School of Materials Science and Engineering Key Laboratory of Polymer Chemistry and Physics of Ministry of Education Peking University Beijing 100871 China.
Institute of Advanced Materials School of Chemistry and Chemical Engineering Southeast University Nanjing Jiangsu Province 211189 China.
Adv Sci (Weinh). 2021 Mar 1;8(8):2002132. doi: 10.1002/advs.202002132. eCollection 2021 Apr.
Self-assembly, as a typical bottom-up strategy for the fabrication of functional materials, has been applied to fabricate chiral materials with subtle chiral nanostructures. The chiral nanostructures exhibit great potential in asymmetric catalysis, chiral sensing, chiral electronics, photonics, and even the realization of several biological functions. According to existing studies, the supramolecular chirality transfer process combined with hierarchical self-assembly plays a vital role in the fabrication of multiscale chiral structures. This progress report focuses on the hierarchical self-assembly of chiral or achiral molecules that aggregate with asymmetric spatial structures such as twisted bands, helices, and superhelices in different environments. Herein, recent studies on the chirality transfer induced self-assembly based on a variety of supramolecular interactions are summarized. In addition, the influence of different environments and the states of systems including solutions, condensed states, gel systems, interfaces on the asymmetric hierarchical self-assembly, and the expression of chirality are explored. Moreover, both the driving forces that facilitate chiral bias and the supramolecular interactions that play an important role in the expression, transfer, and amplification of the chiral sense are correspondingly discussed.
自组装作为一种典型的自下而上的策略,已被应用于制造具有精细手性纳米结构的功能材料。手性纳米结构在手性催化、手性传感、手性电子学、光子学,甚至在实现几种生物功能方面都有很大的潜力。根据现有研究,超分子手性转移过程与分级自组装相结合,在手性结构的制造中起着至关重要的作用。本进展报告重点介绍了在不同环境下,手性或非手性分子与扭曲带、螺旋和超螺旋等具有不对称空间结构的分子的聚集的分级自组装。本文总结了基于多种超分子相互作用的手性诱导自组装的最新研究进展。此外,还探讨了不同环境以及溶液、凝聚态、凝胶体系、界面等系统状态对不对称分级自组装和手性表达的影响。此外,还相应地讨论了有利于手性偏析的驱动力以及在手性表达、传递和放大中起重要作用的超分子相互作用。