Dynamics of ring-containing polymers: Macromolecular rotaxanes, polyrotaxanes and slide-ring networks

IF 26 1区 化学 Q1 POLYMER SCIENCE
Sina Ghiassinejad , Mostafa Ahmadi , Evelyne van Ruymbeke , Charles-André Fustin
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Abstract

A mechanical bond serves as a distinctive approach for harnessing the most beneficial features of both covalent and supramolecular chemistries, offering stability and structural adaptability owing to its unique dynamic nature. Molecules formed by mechanical bonding, known as mechanically interlocked molecules (MIMs) including catenanes, rotaxanes, and knots have opened new possibilities. Notably, the introduction of mechanically interlocked structures into polymers has led to the emergence of novel polymeric materials referred to as mechanically interlocked polymers (MIPs), such as polyrotaxanes and polycatenanes. The interlocked nature of these architectures can lead to particular conformational freedom and high mobility of their components, resulting in exceptional properties, such as ultra-stretchability, toughness, and immediate recoverability. These properties have found potential applications in diverse fields, including the development of tough hydrogels, scratch-resistant coatings, smart actuators, and batteries. Recent years have witnessed a surge in the synthesis and investigation of a diverse array of rotaxane-based MIPs, an essential class that has enabled researchers to begin grasping the impact of incorporating mechanical bonds within polymer structures, and of their mobility, on material properties. In this review, an overview of the dynamics of ring-containing polymers is presented. The review encompasses macromolecular rotaxanes, polyrotaxanes, and slide-ring networks, including the role of ring mobility in shaping the dynamics and properties of rotaxane polymers.

Abstract Image

含环聚合物的动力学:大分子轮烷、聚轮烷和滑环网络
机械键是利用共价化学和超分子化学最有利特征的独特方法,由于其独特的动态性质,可提供稳定性和结构适应性。通过机械键形成的分子被称为机械互锁分子(MIMs),其中包括卡替烷烃、轮烷和结,为我们带来了新的可能性。值得注意的是,在聚合物中引入机械互锁结构后,出现了被称为机械互锁聚合物(MIPs)的新型聚合物材料,如聚罗他烷和聚卡他烯烷。这些结构的互锁性质可使其成分具有特殊的构象自由度和高流动性,从而产生超强的拉伸性、韧性和即时恢复性等优异特性。这些特性有望应用于各个领域,包括开发坚韧的水凝胶、抗划伤涂层、智能致动器和电池。近年来,基于轮烷的各种 MIPs 的合成和研究突飞猛进,这一重要类别使研究人员开始掌握在聚合物结构中加入机械键及其流动性对材料性能的影响。本综述概述了含环聚合物的动力学。综述涵盖了大分子轮烷、聚轮烷和滑环网络,包括环流动性在塑造轮烷聚合物动态和特性方面的作用。
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来源期刊
Progress in Polymer Science
Progress in Polymer Science 化学-高分子科学
CiteScore
48.70
自引率
1.10%
发文量
54
审稿时长
38 days
期刊介绍: Progress in Polymer Science is a journal that publishes state-of-the-art overview articles in the field of polymer science and engineering. These articles are written by internationally recognized authorities in the discipline, making it a valuable resource for staying up-to-date with the latest developments in this rapidly growing field. The journal serves as a link between original articles, innovations published in patents, and the most current knowledge of technology. It covers a wide range of topics within the traditional fields of polymer science, including chemistry, physics, and engineering involving polymers. Additionally, it explores interdisciplinary developing fields such as functional and specialty polymers, biomaterials, polymers in drug delivery, polymers in electronic applications, composites, conducting polymers, liquid crystalline materials, and the interphases between polymers and ceramics. The journal also highlights new fabrication techniques that are making significant contributions to the field. The subject areas covered by Progress in Polymer Science include biomaterials, materials chemistry, organic chemistry, polymers and plastics, surfaces, coatings and films, and nanotechnology. The journal is indexed and abstracted in various databases, including Materials Science Citation Index, Chemical Abstracts, Engineering Index, Current Contents, FIZ Karlsruhe, Scopus, and INSPEC.
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