Du Ruichun, Bao Tianwei, Kong Deshuo, Zhang Qiuhong, Jia Xudong
Key Laboratory of High Performance Polymer Material and Technology of MOE, Department of Polymer Science and Engineering, School of Chemistry and Chemical Engineering, Nanjing University, Nanjing, 210093, P. R. China.
State Key Laboratory of Coordination Chemistry, Nanjing University, Nanjing, 210093, P. R. China.
Chempluschem. 2024 Jul;89(7):e202300706. doi: 10.1002/cplu.202300706. Epub 2024 May 8.
The concept of polyrotaxane comes from the rotaxane structure in the supramolecular field. It is a mechanically interlocked supramolecular assembly composed of linear polymer chains and cyclic molecules. Over recent decades, the synthesis and application of polyrotaxanes have seen remarkable growth. Particularly, cyclodextrin-based polyrotaxanes have been extensively reported due to the low-price raw materials, good biocompatibility, and ease of modification. Hence, it is also one of the most promising mechanically interlocking supramolecules for wide industrialization in the future. Polyrotaxanes are widely introduced into materials such as elastomers, hydrogels, and engineering polymers to improve their mechanical properties or impart functionality to the materials. In these materials, polyrotaxane acts as a slidable cross-linker to dissipate energy through sliding or assist in dispersing stress concentration in the cross-linked network, thereby enhancing the toughness of the materials. Further, the unique sliding-ring effect of cyclodextrin-based polyrotaxanes has pioneered advancements in stretchable electronics and energy storage materials. This includes their innovative use in stretchable conductive composite and binders for anodes, addressing critical challenges in these fields. In this mini-review, our focus is to highlight the current progress and potential wider applications in the future, underlining their transformative impact across various domains of material science.
聚轮烷的概念源于超分子领域中的轮烷结构。它是一种由线性聚合物链和环状分子组成的机械互锁超分子组装体。在最近几十年里,聚轮烷的合成与应用取得了显著发展。特别是,基于环糊精的聚轮烷因其原材料价格低廉、生物相容性好以及易于改性而被广泛报道。因此,它也是未来最有希望实现广泛工业化的机械互锁超分子之一。聚轮烷被广泛引入到弹性体、水凝胶和工程聚合物等材料中,以改善其机械性能或赋予材料功能性。在这些材料中,聚轮烷充当可滑动的交联剂,通过滑动来耗散能量或协助分散交联网络中的应力集中,从而提高材料的韧性。此外,基于环糊精的聚轮烷独特的滑环效应在可拉伸电子学和储能材料方面开创了进展。这包括它们在可拉伸导电复合材料和阳极粘合剂中的创新应用,解决了这些领域中的关键挑战。在这篇综述中,我们的重点是突出当前的进展以及未来可能更广泛的应用,强调它们在材料科学各个领域的变革性影响。