Possato Bruna, Deflon Victor M, Naal Zeki, Formiga André L B, Nikolaou Sofia
Departamento de Química - Faculdade de Filosofia, Ciências e Letras de Ribeirão Preto - Universidade de São Paulo - Av. Bandeirantes, 3900, Zip Code 14040-901, Ribeirão Preto, SP, Brazil.
Departamento de Química e Física Molecular - Instituto de Química de São Carlos - Universidade de São Paulo - Av. Trabalhador São Carlense, 400, Centro, Zip Code 13566-590, São Carlos, SP, Brazil.
Dalton Trans. 2017 Jun 28;46(24):7926-7938. doi: 10.1039/c7dt01152k. Epub 2017 Jun 12.
We report on the investigation of a new series of symmetric trinuclear ruthenium complexes combined with azanaphthalene ligands: [RuO(CHCOO)(L)]PF where L = (1) quinazoline (qui), (2) 5-nitroisoquinoline (5-nitroiq), (3) 5-bromoisoquinoline (5-briq), (4) isoquinoline (iq), (5) 5-aminoisoquinoline (5-amiq), and (6) 5,6,7,8-tetrahydroisoquinoline (thiq). The crystal structure of complex 1, [RuO(CHCOO)(qui)]PF, was determined by X-ray diffraction analysis, showing a high degree of co-planarity between the [RuO] plane and the azanaphthalene ligands. Spectroscopic (UV-visible, NMR and infra-red) and electrochemical (cyclic voltammetry and spectroelectrochemistry) data showed correlation with the pK values of the azanaphthalene ligands and this dependence was rationalized in terms of the molecular orbital of the [RuO] unit and the structure of the ligands. By analysing the spectroscopic and electrochemical correlations, the ability of the azanaphthalene ligands to extend the electronic π-system of the [RuO] unit to the periphery of the compounds was demonstrated. This electronic effect accounts for the planarity of the structure of complex 1. It was also shown through molecular modeling results that, to explain the spectroscopic and electrochemical behaviour of these species, it is not possible to neglect the electronic mixing between the metallic and the acetate orbitals. Finally, this work revealed that electronic coupling is more pronounced in the azanaphthalene series of complexes than in pyridinic analogues and it is this coupling that determines the spectroscopic and electrochemical behaviour of the new species.
[RuO(CHCOO)(L)]PF,其中L = (1)喹唑啉(qui),(2)5-硝基异喹啉(5-nitroiq),(3)5-溴异喹啉(5-briq),(4)异喹啉(iq),(5)5-氨基异喹啉(5-amiq),以及(6)5,6,7,8-四氢异喹啉(thiq)。配合物1,[RuO(CHCOO)(qui)]PF的晶体结构通过X射线衍射分析确定,显示[RuO]平面与氮杂萘配体之间具有高度共面性。光谱(紫外可见、核磁共振和红外)和电化学(循环伏安法和光谱电化学)数据显示与氮杂萘配体的pK值相关,并且这种依赖性根据[RuO]单元的分子轨道和配体结构得到了合理的解释。通过分析光谱和电化学相关性,证明了氮杂萘配体将[RuO]单元的电子π-体系扩展到化合物外围的能力。这种电子效应解释了配合物1结构的平面性。分子建模结果还表明,为了解释这些物种的光谱和电化学行为,不能忽视金属轨道和乙酸根轨道之间的电子混合。最后,这项工作表明,电子耦合在氮杂萘系列配合物中比在吡啶类似物中更为明显,正是这种耦合决定了新物种的光谱和电化学行为。