Temperature dependences of permittivity and conductivity of sodium-lithium niobate ceramics
- Autores: Malysheva N.E.1, Malyshkina О.V.2
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Afiliações:
- Zhukov Military Academy of Aerospace Defence
- Tver State University
- Edição: Volume 87, Nº 9 (2023)
- Páginas: 1332-1336
- Seção: Articles
- URL: https://edgccjournal.org/0367-6765/article/view/654618
- DOI: https://doi.org/10.31857/S0367676523702344
- EDN: https://elibrary.ru/OIWMGG
- ID: 654618
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Resumo
As a result of comparative studies of the electric and dielectric properties of sodium-lithium niobate ceramics with a percentage of Li equal to 10 and 40 mass %, it was found that both materials have a hopping conduction mechanism. At frequencies from 500 Hz to 100 kHz, thermal ionic polarization predominates. In the low-frequency region, migratory polarization predominates. The revealed difference in the temperature behavior of the complex conductivity of the studied samples made it possible to explain the presence of ferroelectric properties in the sample with 10% Li and their absence in the sample with 40% Li.
Sobre autores
N. Malysheva
Zhukov Military Academy of Aerospace Defence
Email: Olga.Malyshkina@mail.ru
Russia, 170100, Tver
О. Malyshkina
Tver State University
Autor responsável pela correspondência
Email: Olga.Malyshkina@mail.ru
Russia, 170100, Tver
Bibliografia
- Malic B., Bencan A., Rojac T., Kosec M. // Acta Chim. Slov. 2008. V. 55. No. 4. P. 719.
- Иваненко В.И., Локшин Э.П., Громов О.Г., Калинников В.Т. Синтез сегнетоэлектрических и люминесцентных сложных оксидов редких элементов. Апатиты: Изд-во Кольского научного центра РАН, 2009. 153 с.
- Rodel J., Webber K.G., Dittmer R. et al. // J. Eur. Ceram. Soc. 2015. V. 35. P. 1659.
- Резниченко Л.А., Вербенко И.А., Андрюшин К.П. // Фазов. переходы, упоряд. состояния и нов. материалы. 2013. № 11. С. 30.
- Zhang Sh., Xia R., Shrout Th. R. // J. Electroceram. 2007. V. 19. P. 251.
- Yang Z., Du H., Jin L. et al. // J. Eur. Ceram. Soc. 2019. V. 39. No. 9. P. 2899.
- Dixon C. A. L., McNulty J. A., Huband S., Thomas P. A., Lightfoot P. // IUCrJ. 2017. V. 4. No. 3. P. 215.
- Малышкина О.В., Тесникова Е.С., Малышева Н.Е., Иванова А.И. // Физ.-хим. асп. изуч. класт. нанострукт. и наноматер. 2019. Т. 11. С. 198.
- Поплавко Ю.М. Физика диэлектриков. Киев: Вища школа, 1980. 400 с.
- Dixon C.A.L. // Phys. Rev. 2018. V. 97. Art. No. 224105.
- Kremer F., Schönhals A. Broadband dielectric spectroscopy. Berlin: Springer, 2003.
- Ормонт M.A. // Вестн. Моск. ун-та. Сер. 3. Физ. Астрон. 2011. № 2. С. 57.
- Jonscher A.K. Dielectric relaxation in solids. London: Chelsea Dielectrics Press, 1983. 400 p.
- Jonscher A.K. // J. Chem. Soc. Faraday Trans. II. 1986. V. 82. P. 75.
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