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从(亚)卟啉到(亚)酞菁:紫外可见吸收光谱中的芳香性特征

From (Sub)Porphyrins to (Sub)Phthalocyanines: Aromaticity Signatures in the UV-Vis Absorption Spectra.

作者信息

Escayola Sílvia, Labella Jorge, Szczepanik Dariusz W, Poater Albert, Torres Tomas, Solà Miquel, Matito Eduard

机构信息

Institut de Química Computacional i Catàlisi and Departament de Química, Universitat de Girona, C/Maria Aurèlia Capmany, 69, Girona, Catalonia 17003, Spain.

Donostia International Physics Center (DIPC), Donostia, Euskadi 20018, Spain.

出版信息

Inorg Chem. 2024 Sep 30;63(39):18251-18262. doi: 10.1021/acs.inorgchem.4c03139. Epub 2024 Sep 19.

Abstract

The development of novel synthetic methods has greatly expanded the toolbox available to chemists for engineering porphyrin and phthalocyanine derivatives with precise electronic and optical properties. In this study, we focus on the UV-vis absorption characteristics of substituted phthalocyanines and their contracted analogs, subphthalocyanines, which feature nonplanar, bowl-shaped geometries. These macrocycles, which are central to numerous applications in materials science and catalysis, possess extensive π-conjugated systems that drive their unique electronic properties. We explore how the change from a metalloid (B) to a metal (Zn) and the resulting coordination environments influence the aromaticity and, consequently, the spectroscopic features of these systems. A combined computational and experimental approach reveals a direct correlation between the aromaticity of the external conjugated pathways and the Q bands in the UV-vis spectra. Our findings highlight key structural modifications that can be leveraged to fine-tune the optical properties of porphyrinoid systems, offering new pathways for the design of advanced materials and catalysts with tailored functionalities.

摘要

新型合成方法的发展极大地扩展了化学家的工具库,使他们能够设计出具有精确电子和光学性质的卟啉和酞菁衍生物。在本研究中,我们聚焦于取代酞菁及其缩合类似物亚酞菁的紫外-可见吸收特性,这些亚酞菁具有非平面的碗状几何结构。这些大环化合物在材料科学和催化的众多应用中起着核心作用,拥有广泛的π共轭体系,这决定了它们独特的电子性质。我们探究从类金属(B)到金属(Zn)的变化以及由此产生的配位环境如何影响芳香性,进而影响这些体系的光谱特征。计算和实验相结合的方法揭示了外部共轭途径的芳香性与紫外-可见光谱中的Q带之间的直接关联。我们的研究结果突出了可用于微调类卟啉体系光学性质的关键结构修饰,为设计具有定制功能的先进材料和催化剂提供了新途径。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/dcb9/11465665/d1047ba4b8e5/ic4c03139_0007.jpg

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