Article contents
Powder diffraction data on Ca0.9Nd0.1Ti0.9Al0.1O3
Published online by Cambridge University Press: 12 August 2015
Abstract
Single crystals of Ca0.9Nd0.1Ti0.9Al0.1O3 (CNTAO) were grown using optical floating zone technique and the grown crystals were characterized by Laue diffraction and powder X-ray diffraction techniques for crystal quality and its composition, respectively. The powder pattern of CNTAO was indexed and refined using GSAS program to an orthorhombic structure with space group Pbnm (#62), a = 5.3832(1), b = 5.4343(1), c = 7.6389(2) Å, V = 223.4677 Å3′, and Z = 4.
- Type
- Data Reports
- Information
- Copyright
- Copyright © International Centre for Diffraction Data 2015
References
Jancar, B., Suvorov, D., Valant, M. and Drazic, G. (2003). “Characterization of CaTiO3–NdAlO3 dielectric ceramics,” J. Eur. Ceram. Soc.
23, 1391–1400.Google Scholar
Dereń, P. J., Pazik, R., Strek, W., Boutinaud, Ph. and Mahiou, R. (2008). “Synthesis and spectroscopic properties of CaTiO3 nanocrystals doped with Pr3+ ions,” J. Alloys Compd.
451, 595–599.Google Scholar
Kipkoech, E. R., Azough, F., Freer, R., Leach, C., Thompson, S. P. and Tang, C. C. (2003). “Structural study of Ca0.7Nd0.3Ti0.7Al0.3O3 dielectric ceramics using synchrotron X-ray diffraction,” J. Eur. Ceram. Soc.
23, 2677–2682.Google Scholar
Larson, A. C. and Von Dreele, R. B. (2000). General Structure Analysis System (GSAS) (Los Alamos National Laboratory Report LAUR 86–748).Google Scholar
Lemanski, K., Gagor, A., Kurnatowska, M., Pazik, R. and Deren, P. J. (2011). “Spectroscopic properties of Nd3+ ions in nano-perovskite CaTiO3
,” J. Solid State Chem.
184, 2713–2718.Google Scholar
Momma, K. and Izumi, F. (2013). “VESTA 3 for three-dimensional visualization of crystal, volumetric and morphology data,” J. Appl. Crystallogr.
44, 1272–1276.Google Scholar
Ewing, R. C. (2007). “Ceramic matrices for plutonium disposition,” Progr. Nucl. Energy
49, 635–643.Google Scholar
- 1
- Cited by