Title of article
Studies on the ionic transport and structural investigations of La0.5Li0.5TiO3 perovskite synthesized by wet chemical methods and the effect of Ce, Zr substitution at Ti site
Author/Authors
Hrudananda Jena، نويسنده , , K. V. GOVINDAN KUTTY، نويسنده , , T. R. N. KUTTY، نويسنده ,
Issue Information
دوهفته نامه با شماره پیاپی سال 2005
Pages
12
From page
4737
To page
4748
Abstract
La0.5Li0.5TiO3 perovskite was synthesized by various wet chemical methods. By adopting
low temperature methods of preparation lithium loss from the material is prevented.
La0.5Li0.5TiO3 (LLTO) was formed with cubic symmetry at 1473 K. LLTO was formed at
relatively lower temperature by using hydrothermal preparation method. PVA
gel-decomposition route yield tetragonal LLTO on annealing the dried gel at 1473 K. By
using gel-carbonate route LiTi2O4 minor phase was found to remain even after
heat-treatment at 1473 K. The hydroxylation of LLTO was done in deionized water as well
as in dilute acetic acid medium. By hydroxylation process incorporation of hydroxyls and
leaching out of Li+ was observed from the material. The Li+ concentration of these
compositions was examined by AAS. The electrical conductivities of these compositions
were measured by dc and ac impedance techniques at elevated temperatures. The
activation energies of electrical conduction for these compositions were estimated from the
experimental results. The measured activation energy of Li+ conduction is 0.34 eV.
Unhydroxylated samples exhibit only Li+ conduction, whereas, the hydroxylated LLTO
show proton conductivity at 298–550 K in addition to Li+ conductivity. The effect of Zr or Ce
substitution in place of Ti were attempted. La0.5Li0.5ZrO3 Perovskite was not formed;
instead pyrochlore phase (La2Zr2O7) along with monoclinic ZrO2 phases was observed
above 1173 K; below 1173 K cubic ZrO2 is stable. (La0.5Li0.5)2CeO4 solid solution was formed
in the case of Ce substitution at Ti sublattice on heat-treatment up to 1673 K.
C 2005 Springer Science + Business Media, Inc.
Journal title
Journal of Materials Science
Serial Year
2005
Journal title
Journal of Materials Science
Record number
830188
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