Ground and excited electronic states of quininone-containing Re(I)-based rectangles: A comprehensive study of their preparation, electrochemistry, and photophysics

dc.contributor.author Bhattacharya, Dibyendu
dc.contributor.author Sathiyendiran, Malaichamy
dc.contributor.author Luo, Tzuoo Tsair
dc.contributor.author Chang, Che Hao
dc.contributor.author Cheng, Yu Hsiang
dc.contributor.author Lin, Ching Yao
dc.contributor.author Lee, Gene Hsiang
dc.contributor.author Peng, Shie Ming
dc.contributor.author Lu, Kuang Lieh
dc.date.accessioned 2022-03-27T08:36:14Z
dc.date.available 2022-03-27T08:36:14Z
dc.date.issued 2009-04-20
dc.description.abstract The self-assembly of two rectangular compounds [{(CO)3Re(μ- QL)Re(CO)3}2(μ-bpy)2] (1, QL ) 6,7-dimethyl 1,4-dioxido-9,10-anthraquinone (QL1); 2, QL = 1,4-dioxido-9,10- anthraquinone (QL2, bpy = 4,4′-bipyridine) via an orthogonal-bonding approach was achieved in high yields. Their structures were characterized by single-crystal X-ray diffraction analysis. The rectangles exhibited multielectron-redox properties. The introduction of a bridging quininone moiety made notable changes in two well-separated single-electron reductions of the bpy moiety, as compared with other 2,2′- bisbenzimidazolate (BiBzlm) or thiolate- or alkoxide-bridged rectangles, followed by quasi-reversible reduction of the quininone moiety to allow the existence of different redox states. Electrochemical assessment using cyclic voltammetry and UV-vis-NIR spectroelectrochemistry revealed reversibly accessible 0, 1-, and 2- redox states. The comproportionation constant of the successive reduction processes was Kc ) 4.18 × 108 for complex 1 and 4.08 × 108 for 2. In spite of the high K c values, no obvious intervalence charge transfer bands were detected in either the vis, NIR, or IR regions, suggesting very weak electronic coupling between the ligand centers in the mixed-valent intermediates. In the mixed-valent intermediate, the overlap between donor and acceptor orbitals of the two bpy ligands engendered weak electronic coupling associated with distance that exceeded van der Waals ligand/ligand distances and created a class I fully isolated, non-interacting, valence-localized situation. Furthermore, unusual ligand-to-metal-to-ligand charge-transfer (LMLCT) transitions of complexes 1 and 2 at 298 K were observed in the visible region. Molecule 2 exhibited multiple emissions from the triplet-centered π-π* intraligand ( 3IL), metal-to-ligand charge-transfer (3MLCT) and triplet ligand-ligand charge transfer (3LLCT) levels and showed biexponential decay. By contrast, in complex 1, 3IL emission was absent and only single-exponential decay was observed. These results reveal the different nature of the electronically excited states between 1 and 2. The mechanisms of the photophysical deactivation processes in these systems can be explained in terms of the electronic characteristics of the quininone molecules and possible geometrical differences of the excited states involved. In addition, the energies, characteristics, and molecular structures of the ground and lowest triplet excited state were calculated using the density functional theory method. © 2009 American Chemical Society.
dc.identifier.citation Inorganic Chemistry. v.48(8)
dc.identifier.issn 00201669
dc.identifier.uri 10.1021/ic8024099
dc.identifier.uri https://pubs.acs.org/doi/10.1021/ic8024099
dc.identifier.uri https://dspace.uohyd.ac.in/handle/1/11153
dc.title Ground and excited electronic states of quininone-containing Re(I)-based rectangles: A comprehensive study of their preparation, electrochemistry, and photophysics
dc.type Journal. Article
dspace.entity.type
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