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芴基大环化合物和有机纳米网格的共价纳米合成

Covalent nanosynthesis of fluorene-based macrocycles and organic nanogrids.

作者信息

Wei Ying, Yan Yongxia, Li Xiaoyan, Xie Linghai, Huang Wei

机构信息

Centre for Molecular Systems and Organic Devices (CMSOD), State Key Laboratory of Organic Electronics and Information Displays & Institute of Advanced Materials (IAM), Nanjing University of Posts & Telecommunications, 9 Wenyuan Road, Nanjing 210023, China.

Frontiers Science Center for Flexible Electronics (FSCFE), MIIT Key Laboratory of Flexible Electronics (KLoFE), Northwestern Polytechnical University, Xi'an 710072, China.

出版信息

Org Biomol Chem. 2021 Dec 22;20(1):73-97. doi: 10.1039/d1ob01558c.

Abstract

Gridization is an alternative way to create macromolecules of various sizes in addition to linear and dendritic polymerization as well as cyclization. Organic nanogrids are an expanding family of macrocycle-like closed structures at the nanoscale, but with a series of well-defined extension edges and vertices. Cyclic nanogrids can be used as nanoscale building blocks for the fabrication of not only rotaxanes, catenanes, knots, 3D cages, but also nanopolymers, covalent organic frameworks (COFs), metal-organic frameworks (MOFs), and complex molecular cross-scale architectures. In this review, the history of fluorene-based macrocycles has first been explored, followed by the development of the synthetic methodologies; in particular, fluorene-based nanogrids are highlighted owing to their features and applications. Typically, fluorenes are fused arenes with a hybrid entity between tetrahedral Csp and Csp. Four ingenious connection modes of fluorene-based macrocycles, including 2,7-, 3,6-, 9,9-, and 2,9-linkages, fully demonstrate the geometric possibilities of the macrocycles and nanogrids. Such fluorene-based nanogrids will give birth to organic intelligence.

摘要

除了线性聚合、树枝状聚合以及环化反应之外,网格化是另一种制备各种尺寸大分子的方法。有机纳米网格是纳米尺度上一类不断扩展的大环状封闭结构家族,但具有一系列定义明确的延伸边缘和顶点。环状纳米网格不仅可以用作制备轮烷、索烃、纽结、三维笼状结构的纳米级构建单元,还可以用于制备纳米聚合物、共价有机框架(COF)、金属有机框架(MOF)以及复杂的分子跨尺度结构。在这篇综述中,首先探讨了芴基大环化合物的发展历程,接着介绍了合成方法的进展;特别是芴基纳米网格因其特性和应用而受到关注。通常,芴是由四面体Csp和Csp之间的杂化实体构成的稠合芳烃。芴基大环化合物的四种巧妙连接方式,包括2,7-、3,6-、9,9-和2,9-连接,充分展示了大环化合物和纳米网格的几何可能性。这种芴基纳米网格将催生有机智能。

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