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The CaIn2-Type Structure in YAg0.4Ga1.6

Published online by Cambridge University Press:  10 January 2013

A. E. Dwight
Affiliation:
Department of Physics*, Northern Illinois University, DeKalb, IL 60115, U.S.A.

Abstract

The ternary compound YAg0.4Ga1.6 has the CaIn2-type structure. The only variable positional parameter z was determined by graphical methods from visual observations of intensities on a Debye-Scherrer pattern. Cu or Ni substitutions for Ag also result in a ternary CaIn2-type structure.

Type
Research Article
Copyright
Copyright © Cambridge University Press 1986

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References

Dwight, A. E. (1967). Proceedings of the 12th Rare Earth Research Conference, Vail, CO, July 18. 480489.Google Scholar
Dwight, A. E. (1968). Proceedings of the 7th Rare Earth Research Conference, Coronado, CA, October 28. 273281.Google Scholar
Dwight, A. E. (1980). “Inteimetallic Compounds in R.E. (Al, Ga)2 and R.E.(Cu,Ga)2 Alloys,” in The Rare Earths in Modern Science and Technology, Vol. 2., edited by McCarthy, G. J., Rhyne, J. J. and Silber, H. B., 3944. New York: Plenum.CrossRefGoogle Scholar
Kripyakevich, P. I., Markiv, V. Ya. and Melnyk, Ya. V. (1967). Dop. Akad. Nauk, URSR 29, 750753.Google Scholar
Pearson, W. B. (1967). A Handbook of Lattice Spacings and Structures of Metals and Alloys, Vol. 2. Oxford: Pergamon.Google Scholar
Yvon, K., Jeitschko, W. and Parthé, E. (1969). A Fortran IV Program for the Intensity Calculation of Powder Patterns. Philadelphia: University of Pennsylvania.Google Scholar
Grin, Yu. N. and Yarmolyuk, Ya. P. (1983). Russian Metallurgy 1, 161164.Google Scholar