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扩展卟啉类化合物的拆分:通往持久手性和诱人手性光学性质的途径。

Resolution of Expanded Porphyrinoids: A Path to Persistent Chirality and Appealing Chiroptical Properties.

作者信息

Han Puren, Han Mutian, Sessler Jonathan L, Lei Chuanhu

机构信息

Department of Physics, College of Sciences, Shanghai University, Shanghai, 200444, P. R. China.

Center for Supramolecular Chemistry and Catalysis Department of Chemistry, College of Science, Shanghai University, Shanghai, 200444, P. R. China.

出版信息

Chemistry. 2023 Dec 22;29(72):e202303058. doi: 10.1002/chem.202303058. Epub 2023 Nov 5.

Abstract

Chirality is a fundamental characteristic of nature. Expanded porphyrinoids and their analogues offer an attractive platform for delving into the intricacies of chirality. Expanded porphyrinoids comprise pyrrolic macrocycles and related heterocyclic systems. As a class, expanded porphyrinoids are widely recognized for their flexible structural features, nontrivial coordination capabilities, and intriguing optical and electronic properties. With limited exceptions, their inherent conformational flexibility coupled with a low racemization barrier allows for the facile interchange between enantiomers. As a result, achieving the effective chiral resolution of individual enantiomers and the subsequent exploration of their chiroptical properties represents a significant challenge. This review summarizes strategies used to realize the chiral resolution of expanded porphyrinoids and the understanding of intrinsic chiroptical properties that has emerged from these separation efforts. It is our hope that this review will serve not only to codify our current understanding of chiral expanded porphyrinoids, but also inspire advances in the generalized area of chiral functional materials.

摘要

手性是自然界的一个基本特征。扩展卟啉类化合物及其类似物为深入研究手性的复杂性提供了一个有吸引力的平台。扩展卟啉类化合物由吡咯大环和相关杂环体系组成。作为一类化合物,扩展卟啉类化合物因其灵活的结构特征、非凡的配位能力以及引人入胜的光学和电子性质而被广泛认可。除了有限的例外情况,它们固有的构象灵活性以及较低的外消旋化势垒使得对映体之间能够轻松互换。因此,实现单个对映体的有效手性拆分以及随后对其手性光学性质的探索是一项重大挑战。本综述总结了用于实现扩展卟啉类化合物手性拆分的策略以及从这些分离工作中得出的对固有手性光学性质的理解。我们希望本综述不仅能整理我们目前对手性扩展卟啉类化合物的理解,还能激发手性功能材料广义领域的进展。

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