Hydrogen-Bonded Ladder Frameworks Composed of Low Symmetric Tricarboxylic Acids

IF 3.2 2区 化学 Q2 CHEMISTRY, MULTIDISCIPLINARY
Namiki Tanaka, Taito Hashimoto, Yuto Suzuki, Ryusei Oketani and Ichiro Hisaki*, 
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引用次数: 0

Abstract

Preorganization of supramolecular network structures by designing building block molecules from aspects of supramolecular synthons and tectons is fundamental for developing porous organic materials. Benzene derivatives possessing 4-carboxyphenyl groups are suitable systems to explore the relationship between the symmetry of tectons and the resultant supramolecular network structures because of directional hydrogen bonding of the carboxy groups. Herein, supramolecular network structures composed of Cs-symmetric 1,2,4-tris(4-carboxyphenyl)benzene and its analogues with pyridine and isoquinoline cores are reported. These tritopic carboxylic acids form a ladder-shaped motif instead of a brick-type network motif via intermolecular hydrogen bonding. Their crystal structures and thermal behaviors are thoroughly investigated, revealing that they showed multistep structural transformations upon release of the solvent molecules included in their voids. The behaviors strongly depend on the cores. These results can contribute to the field of reticular chemistry from aspects of molecular symmetry and the resultant network topology.

Abstract Image

低对称三羧酸组成的氢键阶梯框架
从超分子合成子和构造子的角度设计构建块分子来预先组织超分子网络结构是开发多孔有机材料的基础。含4-羧基苯基的苯衍生物由于羧基的定向氢键作用,是研究构造对称性与形成的超分子网络结构之间关系的合适体系。本文报道了由cs对称的1,2,4-三(4-羧基苯基)苯及其类似物与吡啶和异喹啉核组成的超分子网络结构。这些三羟基羧酸通过分子间氢键形成阶梯状基序而不是砖状网络基序。对它们的晶体结构和热行为进行了深入的研究,揭示了它们在释放溶媒分子时的多步结构转变。这些行为强烈依赖于核。这些结果可以从分子对称性和由此产生的网络拓扑结构方面为网状化学领域做出贡献。
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来源期刊
Crystal Growth & Design
Crystal Growth & Design 化学-材料科学:综合
CiteScore
6.30
自引率
10.50%
发文量
650
审稿时长
1.9 months
期刊介绍: The aim of Crystal Growth & Design is to stimulate crossfertilization of knowledge among scientists and engineers working in the fields of crystal growth, crystal engineering, and the industrial application of crystalline materials. Crystal Growth & Design publishes theoretical and experimental studies of the physical, chemical, and biological phenomena and processes related to the design, growth, and application of crystalline materials. Synergistic approaches originating from different disciplines and technologies and integrating the fields of crystal growth, crystal engineering, intermolecular interactions, and industrial application are encouraged.
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