RAS Chemistry & Material ScienceНеорганические материалы Inorganic Materials

  • ISSN (Print) 0002-337X
  • ISSN (Online) 3034-5588

Стабилизация полярного состояния KNO3 в композитах (KNO3)1–x / (CeO2)x

PII
10.31857/S0002337X24070118-1
DOI
10.31857/S0002337X24070118
Publication type
Article
Status
Published
Authors
Volume/ Edition
Volume 60 / Issue number 7
Pages
876-881
Abstract
Неорганические материалы, Стабилизация полярного состояния KNO3 в композитах (KNO3)1–x / (CeO2)x
Keywords
Date of publication
15.07.2024
Year of publication
2024
Number of purchasers
0
Views
24

References

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  2. 2. Стукова Е.В., Барышников С.В. Стабилизация сегнетоэлектрической фазы в композитах (KNO3)1–x – (BaTiO3)x // Перспективные материалы. 2011. № 2. С. 28–33.
  3. 3. Shimada S., Aoki T. Stabilization of the Ferroelectric γ-Phase of KNO3 by Doping with Na+, Determined by the Acoustic Emission Method // Chem. Lett. 1996. V. 25. № 5. P. 393–394. https://doi.org/10.1246/cl.1996.393
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  5. 5. Uvarov N.F., Hairetdinov E.F., Skobelev I.V. Composite Solid Electrolytes MeNO3-Al2O3 (Me = Li, Na, K) // Solid State Ionics. 1996. V. 86–88. P. 577–580. https://doi.org/10.1016/0167-2738 (96)00208-1
  6. 6. Uvarov N.F., Vaněk P. Stabilization of New Phases in Ion-Conducting Nanocomposites // J. Mater. Synth. Process. 2000. V. 8. P. 319–326. https://doi.org/10.1023/A:1011346528527
  7. 7. Milinskiy A.Yu., Baryshnikov S.V., Zeeva A.A. Dielectric Properties of Ferroelectric Composite (KNO3)(1–x)/(RbNO3)x // St. Petersburg State Polytechn. Univ. J. Phys. Math. 2023. V. 16. № 1.1. P. 38–42. https://doi.org/10.18721/JPM.161.106
  8. 8. Барышников С.В., Милинский А.Ю., Стукова Е.В., Зеева А.А. Стабилизация сегнетоэлектрической фазы нитрата калия в композите [KNO3]1–x/[Ba(NO3)2]x // Изв. вузов. Физика. 2023. Т. 66. № 12. С. 22–29. https://doi.org/10.17223/00213411/66/12/3
  9. 9. Барышников С.В., Милинский А.Ю. Стабилизация полярной фазы нитрата калия, внедренного в нанопористую матрицу титаната бария // Физика твердого тела. 2024. Т.66. № 5. С. 747–751. https://doi.org/10.61011/FTT.2024.05.58080.98
  10. 10. Chen A., Chernow F. Nature of Ferroelectricity in KNО3 // Phys. Rev. 1967. V. 154. № 2. P. 493–505. https://doi.org/10.1103/PhysRev.154.493.
  11. 11. Nimmo J.K., Lucas B.W. The Crystal Structures of γ- and β-KNO3 and the α←γ←β Phase Transformations // Acta Crystallogr., Sect. B. 1976. V. 32. № 7. P. 1968–1971. https://doi.org/10.1107/S0567740876006894
  12. 12. Deshpande V.V., Karkhanavala M.D., Rao U.R.K. Phase Transitions in Potassium Nitrate // J. Therm. Anal. Calorim. 1974. V. 6. P. 613–621. https://doi.org/10.1007/BF01911781
  13. 13. Balakrishnan G., Panda A.K., Raghavan C.M., Singh A., Prabhakar M.N, Mohandas E., Kuppusami P., Jung il Song. Microstructure, Optical and Dielectric Properties of Cerium Oxide Thin Films Prepared by Pulsed Laser Deposition // J. Mater. Sci. Mater. Electron. 2019. V. 30. P. 16548–16553. https://doi.org/10.1007/s10854-019-02031-3
  14. 14. Ikeda S., Kominami H., Koyama K., Wada Ya. Nonlinear Dielectric Constant and Ferroelectric-to-Paraelectric Phase Transition in Copolymers of Vinylidene Fluoride and Trifluoroethylene // J. Appl. Phys. 1987. V. 62. № 8. P. 3339–3342. https://doi.org/10.1063/1.339294
  15. 15. Miga S., Dec J., Kleemann W. Computer-controlled Susceptometer for Investigating the Linear and Nonlinear Dielectric Response // Rev. Sci. Instrum. 2007. V. 78. № 3. P. 033902. https://doi.org/10.1063/1.2712792
  16. 16. Alekseeva O.A., Naberezhnov A.A., Stukova E.V., Franz A., Baryshnikov S.V. Temperature Range Broadening of the Ferroelectric Phase in KNO3 Nanoparticles Embedded in the Pores of the Nanoporous Al2O3 Matrix // Ferroelectrics. 2021. V. 574. № 1. P. 8–15. https://doi.org/10.1080/00150193.2021.1888043
  17. 17. Milinskiy A.Yu., Baryshnikov S.V., Charnaya E.V., Chernechkin I.A., Uskova N.I. Coexistence of Ferroelectric and Paraelectric KNO3 Phases in Carbon Nanotubes // Ferroelectrics. 2023. V. 604. № 1. P. 14–21. https://doi.org/10.1080/00150193.2023.2168975
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