No CrossRef data available.
Article contents
Powder diffraction data of the AlCeCo2Ni2 quaternary compound
Published online by Cambridge University Press: 10 June 2016
Abstract
A new quaternary compound AlCeCo2Ni2 was synthesized and studied by means of X-ray powder diffraction technique. The powder pattern of AlCeCo2Ni2 was indexed and refined, giving a hexagonal structure, space group P6/mmm (No. 191) with the CaCu5 structure type. a = 4.9242(2) Å, c = 4.0524(1) Å, V = 85.1 Å3, Z = 1, ρx = 7.85 g cm−3, F30 = 130.2(0.010, 30), and RIR = 0.71(2).
- Type
- New Diffraction Data
- Information
- Copyright
- Copyright © International Centre for Diffraction Data 2016
References
Burnasheva, V. V., Petrova, K. A., Semenenko, K. N., Zhang, J., and Bobev, S. (1984). “The reaction of hydrogen with the compounds LaNi5−x
(T1,T2)
x
where T1, T2 = Al, Cr, Fe, Cu,” Zh. Neorg. Khim. 29, 869–874.Google Scholar
Haucke, W. (1940). “Kristallstruktur von CaZn5 und CaCu5
,” Z. Anorg. Allg. Chem. 244, 17–22.Google Scholar
Inorganic Crystal Structure Database (2015). Fachinformationszentrum Karlsruhe, Germany, and the U.S. Department of Commerce on the behalf of the United States (Inorganic Crystal Structure Database, Germany).Google Scholar
Li, S. L., Wang, P., Chen, W., Luo, G., Chen, D. M., and Yang, K. (2009). “Hydrogen storage properties of LaNi3.8 AlM0.2 (M = Ni, Cu, Fe, Al, Cr, Mn) alloys,” J. Alloy Compd. 485, 867–871.Google Scholar
Sinha, V. K. and Wallace, W. E. (1984). “Effect of neodymium, copper and aluminium on the hydriding characteristics of CeNi5
,” J. Less Common Met. 96, 283–290.Google Scholar
Smith, G. S. and Snyder, R. L. (1979). “FN: a criterion for rating powder diffracton patterns and evaluating the reliability of powder pattern indexing,” J. Appl. Crystallogr. 12, 60.Google Scholar