Zhong Hai, Deng Jianping
State Key Laboratory of Chemical Resource Engineering and College of Materials Science and Engineering, Beijing University of Chemical Technology, Beijing, 100029, China.
Macromol Rapid Commun. 2021 Oct;42(19):e2100341. doi: 10.1002/marc.202100341. Epub 2021 Aug 6.
Chirality is omnipresent in nature and plays vital roles in living organism, and has become a hot research topic across multidisciplinary fields including chemistry, biology, physics, and material science. Meanwhile, polyamides constitute an important class of polymers and have received significant attention owing to their outstanding properties and wide-ranging applications in many areas. Judiciously introducing chirality into polyamides will undoubtedly obtain attractive chiral polymers, namely, optically active polyamides. This review describes the preparation methods of chiral polyamides, including solution polycondensation, interfacial polycondensation, ring-open polymerization, and others; the newly emerging categories of chiral polyamides, i.e., helical polyamides, chiral polyamide-imides, are also presented. The applications of optically active polyamides in chiral research fields including asymmetric catalysis, membrane separation, and enantioselective crystallization are also summarized. In addition, current challenges in chiral polyamides are further presented and future perspectives in the field are proposed.
手性在自然界中无处不在,在生物体中起着至关重要的作用,并且已经成为包括化学、生物学、物理学和材料科学在内的多学科领域的一个热门研究课题。同时,聚酰胺是一类重要的聚合物,由于其优异的性能和在许多领域的广泛应用而受到了广泛关注。明智地将手性引入聚酰胺无疑会得到有吸引力的手性聚合物,即光学活性聚酰胺。本文综述了手性聚酰胺的制备方法,包括溶液缩聚、界面缩聚、开环聚合等;还介绍了手性聚酰胺的新兴类别,即螺旋聚酰胺、手性聚酰胺酰亚胺。此外,还总结了光学活性聚酰胺在不对称催化、膜分离和对映选择性结晶等手性研究领域的应用。另外,还进一步介绍了手性聚酰胺目前面临的挑战,并提出了该领域的未来展望。