Hierarchical assembly of tubular frameworks driven by covalent and coordinate bonding

0 CHEMISTRY, MULTIDISCIPLINARY
Hai-Sen Xu, Yi Luo, Runlai Li, Wen-Na Jiao, Si Huang, Wei-De Zhu, Hongfei Wang, Ting Chen, Mathias Nero, Fangzheng Chen, Qiang Gao, Xing Li, Mei Pan, Tom Willhammar, Kian Ping Loh, Cheng-Yong Su
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Abstract

Hierarchical assembly is used to construct complex materials using elementary building units, mainly depending on the non-covalent interactions involving dynamic bonds. Here we present a hierarchical assembly strategy to build highly crystalline tubular frameworks. A multi-level assembly process driven by dynamic covalent bonds and coordination bonds is shown to produce a supramolecular nanotubular framework and three tubular covalent organic frameworks (COFs). These materials consist of well-ordered triangular nanotubes assembled in an oriented manner. In tubular COFs, the spacing between adjacent nanotubes can be systematically adjusted by altering the connector lengths to create mesoporous structures with adjustable pore size. Moreover, reversible transformations between tubular COFs and layered COFs were achieved by the reversible addition and removal of Zn(NO3)2. The facile demetallation–remetallation process confers tuneable structural properties to the materials and enables the layered COFs to serve as efficient ‘sponges’ for metal ions. This study represents a notable advance in hierarchical assembly; incorporating covalent bonding into this process is expected to greatly accelerate the development of new materials.

Abstract Image

共价键和配位键驱动管状框架的分层组装
分层组装主要依靠涉及动态键的非共价相互作用,利用基本构建单元构建复杂材料。在这里,我们介绍了一种构建高结晶管状框架的分层组装策略。由动态共价键和配位键驱动的多层次组装过程表明,可以生成一种超分子纳米管状框架和三种管状共价有机框架(COFs)。这些材料由有序的三角形纳米管定向组装而成。在管状 COF 中,相邻纳米管之间的间距可通过改变接头长度进行系统调整,从而形成孔径可调的介孔结构。此外,Zn(NO3)2的可逆添加和去除实现了管状COF与层状COF之间的可逆转化。简便的去金属化-重金属化过程赋予了材料可调的结构特性,并使层状 COFs 成为金属离子的高效 "海绵"。这项研究代表了分层组装技术的显著进步;将共价键结合到这一过程中有望大大加快新材料的开发。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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CiteScore
8.10
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