Electrorheological Properties of α-Bi2O3 and Bi2O2CO3
- 作者: Gerasimova T.V.1, Golodukhina S.V.2,3, Agafonov A.V.1, Egorysheva A.V.2, Kraev A.S.1, Gaitko O.M.2
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隶属关系:
- Krestov Institute of Solution Chemistry, Russian Academy of Sciences
- Kurnakov Institute of General and Inorganic Chemistry, Russian Academy of Sciences
- Faculty of Chemistry, Moscow State University
- 期: 卷 55, 编号 4 (2019)
- 页面: 344-354
- 栏目: Article
- URL: https://journals.rcsi.science/0020-1685/article/view/158671
- DOI: https://doi.org/10.1134/S0020168519030075
- ID: 158671
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Abstract—We have synthesized needle- and platelike α-Bi2O3 and Bi2O2CO3 nanoparticles. The bulk density of the α-Bi2O3 and Bi2O2CO3 powders is 8.5 and 6.9 g/cm3. The dielectric permittivity of α-Bi2O3 and Bi2O2CO3 has been calculated using dielectric permittivity and dielectric loss tangent dispersion measurements in the frequency range from 2.5 × 101 to 1 × 106 Hz for 40% suspensions (0.05 and 0.08 volume fractions of α-Bi2O3 and Bi2O2CO3, respectively) in PMS-300 polydimethylsiloxane. The value of ε∞ has been found to be 5.4 for α-Bi2O3 and 4.9 for Bi2O2CO3. Dielectric spectra of the suspensions have been shown to exhibit no relaxation behavior in the frequency range studied. We have compared the effects of the shape and dielectric permittivity of the particles on the magnitude of the electrorheological effect in them. Using a simple polarization model, we have analyzed the effect of the dielectric characteristics of the filler material on the yield stress τ0 of the suspensions in electric fields from 0 to 4 kV/mm. Using a combination of rheometric and direct microscopic observations, we have explained the effect of the type of filler on the electrorheological effect: the Bi2O2CO3-based ERFs have higher shear and compressive yield stresses, whereas the α-Bi2O3-based ERFs have a higher tensile yield stress.
作者简介
T. Gerasimova
Krestov Institute of Solution Chemistry, Russian Academy of Sciences
Email: anna_egorysheva@rambler.ru
俄罗斯联邦, Akademicheskaya ul. 1, Ivanovo, 153045
S. Golodukhina
Kurnakov Institute of General and Inorganic Chemistry, Russian Academy of Sciences; Faculty of Chemistry, Moscow State University
Email: anna_egorysheva@rambler.ru
俄罗斯联邦, Leninskii pr. 31, Moscow, 119991; Moscow, 119991
A. Agafonov
Krestov Institute of Solution Chemistry, Russian Academy of Sciences
Email: anna_egorysheva@rambler.ru
俄罗斯联邦, Akademicheskaya ul. 1, Ivanovo, 153045
A. Egorysheva
Kurnakov Institute of General and Inorganic Chemistry, Russian Academy of Sciences
编辑信件的主要联系方式.
Email: anna_egorysheva@rambler.ru
俄罗斯联邦, Leninskii pr. 31, Moscow, 119991
A. Kraev
Krestov Institute of Solution Chemistry, Russian Academy of Sciences
Email: anna_egorysheva@rambler.ru
俄罗斯联邦, Akademicheskaya ul. 1, Ivanovo, 153045
O. Gaitko
Kurnakov Institute of General and Inorganic Chemistry, Russian Academy of Sciences
Email: anna_egorysheva@rambler.ru
俄罗斯联邦, Leninskii pr. 31, Moscow, 119991
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