Volume 81, Issue 6 pp. 299-309
research papers

Synthesis and crystal structures of a family of bimetallic complexes with phenyl-substituted bridging tetraoxolene ligands

Ashlyn A. Kamin

Corresponding Author

Ashlyn A. Kamin

University of Washington,, Seattle, USA

Ashlyn A. Kamin, e-mail: [email protected]Search for more papers by this author
Phuong H. Le

Phuong H. Le

University of Washington,, Seattle, USA

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EJ Brannan

EJ Brannan

University of Washington,, Seattle, USA

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Paige M. Gannon

Paige M. Gannon

University of Washington,, Seattle, USA

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Sebastian Krajewski

Sebastian Krajewski

University of Washington,, Seattle, USA

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Werner Kaminsky

Werner Kaminsky

University of Washington,, Seattle, USA

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Dianne J. Xiao

Dianne J. Xiao

University of Washington,, Seattle, USA

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First published: 12 May 2025

Abstract

Seven dinuclear metal complexes and one trinuclear metal complex have been synthesized using the redox-active diphenyl-substituted tetraoxolene 2,5-dihydroxy-3,6-diphenyl-1,4-benzoquinone (H2Ph2dhbq, C18H12O4) as a bridging ligand and tris[(pyridin-2-yl)methyl]amine (TPA, C18H18N4) as a tetradentate terminal ligand. Single-crystal X-ray diffraction data confirm the final redox states of all components, revealing both expected and unexpected redox behavior across the eight reported complexes. Metal complexes with the formula [MII2(Ph2dhbq2−)(TPA)2]2+ can be synthesized from Mn, Fe, Co, Ni, Zn, and Ru, using either the oxidized ligand H2Ph2dhbq or a combination of the reduced ligand H4Ph2dhbq and an in-situ oxidant. Additionally, switching to Group 13 elements, such as Ga, facilitates the formation of the related [MIII2(Ph2dhbq4−)(TPA)2]2+ complex, wherein the ligand remains in its initial reduced state.

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