Prediction of Electrophysical Properties of Organic-Inorganic Composite Materials

被引:0
|
作者
Gorobinskii L.V. [1 ]
Lysov N.Y. [1 ]
Panin A.L. [1 ]
Panov A.A. [1 ]
Polyudchenkov A.V. [1 ]
Kravchenko M.A. [1 ]
Zhun’ V.I. [1 ]
机构
[1] All-Russian Electrotechnical Institute, Branch of Federal State Unitary Enterprise “Russian Federal Nuclear Center—All-Russian Research Institute of Technical Physics Named after Academician E.I. Zababakhin”, Moscow
关键词
composite dielectric; dielectric constant; electric-field lines; filler; Lichtenecker formula; matrix; Odelevsky formula; optical axis of the crystal;
D O I
10.1134/S199542122304010X
中图分类号
学科分类号
摘要
Abstract: The results of the study of the applicability of various methods for calculating the values of the “generalized conductivity” of heterogeneous systems for predicting the dielectric constant of composite materials based on a polymer matrix and a filler are presented. To predict the dielectric constant of a material with a disordered filler arrangement, it is recommended to use the formula logε = (Formula presented.), where n is the number of components, ε i is the dielectric constant of the ith component, and Θ i is the relative volume concentration of inclusions in the mixture. Consideration of the calculation results showed that, for composites with titanium dioxide as a filler, the calculated value of ε closest to the observed one is obtained when using the dielectric constant of titanium dioxide perpendicular to the optical axis (with the layers oriented perpendicular to the electric-field lines) (ε = 89). For composites with fibrous fillers, the calculated results can be interpreted as evidence that fibrous fillers in the composite are located mainly perpendicular to the direction of the applied electric field during the measurement. © 2023, Pleiades Publishing, Ltd.
引用
收藏
页码:1023 / 1027
页数:4
相关论文
共 50 条
  • [21] Preparation and properties of the organic-inorganic composite coating on aluminum alloy
    Li, Guo-jun
    Cui, Xue-jun
    Ren, Rui-ming
    ADVANCED MATERIAL SCIENCE AND TECHNOLOGY, PTS 1 AND 2, 2011, 675-677 : 1197 - +
  • [22] SYNTHESIS OF ORGANIC-INORGANIC COMPOSITE MATERIALS BY SOL-GEL METHOD
    Aghahuseynova, Minira M.
    PROCESSES OF PETROCHEMISTRY AND OIL REFINING, 2024, : 213 - 218
  • [23] CNT-based organic-inorganic composite materials with optoelectronic functionality
    Chen, Hong-Zheng
    Bai, Ru
    Cao, Lei
    Xu, Hua-Bing
    Xu, Wen-Jun
    Wang, Mang
    RESEARCH ON CHEMICAL INTERMEDIATES, 2008, 34 (2-3) : 115 - 125
  • [24] Nanostructured Organic-Inorganic Composite Materials by Twin Polymerization of Hybrid Monomers
    Spange, Stefan
    Grund, Silke
    ADVANCED MATERIALS, 2009, 21 (20) : 2111 - 2116
  • [25] CNT-based organic-inorganic composite materials with optoelectronic functionality
    Hong-Zheng Chen
    Ru Bai
    Lei Cao
    Hua-Bing Xu
    Wen-Jun Xu
    Mang Wang
    Research on Chemical Intermediates, 2008, 34 : 115 - 125
  • [26] SYNTHESIS OF ORGANIC-INORGANIC COMPOSITE MATERIALS BY SOL-GEL METHOD
    Aghahuseynova, Minira M.
    PROCESSES OF PETROCHEMISTRY AND OIL REFINING, 2024, (01): : 213 - 218
  • [27] Novel organic-inorganic chemical hybrid fillers for dental composite materials
    Wei, Y
    Jin, DL
    Wei, G
    Yang, DC
    Xu, JG
    JOURNAL OF APPLIED POLYMER SCIENCE, 1998, 70 (09) : 1689 - 1699
  • [28] Molecular Design of Hybrid Organic-Inorganic Materials with Electronic Properties
    Sanchez, C.
    Alonso, B.
    Chapusot, F.
    Ribot, F.
    Audebert, P.
    JOURNAL OF SOL-GEL SCIENCE AND TECHNOLOGY, 1994, 2 (1-3) : 161 - 166
  • [29] Synthesis, structure, and properties of organic-inorganic perovskites and related materials
    Mitzi, DB
    PROGRESS IN INORGANIC CHEMISTRY, VOL 48, 1999, 48 : 1 - 121
  • [30] Optical properties of lanthanide doped hybrid organic-inorganic materials
    Cordoncillo, E
    Escribano, P
    Guaita, FJ
    Philippe, C
    Viana, B
    Sanchez, C
    JOURNAL OF SOL-GEL SCIENCE AND TECHNOLOGY, 2002, 24 (02) : 155 - 165