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Computationally-inspired discovery of an unsymmetrical porous organic cage

机译:Computationally-inspired发现的不对称多孔有机笼

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A completely unsymmetrical porous organic cage was synthesised from a C-2v symmetrical building block that was identified by a computational screen. The cage was formed through a 12-fold imine condensation of a tritopic C-2v symmetric trialdehyde with a ditopic C-2 symmetric diamine in a 4 + 6 reaction. The cage was rigid and microporous, as predicted by the simulations, with an apparent Brunauer-Emmett-Teller surface area of 578 m(2) g(-1). The reduced symmetry of the tritopic building block relative to its topicity meant there were 36 possible structural isomers of the cage. Experimental characterisation suggests a single isomer with 12 unique imine environments, but techniques such as NMR could not conclusively identify the isomer. Computational structural and electronic analysis of the possible isomers was used to identify the most likely candidates, and hence to construct a 3-dimensional model of the amorphous solid. The rational design of unsymmetrical cages using building blocks with reduced symmetry offers new possibilities in controlling the degree of crystallinity, porosity, and solubility, of self-assembled materials.
机译:一个完全不对称多孔有机笼从C-2v合成对称的建筑块由计算确定屏幕上。亚胺的缩合tritopic C-2v对称的与ditopic trialdehyde c - 2对称二胺(4 + 6)反应。模拟预测的微孔,带有明显的Brunauer-Emmett-Teller表面面积578 m g(1)(2)。tritopic构件相对于其topicity意味着有36个可能的结构同分异构体的笼子里。描述表明单一异构体与12独特的亚胺环境,但等技术核磁共振无法最终确定的异构体。计算结构和电子分析可能的异构体被用来识别最有可能的候选人,因此构建一个三维模型的非晶态固体。合理设计不对称的笼子里和减少对称提供了新的构建块可能在控制的程度结晶度、孔隙度和溶解度,自组装材料。

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