Scientific Instrument Center, Shanxi University, Taiyuan 030006, P. R. China.
Ministry of Education Key Laboratory of Interface Science and Engineering in Advanced Materials, Taiyuan University of Technology, Taiyuan 030024, P. R. China.
Chem Rev. 2020 Jul 8;120(13):6070-6123. doi: 10.1021/acs.chemrev.9b00839. Epub 2020 May 19.
Covalent polymers connected by non-covalent interactions constitute a fascinating set of materials known as supramolecular polymer networks (SPNs). A key feature of SPNs is that the underlying covalent polymers endow the resulting self-assembled materials with features, such as structural and mechanical integrity, good processability, recyclability, stimuli-responsiveness, self-healing, and shape memory, that are not recapitulated in the case of classic covalent polymer systems. The unique nature of SPNs derives from the controlled marriage of traditional covalent polymers and macrocycle-based host-guest interactions. As a consequence, supramolecular polymeric networks have played important roles in a number of diverse fields, including polymer science, supramolecular chemistry, materials science, biomedical materials, and information storage technology. In this Review, we summarize advances made in the area of functional SPNs, with a focus on original literature reports appearing in the past five years. The treatment is organized according to the key macrocycle-based host-guest interactions used to produce various SPNs. The role of the underlying polymer backbones is also discussed.
由非共价相互作用连接的共价聚合物构成了一组引人入胜的材料,称为超分子聚合物网络(SPN)。SPN 的一个关键特征是,基础共价聚合物赋予所得自组装材料具有结构和机械完整性、良好的可加工性、可回收性、刺激响应性、自修复性和形状记忆性等特征,而这些特征在经典共价聚合物系统中无法重现。SPN 的独特性质源自传统共价聚合物和基于大环的主客体相互作用的受控结合。因此,超分子聚合物网络在许多不同领域都发挥了重要作用,包括聚合物科学、超分子化学、材料科学、生物医学材料和信息存储技术。在这篇综述中,我们总结了功能 SPN 领域的进展,重点介绍了过去五年中出现的原始文献报道。该处理是根据用于制备各种 SPN 的关键基于大环的主客体相互作用进行组织的。还讨论了基础聚合物骨架的作用。