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Modeling Ionic Conductivity in Nasicon Structures

✍ Scribed by Daniele Mazza


Publisher
Elsevier Science
Year
2001
Tongue
English
Weight
192 KB
Volume
156
Category
Article
ISSN
0022-4596

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✦ Synopsis


Considering only the structure of oxygen lattice and employing bond valence equations, the conduction geometry and the activation energy of Na Ψ‰ motion in Nasicons are modeled. This is performed by calculating the valence sum m(x, y, z) for a grid of points inside the oxygen lattice, then by following with iterative procedures the pathway with lowest relative m(x, y, z) values, starting from a speci5ed position and initial direction. After a certain trajectory the Na Ψ‰ ion will reach a second position in the lattice, which will usually correspond to a known crystallographic position. Di4erent rhombohedral and monoclinic Nasicons are examined, enabling us to verify some the ionic movement. Structural parameters governing conduction are described, based on the distortions of real structures from an idealized (archetype) Nasicon structure, in turn modeled by bond valence equations.


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Ionic conductivity of NASICON-type LiHf2
✍ Ana MartΓ­nez-JuΓ‘rez; Juan E. Iglesias; JosΓ©M. Rojo πŸ“‚ Article πŸ“… 1996 πŸ› Elsevier Science 🌐 English βš– 596 KB

The ionic conductivity of two pellets of LiHf,(PO,), calcined at 1000 and 1100Β°C has been measured. Grain interior and grain boundary responses are distinguished in the impedance plots as well as in the real part of conductivity versus frequency plots. The activation energy associated with the motio