Dielectric Relaxation Spectroscopy in Synthetic Rubber Polymers: Nitrile Butadiene Rubber and Ethylene Propylene Diene Monomer

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WEB OF SCIENCE

8
Citations

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10

초록

The dielectric permittivity of synthetic rubber polymers, nitrile butadiene rubber (NBR) and ethylene propylene diene monomer (EPDM), with both frequency and temperature variations, was thoroughly investigated by dielectric relaxation spectroscopy (DRS). The spectrum versus frequency of DRS was analyzed with the semiempirical Havriliak-Negami formula and conductivity contribution by employing the newly developed "dispersion analyzer" analysis program. The main dielectric relaxations called the alpha- and beta-processes, associated with the cooperative motion of chains in polymers, were discovered in the low-temperature region. In the high-temperature region, we found Maxwell-Wagner-Sillars (MWS) relaxation associated with polymer interfacing and normal-mode (alpha') relaxation responsible for end-to-end dipole vector motion. The activation energies of schematic molecular chains responsible for the relaxation processes were obtained with the information about its motional mode. The glass transition temperature and dipole moment for the side group were also determined and compared with those from previous studies. In the EPDM specimen, the peaks of alpha- and beta-relaxation merged at high temperature and were separated with decreasing temperature. The first observations of both merging and splitting were consistent with the results on the temperature dependency of the relaxation strength. Both contour mapping and three-dimensional plots for the two rubbers provide visual information for the distribution and mapping of relaxation.

키워드

NORMAL-MODE RELAXATIONSEGMENTAL DYNAMICSMOLECULAR-DYNAMICSGLASS-TRANSITIONCONDUCTIVITYCOMPOSITES
제목
Dielectric Relaxation Spectroscopy in Synthetic Rubber Polymers: Nitrile Butadiene Rubber and Ethylene Propylene Diene Monomer
저자
Moon, Young IlJung, Jae KapChung, Ki Soo
DOI
10.1155/2020/8406059
발행일
2020-05
유형
Article
저널명
Advances in Materials Science and Engineering
2020