Di Bella Santo
Dipartimento di Scienze Chimiche, Università di Catania, I-95125 Catania, Italy.
Dalton Trans. 2021 May 11;50(18):6050-6063. doi: 10.1039/d1dt00949d.
In this frontier article some peculiar characteristics of Zn(salen)-type Schiff-base complexes are reviewed. The paper is mainly focused on the most recent and relevant achievements on responsive supramolecular nanostructures and sensing properties, both of them related to the Lewis acidic character of the ZnII centre in these molecular species, providing an interpretation of these features. The sensing properties of Zn(salen)-type complexes mainly originate from optical spectroscopic changes associated with the formation of the adducts upon addition of a Lewis base (analyte), either by deaggregation of dimeric species or displacement of the solvent coordinated to the metal centre. In both cases the direct sensing is related either to the Lewis acidic character of the complex as well as to the Lewis basicity of the analyte. The formation of responsive nanostructures with fluorescent, and/or vapochromic, mechanochromic, and thermochromic characteristics is driven by non-mutual intermolecular ZnO interactions, further stabilized by π-π stacking interactions and/or interdigitation of the alkyl side groups. The Lewis acidic character is not a prerogative of Zn(salen)-type complexes of tetradentate Schiff-bases. Many other classes of ZnII complexes can possess this property. A correct interpretation of their chemistry is certainly useful for further development of these classical coordination compounds as new molecular materials.
在这篇前沿文章中,对锌(salen)型席夫碱配合物的一些独特特性进行了综述。本文主要聚焦于响应性超分子纳米结构和传感特性方面的最新相关成果,这两者均与这些分子物种中ZnII中心的路易斯酸性特征相关,并对这些特性进行了解释。锌(salen)型配合物的传感特性主要源于添加路易斯碱(分析物)时与加合物形成相关的光谱变化,这是通过二聚体物种的解聚或与金属中心配位的溶剂的取代实现的。在这两种情况下,直接传感都与配合物的路易斯酸性特征以及分析物的路易斯碱性有关。具有荧光、和/或气相变色、机械变色和热致变色特性的响应性纳米结构的形成是由非相互的分子间ZnO相互作用驱动的,并通过π-π堆积相互作用和/或烷基侧基的相互穿插进一步稳定。路易斯酸性特征并非四齿席夫碱锌(salen)型配合物所特有。许多其他类型的ZnII配合物也可能具有这种性质。正确解释它们的化学性质对于将这些经典配位化合物进一步开发为新型分子材料肯定是有用的。