Niu Xiaohui, Yang Xing, Li Hongxia, Liu Jian, Liu Zhenyu, Wang Kunjie
College of Petrochemical Technology, Lanzhou University of Technology, Lanzhou, 730050, People's Republic of China.
College of Polymer Science and Engineering, State Key Laboratory of Polymer Materials Engineering, Sichuan University, Chengdu, 610065, People's Republic of China.
Mikrochim Acta. 2020 Nov 27;187(12):676. doi: 10.1007/s00604-020-04646-4.
Chirality is a universal phenomenon in nature and an essential attribute of life systems. Chiral recognition has very important research value in many fields. Amino acids and other chiral molecules are the basic components of human body. Understanding the configuration of chiral molecules is beneficial not only to the development of life science, but also to the development of chiral recognition. Compared with other traditional chiral recognition methods, electrochemical methods have the advantages of rapid detection, simple operation, low price, and high sensitivity, which has been widely concerned. In this review, we present an overview of chiral materials in a view of various chiral selectors, including amino acids and their derivatives, proteins, polysaccharides, chiral ligand exchange compounds, chiral cavity compounds (such as cyclodextrin, cucurbituril, calixarene, crown ether), and chiral ionic liquids, which were applied for the recognition of chiral molecules. Besides the chiral recognition mechanisms, some critical challenges and outlooks in the field of electrochemical chiral sensing interfaces are also discussed. Graphical abstract We have reported an overview of chiral materials in various chiral selectors, including amino acids and their derivatives, proteins, polysaccharides, chiral ligand-exchange compounds, chiral cavity, and chiral ionic liquids, which was applied for the recognition of chiral molecules. Besides chiral recognition mechanism, some critical challenges and outlooks are also discussed.
手性是自然界中普遍存在的现象,也是生命系统的基本属性。手性识别在许多领域具有非常重要的研究价值。氨基酸等手性分子是人体的基本组成部分。了解手性分子的构型不仅有利于生命科学的发展,也有利于手性识别的发展。与其他传统手性识别方法相比,电化学方法具有检测快速、操作简单、价格低廉、灵敏度高等优点,受到广泛关注。在这篇综述中,我们从各种手性选择剂的角度对手性材料进行了概述,包括氨基酸及其衍生物、蛋白质、多糖、手性配体交换化合物、手性空腔化合物(如环糊精、葫芦脲、杯芳烃、冠醚)和手性离子液体,这些材料被用于手性分子的识别。除了手性识别机制外,还讨论了电化学手性传感界面领域的一些关键挑战和展望。图形摘要我们报道了各种手性选择剂中的手性材料概述,包括氨基酸及其衍生物、蛋白质、多糖、手性配体交换化合物、手性空腔和手性离子液体,这些材料被用于手性分子的识别。除了手性识别机制外,还讨论了一些关键挑战和展望。