College of Chemistry and Chemical Engineering, Xi'an Shiyou University, Dianzi 2nd Road Dongduan#18, Xi'an, Shaanxi 710065, China.
Key Laboratory of Material Chemistry for Energy Conversion and Storage, Ministry of Education, Hubei Key Laboratory of Material Chemistry and Service Failure, School of Chemistry and Chemical Engineering, Huazhong University of Science and Technology, Wuhan 430074, China.
Chem Soc Rev. 2021 Sep 20;50(18):10025-10043. doi: 10.1039/d1cs00187f.
Water compatible supramolecular polymers (WCSPs) combine aqueous compatibility with the reversibility and environmental responsiveness of supramolecular polymers. WCSPs have seen application across a number of fields, including stimuli-responsive materials, healable materials, and drug delivery, and are attracting increasing attention from the design, synthesis, and materials perspectives. In this review, we summarize the chemistry of WCSPs from 2016 to mid-2021. For the sake of discussion, we divide WCSPs into five categories based on the core supramolecular approaches at play, namely hydrogen-bonding arrays, electrostatic interactions, large π-conjugated subunits, host-guest interactions, and peptide-based systems, respectively. We discuss both synthesis and polymer structure, as well as the underlying design expectations. The goal of this overview is to deepen our understanding of the strategies that have been exploited to prepare WCSPs, as well as their properties and uses. Thus, a section devoted to potential applications is included in this review.
水相容超分子聚合物(WCSPs)将水溶性与超分子聚合物的可逆性和环境响应性结合在一起。WCSPs 在许多领域都有应用,包括刺激响应材料、可修复材料和药物输送,并且从设计、合成和材料的角度来看,越来越受到关注。在这篇综述中,我们总结了 2016 年至 2021 年年中的 WCSP 化学。为了便于讨论,我们根据核心超分子方法将 WCSPs 分为五类,分别是氢键阵列、静电相互作用、大π共轭亚基、主客体相互作用和基于肽的系统。我们讨论了合成和聚合物结构,以及潜在的设计预期。本综述的目的是加深我们对制备 WCSPs 所采用的策略以及它们的性质和用途的理解。因此,本综述中包含了一个专门讨论潜在应用的部分。