Desmedt Eline, Casademont-Reig Irene, Monreal-Corona Roger, De Vleeschouwer Freija, Alonso Mercedes
Department of General Chemistry, Algemene Chemie (ALGC), Vrije Universiteit Brussel, Pleinlaan 2, 1050, Brussel, Belgium.
Institut de Química Computacional i Catàlisi and Departament de Química, Universitat de Girona, C/Maria Aurèlia Capmany 69, 17003, Girona, Catalonia, Spain.
Chemistry. 2024 Sep 16;30(52):e202401933. doi: 10.1002/chem.202401933. Epub 2024 Aug 12.
Spectroscopic properties are commonly used in the experimental evaluation of ground- and excited-state aromaticity in expanded porphyrins. Herein, we investigate if the defining photophysical properties still hold for a diverse set of hexaphyrins with varying redox states, topologies, peripheral substitutions, and core-modifications. By combining TD-DFT calculations with several aromaticity descriptors and chemical compound space maps, the intricate interplay between structural planarity, aromaticity, and absorption spectra is elucidated. Our results emphasize that the general assumption that antiaromatic porphyrinoids exhibit significantly attenuated absorption bands as compared to aromatic counterparts does not hold even for the unsubstituted hexaphyrin macrocycles. To connect the spectroscopic properties to the hexaphyrins' aromaticity behaviour, we analyzed chemical compound space maps defined by the various aromaticity indices. The intensity of the Q-band is not well described by the macrocyclic aromaticity. Instead, the degeneracy of the frontier molecular orbitals, the HOMO-LUMO gap, and the |ΔHOMO-ΔLUMO| values appear to be better indicators to identify hexaphyrins with enhanced light-absorbing abilities in the near-infrared region. Regions with highly planar hexaphyrin structures, both aromatic and antiaromatic, are characterized by an intense B-band. Hence, we advise using a combination of global and local aromaticity descriptors rooted in different criteria to assess the aromaticity of expanded porphyrins instead of solely relying on the absorption spectra.
光谱性质常用于扩展卟啉基态和激发态芳香性的实验评估。在此,我们研究了对于具有不同氧化还原状态、拓扑结构、外围取代和核心修饰的多种六卟啉,其定义性光物理性质是否仍然成立。通过将TD-DFT计算与几种芳香性描述符和化合物空间图相结合,阐明了结构平面性、芳香性和吸收光谱之间复杂的相互作用。我们的结果强调,与芳香性对应物相比,反芳香性卟啉类化合物表现出显著衰减的吸收带这一普遍假设,即使对于未取代的六卟啉大环也不成立。为了将光谱性质与六卟啉的芳香性行为联系起来,我们分析了由各种芳香性指数定义的化合物空间图。Q带的强度不能很好地用大环芳香性来描述。相反,前沿分子轨道的简并性、HOMO-LUMO能隙和|ΔHOMO - ΔLUMO|值似乎是识别在近红外区域具有增强光吸收能力的六卟啉的更好指标。具有高度平面六卟啉结构的区域,无论是芳香性还是反芳香性的,都以强烈的B带为特征。因此,我们建议结合基于不同标准的全局和局部芳香性描述符来评估扩展卟啉的芳香性,而不是仅仅依赖于吸收光谱。