Conductivity and dielectric studies of Li2SnO3

Lithium stannate (Li2SnO3) has been prepared by solution evaporation method. The precursor obtained is sintered at 800A degrees C for 5, 6, and 7 h, respectively. X-ray diffractogram confirmed that the sample obtained after sintering is Li2SnO3. The pelletized Li2SnO3 after heating at 500 A degrees...

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Main Authors: Nor, A.F.M., Majid, Siti Rohana, Teo, L.P., Buraidah, M.H.
Format: Article
Published: Springer Verlag (Germany) 2012
Subjects:
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author Nor, A.F.M.
Majid, Siti Rohana
Teo, L.P.
Buraidah, M.H.
author_facet Nor, A.F.M.
Majid, Siti Rohana
Teo, L.P.
Buraidah, M.H.
author_sort Nor, A.F.M.
collection UM
description Lithium stannate (Li2SnO3) has been prepared by solution evaporation method. The precursor obtained is sintered at 800A degrees C for 5, 6, and 7 h, respectively. X-ray diffractogram confirmed that the sample obtained after sintering is Li2SnO3. The pelletized Li2SnO3 after heating at 500 A degrees C for 3 h is used for electrochemical impedance spectroscopy characterization. Impedance measurements have been carried out over frequency range from 50 Hz to 1 MHz and temperature range from 563 to 633 K. The conductivity-temperature relationship is Arrhenian. Several important parameters such as activation energy, ionic hopping frequency and its rate, carrier concentration term, mobile ion number density, ionic mobility, and diffusion coefficient have been determined. The characteristics of log conductivity and log ionic hopping rate against temperature for the system suggest that the conduction and ionic hopping processes are thermally activated. The values of activation energy for conduction and relaxation processes as well as activation enthalpy for ionic hopping are about the same.
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spelling um.eprints-77022019-08-27T01:10:17Z http://eprints.um.edu.my/7702/ Conductivity and dielectric studies of Li2SnO3 Nor, A.F.M. Majid, Siti Rohana Teo, L.P. Buraidah, M.H. QC Physics Lithium stannate (Li2SnO3) has been prepared by solution evaporation method. The precursor obtained is sintered at 800A degrees C for 5, 6, and 7 h, respectively. X-ray diffractogram confirmed that the sample obtained after sintering is Li2SnO3. The pelletized Li2SnO3 after heating at 500 A degrees C for 3 h is used for electrochemical impedance spectroscopy characterization. Impedance measurements have been carried out over frequency range from 50 Hz to 1 MHz and temperature range from 563 to 633 K. The conductivity-temperature relationship is Arrhenian. Several important parameters such as activation energy, ionic hopping frequency and its rate, carrier concentration term, mobile ion number density, ionic mobility, and diffusion coefficient have been determined. The characteristics of log conductivity and log ionic hopping rate against temperature for the system suggest that the conduction and ionic hopping processes are thermally activated. The values of activation energy for conduction and relaxation processes as well as activation enthalpy for ionic hopping are about the same. Springer Verlag (Germany) 2012 Article PeerReviewed Nor, A.F.M. and Majid, Siti Rohana and Teo, L.P. and Buraidah, M.H. (2012) Conductivity and dielectric studies of Li2SnO3. Ionics, 18 (7). pp. 655-665. ISSN 0947-7047, DOI https://doi.org/10.1007/s11581-012-0667-2 <https://doi.org/10.1007/s11581-012-0667-2>. http://link.springer.com/content/pdf/10.1007%2Fs11581-012-0667-2 10.1007/s11581-012-0667-2
spellingShingle QC Physics
Nor, A.F.M.
Majid, Siti Rohana
Teo, L.P.
Buraidah, M.H.
Conductivity and dielectric studies of Li2SnO3
title Conductivity and dielectric studies of Li2SnO3
title_full Conductivity and dielectric studies of Li2SnO3
title_fullStr Conductivity and dielectric studies of Li2SnO3
title_full_unstemmed Conductivity and dielectric studies of Li2SnO3
title_short Conductivity and dielectric studies of Li2SnO3
title_sort conductivity and dielectric studies of li2sno3
topic QC Physics
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