Distinguishing between aquo and hydroxo coordination in molecular copper complexes by 1H and 17O ENDOR spectroscopy

Abstract

Aquo and hydroxo ligands play an essential role in the chemistry of many copper enzymes and small molecule catalysts. The formation of a series of copper complexes with H2O and OH ligands in various positions, including [Cu(bpy)(OAc)(H2O)2,ax]+ (Cu-I), [Cu(bpy)(OH)2,eq(HxO)2,ax] (Cu-III), [Cu(OH)4,eq(HxO)2,ax]2− (Cu-IV), [Cu(bpy)(H2O)2,eq(H2O)2,ax]2+ (Cu-V) and [Cu(bpy)2(H2O)ax]2+ (Cu-VI), were investigated through Electron Paramagnetic Resonance (EPR) and UV-Vis spectroscopy in aqueous copper bipyridine solutions in the dependence of the pH and the copper-to-bipyridine ratio (bpy = 2,2′-bipyridine). 2H- and 17O-enrichment of the copper complexes allowed us to determine the 1H and 17O nuclear hyperfine interactions of their HxO ligands via Q-band Electron Nuclear Double Resonance (ENDOR) spectroscopy. These techniques gave direct insight into the metal–ligand covalencies and geometries and were further supported by Density Functional Theory (DFT) calculations. It is shown that 1H and 17O ENDOR spectroscopy can aid in (1) determining the coordination position, thereby differentiating between equatorial and axial HxO ligands and (2) distinguishing equatorial aqua and hydroxo ligands, particularly through their anisotropic dipolar components. We further studied the influence of trans coordinating ligands on the hyperfine parameters of aquo and hydroxo ligands, enabled through contrasting the coordination environments in the examined complexes, supported by quantum chemical computations.

Graphical abstract: Distinguishing between aquo and hydroxo coordination in molecular copper complexes by 1H and 17O ENDOR spectroscopy

Supplementary files

Article information

Article type
Paper
Submitted
24 Sep 2024
Accepted
12 Nov 2024
First published
21 Nov 2024
This article is Open Access
Creative Commons BY license

Dalton Trans., 2025, Advance Article

Distinguishing between aquo and hydroxo coordination in molecular copper complexes by 1H and 17O ENDOR spectroscopy

J. Haak and G. E. Cutsail, Dalton Trans., 2025, Advance Article , DOI: 10.1039/D4DT02708F

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