4.8 Article

A coordination chemistry dichotomy for icosahedral carborane-based ligands

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NATURE CHEMISTRY
卷 3, 期 8, 页码 590-596

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NATURE PORTFOLIO
DOI: 10.1038/NCHEM.1088

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  1. National Science Foundation (NSF)
  2. Army Research Office (ARO)
  3. Defense Threat Reduction Agency (DTRA)
  4. Air Force Office of Scientific Research (AFOSR) (through a Multidisciplinary University Research Initiative (MURI))
  5. Department of Education for a Graduate Assistance in Areas of National Need (GAANN)
  6. Northwestern University

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Although the majority of ligands in modern chemistry take advantage of carbon-based substituent effects to tune the sterics and electronics of coordinating moieties, we describe here how icosahedral carboranes-boron-rich clusters-can influence metal-ligand interactions. Using a series of phosphine-thioether chelating ligands featuring meta- or ortho-carboranes grafted on the sulfur atom, we were able to tune the lability of the platinum-sulfur interaction of platinum(II)thioether complexes. Experimental observations, supported by computational work, show that icosahedral carboranes can act either as strong electron-withdrawing ligands or electron-donating moieties (similar to aryl- or alkyl-based groups, respectively), depending on which atom of the carborane cage is attached to the thioether moiety. These and similar results with carborane-selenol derivatives suggest that, in contrast to carbon-based ligands, icosahedral carboranes exhibit a significant dichotomy in their coordination chemistry, and can be used as a versatile class of electronically tunable building blocks for various ligand platforms.

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