Abstract
Metal carbonyls are commonly employed probes for quantifying the donor properties of monodentate ligands. With a view to extending this methodology to mer-tridentate “pincer” ligands, the spectroscopic properties [ν(CO), δ13C, 1JRhC] of rhodium(I) and rhodium(III) carbonyl complexes of the form [Rh(pincer)(CO)][BArF4] and [Rh(pincer)Cl2(CO)][BArF4] have been critically analysed for four pyridyl-based pincer ligands, with two flanking oxazoline (NNN), phosphine (PNP), or N-heterocyclic carbene (CNC) donors. Our investigations indicate that the carbonyl bands of the rhodium(I) complexes are the most diagnostic, with frequencies discernibly decreasing in the order NNN > PNP > CNC. To gain deeper insight, a DFT-based energy decomposition analysis was performed and identified important bonding differences associated with the conformation of the pincer backbone, which clouds straightforward interpretation of the experimental IR data. A correlation between the difference in carbonyl stretching frequencies Δν(CO) and calculated thermodynamics of the RhI/RhIII redox pairs was identified and could prove to be a useful mechanistic tool.
Author supplied keywords
Cite
CITATION STYLE
Parker, G. L., Lau, S., Leforestier, B., & Chaplin, A. B. (2019). Probing the Donor Properties of Pincer Ligands Using Rhodium Carbonyl Fragments: An Experimental and Computational Case Study. European Journal of Inorganic Chemistry, 2019(33), 3791–3798. https://doi.org/10.1002/ejic.201900727
Register to see more suggestions
Mendeley helps you to discover research relevant for your work.