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机械互锁的[C2]雏菊链主链,可实现先进的形状记忆聚合物材料。

Mechanically interlocked [c2]daisy chain backbone enabling advanced shape-memory polymeric materials.

作者信息

Zhou Shang-Wu, Zhou Danlei, Gu Ruirui, Ma Chang-Shun, Yu Chengyuan, Qu Da-Hui

机构信息

Key Laboratory for Advanced Materials and Joint International Research Laboratory of Precision Chemistry and Molecular Engineering, Feringa Nobel Prize Scientist Joint Research Center, Frontiers Science Center for Materiobiology and Dynamic Chemistry, Institute of Fine Chemicals, School of Chemistry and Molecular Engineering, East China University of Science and Technology, Shanghai, 200237, P. R. China.

出版信息

Nat Commun. 2024 Feb 24;15(1):1690. doi: 10.1038/s41467-024-45980-y.

Abstract

The incorporation of mechanically interlocked structures into polymer backbones has been shown to confer remarkable functionalities to materials. In this work, a [c2]daisy chain unit based on dibenzo-24-crown-8 is covalently embedded into the backbone of a polymer network, resulting in a synthetic material possessing remarkable shape-memory properties under thermal control. By decoupling the molecular structure into three control groups, we demonstrate the essential role of the [c2]daisy chain crosslinks in driving the shape memory function. The mechanically interlocked topology is found to be an essential element for the increase of glass transition temperature and consequent gain of shape memory function. The supramolecular host-guest interactions within the [c2]daisy chain topology not only ensure robust mechanical strength and good network stability of the polymer, but also impart the shape memory polymer with remarkable shape recovery properties and fatigue resistance ability. The incorporation of the [c2]daisy chain unit as a building block has the potential to lay the groundwork for the development of a wide range of shape-memory polymer materials.

摘要

已证明将机械互锁结构引入聚合物主链可赋予材料显著的功能。在这项工作中,基于二苯并 - 24 - 冠 - 8的[c2]雏菊链单元被共价嵌入聚合物网络的主链中,从而得到一种在热控制下具有显著形状记忆特性的合成材料。通过将分子结构解耦为三个控制组,我们证明了[c2]雏菊链交联在驱动形状记忆功能中的关键作用。发现机械互锁拓扑结构是提高玻璃化转变温度以及随之获得形状记忆功能的关键要素。[c2]雏菊链拓扑结构内的超分子主客体相互作用不仅确保了聚合物强大的机械强度和良好的网络稳定性,还赋予形状记忆聚合物显著的形状恢复性能和抗疲劳能力。将[c2]雏菊链单元作为构建模块的引入有可能为广泛的形状记忆聚合物材料的开发奠定基础。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/428d/10894290/a3eef31e3b63/41467_2024_45980_Fig1_HTML.jpg

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