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一种受胶原蛋白启发的共价螺旋聚合物的单晶到单晶拓扑化学合成

Single-Crystal-to-Single-Crystal Topochemical Synthesis of a Collagen-inspired Covalent Helical Polymer.

作者信息

Rai Rishika, Khazeber Ravichandran, Sureshan Kana M

机构信息

School of Chemistry, Indian Institute of Science Education and Research Thiruvananthapuram Thiruvananthapuram, Kerala, 695551, India.

出版信息

Angew Chem Int Ed Engl. 2023 Dec 4;62(49):e202315742. doi: 10.1002/anie.202315742. Epub 2023 Nov 6.

Abstract

There is much demand for crystalline covalent helical polymers. Inspired by the helical structure of collagen, we synthesized a covalent helical polymer wherein the repeating dipeptide Gly-Pro units are connected by triazole linkages. We synthesized an azide and alkyne-modified dipeptide monomer made up of the repeating amino acid sequence of collagen. In its crystals, the monomer molecules aligned in head-to-tail fashion with proximally placed azide and alkyne forming supramolecular helices. At 60 °C, the monomer underwent single-crystal-to-single-crystal (SCSC) topochemical azide-alkyne cycloaddition polymerization, yielding a covalent helical polymer as confirmed by single-crystal X-ray diffraction (SCXRD) analysis. Compared to the monomer crystals, the polymer single-crystals were very strong and showed three-fold increase in Young's modulus, which is higher than collagen, many synthetic polymers and other materials. The crystals of this covalent helical polymer could bear loads as high as 1.5 million times of their own weight without deformation. These crystals could also withstand high compression force and did not disintegrate even at an applied force of 98 kN. Such light-weight strong materials are in demand for various technological applications.

摘要

对结晶性共价螺旋聚合物有很大的需求。受胶原蛋白螺旋结构的启发,我们合成了一种共价螺旋聚合物,其中重复的二肽甘氨酸-脯氨酸单元通过三唑键连接。我们合成了一种由胶原蛋白的重复氨基酸序列组成的叠氮化物和炔烃修饰的二肽单体。在其晶体中,单体分子以头对尾的方式排列,近端的叠氮化物和炔烃形成超分子螺旋。在60°C下,单体发生单晶到单晶(SCSC)的拓扑化学叠氮化物-炔烃环加成聚合反应,通过单晶X射线衍射(SCXRD)分析证实生成了一种共价螺旋聚合物。与单体晶体相比,聚合物单晶非常坚固,杨氏模量增加了三倍,高于胶原蛋白、许多合成聚合物和其他材料。这种共价螺旋聚合物的晶体能够承受高达自身重量150万倍的负载而不变形。这些晶体还能承受高压缩力,即使在98 kN的外力作用下也不会解体。这种轻质高强度的材料在各种技术应用中都有需求。

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