Sinha Woormileela, Sommer Michael G, Deibel Naina, Ehret Fabien, Sarkar Biprajit, Kar Sanjib
School of Chemical Sciences, National Institute of Science Education and Research (NISER), Bhubaneswar - 751005 (India).
Chemistry. 2014 Nov 24;20(48):15920-32. doi: 10.1002/chem.201403609. Epub 2014 Oct 3.
Macrocycles such as porphyrins and corroles have important functions in chemistry and biology, including light absorption for photosynthesis. Generation of near-IR (NIR)-absorbing dyes based on metal complexes of these macrocycles for mimicking natural photosynthesis still remains a challenging task. Herein, the syntheses of four new Ag(III) corrolato complexes with differently substituted corrolato ligands are presented. A combination of structural, electrochemical, UV/Vis/NIR-EPR spectroelectrochemical, and DFT studies was used to decipher the geometric and electronic properties of these complexes in their various redox states. This combined approach established the neutral compounds as stable Ag(III) complexes, and the one-electron reduced species of all the compounds as unusual, stable Ag(II) complexes. The one-electron oxidized forms of two of the complexes display absorptions in the NIR region, and thus they are rare examples of mononuclear complexes of corroles that absorb in the NIR region. The appearance of this NIR band, which has mixed intraligand charge transfer/intraligand character, is strongly dependent on the substituents of the corrole rings. Hence, the present work revolves round the design principles for the generation of corrole-based NIR-absorbing dyes and shows the potential of corroles for stabilizing unusual metal oxidation states. These findings thus further contribute to the generation of functional metal complexes based on such macrocyclic ligands.
卟啉和咕啉等大环化合物在化学和生物学中具有重要功能,包括光合作用中的光吸收。基于这些大环化合物的金属配合物生成近红外(NIR)吸收染料以模拟自然光合作用仍然是一项具有挑战性的任务。在此,介绍了四种具有不同取代基的咕啉配体的新型Ag(III)咕啉配合物的合成。结合结构、电化学、紫外/可见/近红外-电子顺磁共振光谱电化学和密度泛函理论研究来解析这些配合物在不同氧化态下的几何和电子性质。这种综合方法确定中性化合物为稳定的Ag(III)配合物,所有化合物的单电子还原物种为不寻常的稳定Ag(II)配合物。其中两种配合物的单电子氧化形式在近红外区域有吸收,因此它们是在近红外区域吸收的咕啉单核配合物的罕见例子。这个具有混合配体内电荷转移/配体内特征的近红外波段的出现强烈依赖于咕啉环的取代基。因此,目前的工作围绕基于咕啉的近红外吸收染料的设计原则展开,并展示了咕啉在稳定不寻常金属氧化态方面的潜力。这些发现因此进一步有助于基于此类大环配体生成功能性金属配合物。