Liu Zheng-Fei, Ye Xin-Yi, Chen Lihua, Niu Li-Ya, Jin Wei Jun, Zhang Shaodong, Yang Qing-Zheng
Key Laboratory of Radiopharmaceuticals, Ministry of Education, College of Chemistry, Beijing Normal University, Beijing, 100875, P. R. China.
School of Chemistry and Chemical Engineering, Shanghai Jiao Tong University, Shanghai, 200240, P. R. China.
Angew Chem Int Ed Engl. 2024 Feb 19;63(8):e202318856. doi: 10.1002/anie.202318856. Epub 2024 Jan 18.
Chirality, with its intrinsic symmetry-breaking feature, is frequently utilized in the creation of acentric crystalline functional materials that exhibit intriguing optoelectronic properties. On the other hand, the development of chiral crystals from achiral molecules offers a solution that bypasses the need for enantiopure motifs, presenting a promising alternative and thereby expanding the possibilities of the self-assembly toolkit. Nevertheless, the rational design of achiral molecules that prefer spontaneous symmetry breaking during crystallization has so far been obscure. In this study, we present a series of six achiral molecules, demonstrating that when these conformationally flexible molecules adopt a cis-conformation and engage in multiple non-covalent interactions along a helical path, they collectively self-assemble into chiral superstructures consisting of single-handed supramolecular columns. When these homochiral supramolecular columns align in parallel, they form polar crystals that exhibit intense luminescence upon grinding or scraping. We therefore demonstrate our molecular design strategy could significantly increase the likelihood of symmetry breaking in achiral molecular synthons during self-assembly, offering a facile access to novel chiral crystalline materials with unique optoelectronic properties.
手性具有其固有的对称性破缺特性,经常被用于创建具有有趣光电特性的非中心对称晶体功能材料。另一方面,由非手性分子开发手性晶体提供了一种解决方案,绕过了对纯对映体基序的需求,这是一种很有前景的替代方法,从而扩展了自组装工具包的可能性。然而,到目前为止,在结晶过程中倾向于自发对称性破缺的非手性分子的合理设计一直不清楚。在本研究中,我们展示了一系列六个非手性分子,表明当这些构象灵活的分子采用顺式构象并沿着螺旋路径进行多种非共价相互作用时,它们会集体自组装成由单手超分子柱组成的手性超结构。当这些同手性超分子柱平行排列时,它们会形成极性晶体,在研磨或刮擦时会发出强烈的光。因此,我们证明我们的分子设计策略可以显著增加非手性分子合成子在自组装过程中对称性破缺的可能性,为获得具有独特光电特性的新型手性晶体材料提供了一种简便的方法。