| Literature DB >> 32820864 |
Julius Hillenbrand1, Markus Leutzsch1, Christopher P Gordon2, Christophe Copéret2, Alois Fürstner1.
Abstract
Triarylsilanolates are privileged ancillary ligands for <span class="Chemical">molybdenum alkylidyne catalysts for alkyne metathesis but lead to disappointing results and poor stability in the tungsten series. 1 H,183 W heteronuclear multiple bond correlation spectroscopy, exploiting a favorable 5 J-coupling between the 183 W center and the peripheral protons on the alkylidyne cap, revealed that these ligands upregulate the Lewis acidity to an extent that the tungstenacyclobutadiene formed in the initial [2+2] cycloaddition step is over-stabilized and the catalytic turnover brought to a halt. Guided by the 183 W NMR shifts as a proxy for the Lewis acidity of the central atom and by an accompanying chemical shift tensor analysis of the alkylidyne unit, the ligand design was revisited and a more strongly π-donating all-alkoxide ligand prepared. The new expanded chelate complex has a tempered Lewis acidity and outperforms the classical Schrock catalyst, carrying monodentate tert-butoxy ligands, in terms of rate and functional-group compatibility.Entities:
Keywords: NMR spectroscopy; ligand design; metathesis; structure elucidation; tungsten
Year: 2020 PMID: 32820864 PMCID: PMC7756321 DOI: 10.1002/anie.202009975
Source DB: PubMed Journal: Angew Chem Int Ed Engl ISSN: 1433-7851 Impact factor: 15.336