Mechanically Interlocked Polymers with Dense Mechanical Bonds

IF 16.4 1区 化学 Q1 CHEMISTRY, MULTIDISCIPLINARY Accounts of Chemical Research Pub Date : 2024-02-28 DOI:10.1021/acs.accounts.4c00006
Zhaoming Zhang, Jun Zhao and Xuzhou Yan*, 
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Abstract

Mechanically interlocked polymers (MIPs) such as polyrotaxanes and polycatenanes are polymer architectures that incorporate mechanical bonds, which represent a compelling frontier in polymer science. MIPs with cross-linked structures are known as mechanically interlocked networks (MINs) and are widely utilized in materials science. Leveraging the motion of mechanical bonds, MINs hold the potential for achieving a combination of robustness and dynamicity. Currently, the reported MINs predominantly consist of networks with discrete mechanical bonds as cross-linking points, exemplified by well-known slide-ring materials and rotaxane/catenane cross-linked polymers. The motion of these mechanically interlocked cross-linking points facilitates the redistribution of tension throughout the network, effectively preventing stress concentration and thereby enhancing material toughness. In these instances, the impact of mechanical bonds can be likened to the adage “small things can make a big difference”, whereby a limited number of mechanical bonds substantially elevate the mechanical performance of conventional polymers. In addition to MINs cross-linked by mechanical bonds, there is another type of MIN in which their principal parts are polymer chains composed of dense mechanical bonds. Within these MINs, mechanical bonds generally serve as repeating units, and their unique properties stem from integrating and amplifying the function of a large amount of mechanical bonds. Consequently, MINs with dense mechanical bonds tend to reflect the intrinsic properties of mechanical interlocked polymers, making their exploration critical for a comprehensive understanding of MIPs. Nevertheless, investigations into MINs featuring dense mechanical bonds remain relatively scarce.

This Account presents a comprehensive overview of our investigation and insights into MINs featuring dense mechanical bonds. First, we delve into the synthetic strategies employed to effectively prepare MINs with dense mechanical bonds, while critically evaluating their advantages and limitations. Through meticulous control of the core interlocking step, three distinct strategies have emerged: mechanical interlocking followed by polymerization, supramolecular polymerization followed by mechanical interlocking, and dynamic interlocking. Furthermore, we underscore the structure–property relationships of MINs with dense mechanical bonds. The macroscopic properties of MINs originate from integrating and amplifying countless microscopic motions of mechanical bonds, a phenomenon we define as an integration and amplification mechanism. Our investigation has revealed detailed motion characteristics of mechanical bonds in bulk mechanically interlocked materials, encompassing the quantification of motion activation energy, discrimination of varying motion distances, and elucidation of the recovery process. Additionally, we have elucidated their influence on the mechanical performance of the respective materials. Moreover, we have explored potential applications of MINs, leveraging their exceptional mechanical properties and dynamicity. These applications include enhancing the toughness of conventional polymers, engineering mechanically adaptive and multifunctional aerogels, and mitigating Li protrusion as interfacial layers in lithium-ion batteries. Finally, we offer our personal perspectives on the promises, opportunities, and key challenges in the future development of MINs with dense mechanical bonds, underscoring the potential for transformative advancements in this burgeoning field.

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具有致密机械键的机械互锁聚合物。
摘要机械互锁聚合物(MIPs),如聚罗他赛和聚卡他烯酮,是一种含有机械键的聚合物结构,代表了聚合物科学中一个引人注目的前沿领域。具有交联结构的 MIP 被称为机械互锁网络 (MIN),广泛应用于材料科学领域。利用机械键的运动,MINs 有可能实现稳健性和动态性的结合。目前,已报道的 MINs 主要由以离散机械键作为交联点的网络组成,例如著名的滑环材料和罗他烷/卡替萘交联聚合物。这些机械交联点的运动有助于整个网络中张力的重新分配,有效防止应力集中,从而提高材料的韧性。在这种情况下,机械键的影响就好比 "以小见大 "这句谚语,数量有限的机械键可大大提高传统聚合物的机械性能。除了通过机械键交联的 MIN 外,还有一种 MIN,其主要部分是由密集机械键组成的聚合物链。在这些 MIN 中,机械键通常作为重复单元,其独特性能源于整合和放大了大量机械键的功能。因此,具有致密机械键的 MINs 往往反映了机械交错聚合物的固有特性,因此对它们的研究对于全面了解 MIPs 至关重要。然而,对具有致密机械键的 MINs 的研究仍然相对较少。本篇开户绑定手机领体验金全面概述了我们对具有致密机械键的 MINs 的研究和见解。首先,我们深入探讨了有效制备具有致密机械键的 MINs 所采用的合成策略,同时批判性地评估了这些策略的优势和局限性。通过对核心互锁步骤的细致控制,我们发现了三种不同的策略:先机械互锁后聚合、先超分子聚合后机械互锁以及动态互锁。此外,我们还强调了具有致密机械键的 MINs 的结构-性能关系。MINs 的宏观特性源于对无数机械键微观运动的整合与放大,我们将这种现象定义为整合与放大机制。我们的研究揭示了块状机械互锁材料中机械键的详细运动特征,包括运动活化能的量化、不同运动距离的判别以及恢复过程的阐明。此外,我们还阐明了它们对相应材料机械性能的影响。此外,我们还利用 MINs 卓越的机械性能和动态性,探索了 MINs 的潜在应用领域。这些应用包括增强传统聚合物的韧性、设计具有机械适应性的多功能气凝胶,以及在锂离子电池中作为界面层减轻锂突起。最后,我们就具有致密机械键的 MINs 的未来发展前景、机遇和主要挑战提出了个人观点,强调了这一新兴领域取得变革性进展的潜力。
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来源期刊
Accounts of Chemical Research
Accounts of Chemical Research 化学-化学综合
CiteScore
31.40
自引率
1.10%
发文量
312
审稿时长
2 months
期刊介绍: Accounts of Chemical Research presents short, concise and critical articles offering easy-to-read overviews of basic research and applications in all areas of chemistry and biochemistry. These short reviews focus on research from the author’s own laboratory and are designed to teach the reader about a research project. In addition, Accounts of Chemical Research publishes commentaries that give an informed opinion on a current research problem. Special Issues online are devoted to a single topic of unusual activity and significance. Accounts of Chemical Research replaces the traditional article abstract with an article "Conspectus." These entries synopsize the research affording the reader a closer look at the content and significance of an article. Through this provision of a more detailed description of the article contents, the Conspectus enhances the article's discoverability by search engines and the exposure for the research.
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