绿色微晶纤维素增强生物复合基乙烯树脂乳液的电学和介电性能

IF 1.5 4区 物理与天体物理 Q2 PHYSICS, MULTIDISCIPLINARY Brazilian Journal of Physics Pub Date : 2024-12-28 DOI:10.1007/s13538-024-01688-4
Z. El Ansary, L. Kreit, F. Ztak, A. Triki, L. C. Costa, M. El Hasnaoui
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引用次数: 0

摘要

在这项工作中,我们研究了绿色微晶纤维素微颗粒增强的新型生物复合基乙烯基树脂乳液的电学和介电性能。在260-340 K的温度范围和100 Hz-1 MHz的频率范围内,我们通过评估交流电导率来测量每个样品的电响应。琼舍尔幂定律很好地描述了电导率色散。因此,相关的电导率机制是由于相关的跳垒传导机制。采用电模量形式化计算了材料的介电性能,并根据Havriliak-Negami模型进行了分析。对于纯乙烯基树脂乳液,所观察到的松弛过程归因于α-松弛。当填充剂加入到乙烯基树脂乳液中时,在玻璃化转变温度以下的温度下发现了水偶极极化,在玻璃化转变点以上的温度下发现了α-弛豫和界面极化的叠加,称为Maxwell-Wagner-Sillars。它们的活化能是根据阿伦尼乌斯定律确定的。电介质分析可以探测增强剂/基体的粘附性,从而控制复合材料的导电性能。
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Electrical and Dielectric Properties of Biocomposite-based Vinyl Resin Emulsion Reinforced with Green Microcrystalline Cellulose

In this work, we investigated the electrical and dielectric properties of a new biocomposite-based vinyl resin emulsion reinforced with microparticles of green microcrystalline cellulose. We measured the electrical response of each sample by assessing AC electrical conductivity in the temperature range of 260–340 K and in the frequency range of 100 Hz–1 MHz. The electrical conductivity dispersion is well described by Jonscher’s power law. Accordingly, the associated mechanism conductivity is due to the correlated barrier-hopping conduction mechanism. Dielectric properties were performed using the electric modulus formalism and analyzed according to the Havriliak-Negami model. For the neat vinyl resin emulsion, the observed relaxation process is attributed to the α-relaxation. When the fillers are added to the vinyl resin emulsion, a water dipolar polarization is identified for temperatures below the glass transition temperature and a superposition of α-relaxation and an interfacial polarization, known as Maxwell–Wagner-Sillars, for temperatures above the glass transition point. The activation energies of these are determined according to the Arrhenius law. Dielectric analysis allowed for probing the reinforcement/matrix adhesion, which can control the electrical conductivity performance of the composite materials.

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来源期刊
Brazilian Journal of Physics
Brazilian Journal of Physics 物理-物理:综合
CiteScore
2.50
自引率
6.20%
发文量
189
审稿时长
6.0 months
期刊介绍: The Brazilian Journal of Physics is a peer-reviewed international journal published by the Brazilian Physical Society (SBF). The journal publishes new and original research results from all areas of physics, obtained in Brazil and from anywhere else in the world. Contents include theoretical, practical and experimental papers as well as high-quality review papers. Submissions should follow the generally accepted structure for journal articles with basic elements: title, abstract, introduction, results, conclusions, and references.
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