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链构象和纳米结构对聚合物介电性能的影响

The Effects of Chain Conformation and Nanostructure on the Dielectric Properties of Polymers.

作者信息

Mogbojuri Gabriel, Abtahi Shaghayegh, Hendeniya Nayanathara, Chang Boyce

机构信息

Department of Materials Science and Engineering, Iowa State University, Ames, IA 50011, USA.

出版信息

Materials (Basel). 2025 Jan 5;18(1):198. doi: 10.3390/ma18010198.

Abstract

The dielectric properties of polymers play a pivotal role in the development of advanced materials for energy storage, electronics, and insulation. This review comprehensively explores the critical relationship between polymer chain conformation, nanostructure, and dielectric properties, focusing on parameters such as dielectric constant, dielectric loss, and dielectric breakdown strength. It highlights how factors like chain rigidity, free volume, molecular alignment, and interfacial effects significantly influence dielectric performance. Special emphasis is placed on the impact of nanofillers, molecular weight, crystallinity, and multilayer structures in optimizing these properties. By synthesizing findings from recent experimental and theoretical studies, this review identifies strategies to enhance energy efficiency, reliability, and mechanical stability of polymer-based dielectrics. We also delve into techniques such as electrostatic force microscopy (EFM) and focused ion beam (FIB) milling for characterizing breakdown mechanisms, offering insights into molecular design for next-generation high-performance polymers. Despite considerable progress, critical challenges such as achieving an optimal balance between dielectric permittivity and breakdown strength, understanding nanoscale interfacial phenomena, and scaling these materials for industrial applications persist. These gaps can be addressed by systematic structure-property relations, advanced processing techniques, and environmental studies.

摘要

聚合物的介电性能在用于能量存储、电子学和绝缘的先进材料的开发中起着关键作用。本综述全面探讨了聚合物链构象、纳米结构和介电性能之间的关键关系,重点关注介电常数、介电损耗和介电击穿强度等参数。它强调了链刚性、自由体积、分子排列和界面效应等因素如何显著影响介电性能。特别强调了纳米填料、分子量、结晶度和多层结构在优化这些性能方面的影响。通过综合近期实验和理论研究的结果,本综述确定了提高基于聚合物的电介质的能量效率、可靠性和机械稳定性的策略。我们还深入研究了诸如静电力显微镜(EFM)和聚焦离子束(FIB)铣削等用于表征击穿机制的技术,为下一代高性能聚合物的分子设计提供了见解。尽管取得了相当大的进展,但在实现介电常数和击穿强度之间的最佳平衡、理解纳米级界面现象以及将这些材料扩大到工业应用等关键挑战仍然存在。这些差距可以通过系统的结构-性能关系、先进的加工技术和环境研究来解决。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/859d/11721823/c3393f6d0abc/materials-18-00198-g001.jpg

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