde 10, 251.Google Scholar
Hulst, H. C. van de: 1946, Rech. Astron. Obs. Utrecht, ii, Part 1.Google Scholar
Hulst, H. C. van de: 1957, Light Scattering by Small Particles, John Wiley and Sons, Inc., New York; Chapman and Hall, Ltd., London.Google Scholar
Kamijo, F.: 1963, Publ. Astron. Soc. Japan 15, 440.Google Scholar
Kamijo, F. and Jong, T. de: 1973, Astron. Astrophys. 25, 371.Google Scholar
Kemp, J. C.: 1973, in Greenberg, J. M. and van de Hulst, H. C. (eds.), ‘Interstellar Dust and Related Topics’, IAU Symp. 52, 181.Google Scholar
Kittel, C.: 1956, Solid State Physics, John Wiley and Sons, Inc., New York, p. 130.Google Scholar
Lind, A. C. and Greenberg, J. M.: 1966, J. Appl. Phys. 37, 3195.Google Scholar
Lindblad, B.: 1935, Nature 135, 133.Google Scholar
Lynds, B. T.: 1970, in Kiepenheuer, K. O. (ed.), ‘The Spiral Structure of Our Galaxy’, IAU Symp. 38, 26.Google Scholar
Martin, P. G.: 1973, in Greenberg, J. M. and van de Hulst, H. C. (eds.), ‘Interstellar Dust and Related Topics’, IAU Symp. 52, 161.Google Scholar
Martin, P. G., Illing, K., and Angel, J.R.P.: 1973, ‘Interstellar Dust and Related Topics’, IAU Symp. 52, 169.Google Scholar
Morton, D. C., Drake, J. F., Jenkins, E. B., Rogerson, J. B., Spitzer, L., and York, D. G.: 1973, Astrophys. J. 181, L103.Google Scholar
Oort, J. H. and Hulst, H. C. van de: 1946, Bull. Astron. Inst. Neth. 10, 187.Google Scholar
Platt, J. R.: 1956, Astrophys. J. 193, 486.CrossRefGoogle Scholar
Rogerson, J. B., York, D. G., Drake, J. F., Jenkins, E. B., Morton, D. C., and Spitzer, L.: 1973, Astrophys. J. 181, L110.Google Scholar
Schalén, C.: 1936, Medd. Uppsala Astron. Obs. 64.Google Scholar
Shah, G. A.: 1970, Monthly Notices Roy. Astron. Soc. 148, 93.Google Scholar
Whiteoak, J. B.: 1966, Astrophys. J. 144, 305.Google Scholar
Woolf, N. J.: 1973, in Greenberg, J. M. and van de Hulst, H. C. (eds.), ‘Interstellar Dust and Related Topics’, IAU Symp. 52, 485.Google Scholar
York, D. G., Drake, J. F., Jenkins, E. B., Morton, D. C., Rogerson, J. B., and Spitzer, L.: 1973, Astrophys. J. 182, L1.CrossRefGoogle Scholar