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Feasibility of Predicting Static Dielectric Constants of Polymer Materials: A Density Functional Theory Method

机译:预测聚合物材料静电介电常数的可行性:密度函数理论方法

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摘要

The rapid development of electronic devices with high integration levels, a light weight, and a multifunctional performance has fostered the design of novel polymer materials with low dielectric constants, which is crucial for the electronic packaging and encapsulation of these electronic components. Theoretical studies are more efficient and cost-effective for screening potential polymer materials with low dielectric constants than experimental investigations. In this study, we used a molecular density functional theory (DFT) approach combined with the B3LYP functional at the 6-31+G(d, p) basis set to validate the feasibility of predicting static dielectric constants of the polymer materials. First, we assessed the influence of the basis sets on the polarizability. Furthermore, the changes of polarizability, polarizability per monomer unit, and differences in polarizability between the consecutive polymer chains as a function of the number of monomers were summarized and discussed. We outlined a similar behavior for the volume of the polymers as well. Finally, we simulated dielectric constants of three typical polymer materials, polyethylene (PE), polytetrafluoroethylene (PTFE), and polystyrene (PS), by combining with the Clausius–Mossotti equation. The simulated results showed excellent agreement with experimental data from the literature, suggesting that this theoretical DFT method has great potential for the molecular design and development of novel polymer materials with low dielectric constants.
机译:具有高集成水平的电子设备的快速发展,重量轻,多功能性能,促进了具有低介电常数的新型聚合物材料的设计,这对于这些电子元件的电子包装和封装至关重要。理论研究对于筛选具有低介电常数的潜在聚合物材料比实验研究更高且具有成本效益。在这项研究中,我们使用了分子密度官能理论(DFT)方法与6-31 + G(D,P)的B3LYP功能结合,以验证预测聚合物材料的静态介电常数的可行性。首先,我们评估了基础集对极化性的影响。此外,总结并讨论了作为单体数量作为单体数量的连续聚合物链之间的极化性,极化性的变化和连续聚合物链之间的极化性的差异。我们概述了聚合物的体积的类似行为。最后,通过与Clausius-mossotti方程组合,我们模拟了三种典型的聚合物材料,聚乙烯(PE),聚四氟乙烯(PTFE)和聚苯乙烯(PS)的介电常数。模拟结果表明,与文献的实验数据表明,这一理论DFT方法具有巨大的分子设计和具有低介电常数的新型聚合物材料的潜力。

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