Predicted structure, thermo-mechanical properties and Li ion transport in LiAlF4 glass

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Predicted structure, thermo-mechanical properties and Li ion transport in LiAlF4 glass. / Stechert, T. R.; Rushton, M. J. D.; Grimes, R. W. et al.
In: Journal of Non-Crystalline Solids, Vol. 358, No. 16, 15.08.2012, p. 1917-1923.

Research output: Contribution to journalArticlepeer-review

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Stechert, TR, Rushton, MJD, Grimes, RW & Dillon, AC 2012, 'Predicted structure, thermo-mechanical properties and Li ion transport in LiAlF4 glass', Journal of Non-Crystalline Solids, vol. 358, no. 16, pp. 1917-1923. https://doi.org/10.1016/j.jnoncrysol.2012.05.044

APA

Stechert, T. R., Rushton, M. J. D., Grimes, R. W., & Dillon, A. C. (2012). Predicted structure, thermo-mechanical properties and Li ion transport in LiAlF4 glass. Journal of Non-Crystalline Solids, 358(16), 1917-1923. https://doi.org/10.1016/j.jnoncrysol.2012.05.044

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MLA

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Stechert TR, Rushton MJD, Grimes RW, Dillon AC. Predicted structure, thermo-mechanical properties and Li ion transport in LiAlF4 glass. Journal of Non-Crystalline Solids. 2012 Aug 15;358(16):1917-1923. doi: 10.1016/j.jnoncrysol.2012.05.044

Author

Stechert, T. R. ; Rushton, M. J. D. ; Grimes, R. W. et al. / Predicted structure, thermo-mechanical properties and Li ion transport in LiAlF4 glass. In: Journal of Non-Crystalline Solids. 2012 ; Vol. 358, No. 16. pp. 1917-1923.

RIS

TY - JOUR

T1 - Predicted structure, thermo-mechanical properties and Li ion transport in LiAlF4 glass

AU - Stechert, T. R.

AU - Rushton, M. J. D.

AU - Grimes, R. W.

AU - Dillon, A. C.

PY - 2012/8/15

Y1 - 2012/8/15

N2 - Materials with the LiAlF4 composition are of interest as protective electrode coatings in Li ion battery applications due to their high cationic conductivity. Here classical molecular dynamics calculations are used to produce amorphous model structures by simulating a quench from the molten state. These are analysed in terms of their individual pair correlation functions and atomic coordination environments. This indicates that amorphous LiAlF4 is formed of a network of corner sharing AlF6 octahedra. Li ions are distributed within this network, primarily associated with non-bridging fluorine atoms. The nature of the octahedral network is further analysed through intra- and interpolyhedral bond angle distributions and the relative populations of bridging and non-bridging fluorine ions are calculated. Network topology is considered through the use of ring statistics, which indicates that, although topologically well connected, LiAlF4 contains an appreciable number of corner-linked branch-like AlF6 chains. Thermal expansion values are determined above and below the predicted glass transition temperature of 1340 K. Finally, movement of Li ions within the network is examined with predictions of the mean squared displacements, diffusion coefficients and Li ion activation energy. Different regimes for lithium ion movement are identified, with both diffusive and sessile Li ions observed. For migrating ions, a typical trajectory is illustrated and discussed in terms of a hopping mechanism for Li transport. (C) 2012 Elsevier B.V. All rights reserved.

AB - Materials with the LiAlF4 composition are of interest as protective electrode coatings in Li ion battery applications due to their high cationic conductivity. Here classical molecular dynamics calculations are used to produce amorphous model structures by simulating a quench from the molten state. These are analysed in terms of their individual pair correlation functions and atomic coordination environments. This indicates that amorphous LiAlF4 is formed of a network of corner sharing AlF6 octahedra. Li ions are distributed within this network, primarily associated with non-bridging fluorine atoms. The nature of the octahedral network is further analysed through intra- and interpolyhedral bond angle distributions and the relative populations of bridging and non-bridging fluorine ions are calculated. Network topology is considered through the use of ring statistics, which indicates that, although topologically well connected, LiAlF4 contains an appreciable number of corner-linked branch-like AlF6 chains. Thermal expansion values are determined above and below the predicted glass transition temperature of 1340 K. Finally, movement of Li ions within the network is examined with predictions of the mean squared displacements, diffusion coefficients and Li ion activation energy. Different regimes for lithium ion movement are identified, with both diffusive and sessile Li ions observed. For migrating ions, a typical trajectory is illustrated and discussed in terms of a hopping mechanism for Li transport. (C) 2012 Elsevier B.V. All rights reserved.

U2 - 10.1016/j.jnoncrysol.2012.05.044

DO - 10.1016/j.jnoncrysol.2012.05.044

M3 - Erthygl

VL - 358

SP - 1917

EP - 1923

JO - Journal of Non-Crystalline Solids

JF - Journal of Non-Crystalline Solids

SN - 0022-3093

IS - 16

ER -