Key Laboratory for Advanced Materials and Institute of Fine Chemicals, Shanghai Key Laboratory of Functional Materials Chemistry, East China University of Science and Technology , Shanghai 200237, P. R. China.
Department of Biomedical Engineering, College of Engineering and Applied Sciences, Nanjing University , Nanjing, Jiangsu 210093, China.
Chem Rev. 2017 Feb 22;117(4):2203-2256. doi: 10.1021/acs.chemrev.6b00021. Epub 2016 Apr 14.
Sensing of metal ions and anions is of great importance because of their widespread distribution in environmental systems and biological processes. Colorimetric and fluorescent chemosensors based on organic molecular species have been demonstrated to be effective for the detection of various ions and possess the significant advantages of low cost, high sensitivity, and convenient implementation. Of the available classes of organic molecules, porphyrin analogues possess inherently many advantageous features, making them suitable for the design of ion chemosensors, with the targeted sensing behavior achieved and easily modulated based on their following characteristics: (1) NH moieties properly disposed for binding of anions through cooperative hydrogen-bonding interactions; (2) multiple pyrrolic N atoms or other heteroatoms for selectively chelating metal ions; (3) variability of macrocycle size and peripheral substitution for modulation of ion selectivity and sensitivity; and (4) tunable near-infrared emission and good biocompatibility. In this Review, design strategies, sensing mechanisms, and sensing performance of ion chemosensors based on porphyrin analogues are described by use of extensive examples. Ion chemosensors based on normal porphyrins and linear oligopyrroles are also briefly described. This Review provides valuable information for researchers of related areas and thus may inspire the development of more practical and effective approaches for designing high-performance ion chemosensors based on porphyrin analogues and other relevant compounds.
金属离子和阴离子的传感具有重要意义,因为它们广泛分布于环境系统和生物过程中。基于有机分子的比色和荧光化学传感器已被证明可有效用于检测各种离子,并且具有成本低、灵敏度高和易于实现等显著优点。在可用的有机分子类别中,卟啉类似物具有许多固有的有利特性,使其适合于离子化学传感器的设计,其目标传感行为可以通过以下特性来实现和轻松调节:(1)NH 部分适当布置,通过协同氢键相互作用结合阴离子;(2)多个吡咯 N 原子或其他杂原子用于选择性螯合金属离子;(3)大环尺寸和外围取代基的可变性用于调节离子选择性和灵敏度;以及(4)可调谐近红外发射和良好的生物相容性。在本综述中,通过广泛的实例描述了基于卟啉类似物的离子化学传感器的设计策略、传感机制和传感性能。还简要描述了基于正常卟啉和线性寡吡咯的离子化学传感器。本综述为相关领域的研究人员提供了有价值的信息,从而可能激发基于卟啉类似物和其他相关化合物设计高性能离子化学传感器的更实用和有效的方法的发展。