Synthesis and Characterization of Copper Complexes Featuring a Redox-Active ONO Ligand in Three Molecular Oxidation
David D Hebert1, Ankita Puri1, Daniel Ye1
1Department of Chemistry, Carnegie Mellon University, Pittsburgh, Pennsylvania 15213, United States.
Abstract:
In this research article, we report the synthesis, characterization, and reactivity of a family of Cu complexes bearing a tridentate iminosemiquinone ligand and ancillary amine ligands ((sqONO)CuII(L)n, n: 1 or 2). The complexes were obtained following a one-pot synthetic protocol by mixing CuII, 3,5-di-tert-butylcatechol, and aqueous ammonia in the presence of an amine base. The Cu complexes were structurally characterized by single-crystal X-ray diffraction analysis (SC-XRD). Cyclic voltammetry measurements showed that the Cu complexes reached three molecular oxidation states in a reversible fashion. The reaction between the Cu-iminosemiquinone complex (sqONO)CuII(L) with cobaltocene (1e- donor) and ferrocenium (1e- acceptor) produced the corresponding reduced and oxidized complexes. Structural and spectroscopic characterization (SC-XRD, UV-vis, and EPR) of the Cu complexes in the three oxidation states, namely, [(catONO)CuII(L)]-, (sqONO)CuII(L), and [(bqONO)CuII(L)]+, suggest that the redox events are ligand-based. DFT computations also formulated the complexes as CuII species with the ONO ligand in different oxidation states. For the CuII-iminosemiquinone complexes, we calculated small energetic differences between their singlet and triplet states (S = 0 vs S = 1), which explain their magnetic behavior in solution. Our results provide evidence of how Cu-radical metalloenzymes might tune their electronic structure to modulate their reactivity.
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