Half-Sandwich Ruthenium Carbene Complexes Link trans-Hydrogenation and gem-Hydrogenation of Internal Alkynes.
Publication type: Journal Article
Publication date: 2018-02-16
scimago Q1
wos Q1
SJR: 5.554
CiteScore: 22.5
Impact factor: 15.6
ISSN: 00027863, 15205126
PubMed ID:
29429344
General Chemistry
Catalysis
Biochemistry
Colloid and Surface Chemistry
Abstract
The hydrogenation of internal alkynes with [Cp*Ru]-based catalysts is distinguished by an unorthodox stereochemical course in that E-alkenes are formed by trans-delivery of the two H atoms of H2. A combined experimental and computational study now provides a comprehensive mechanistic picture: a metallacyclopropene (η2-vinyl complex) is primarily formed, which either evolves into the E-alkene via a concerted process or reacts to give a half-sandwich ruthenium carbene; in this case, one of the C atoms of the starting alkyne is converted into a methylene group. This transformation represents a formal gem-hydrogenation of a π-bond, which has hardly any precedent. The barriers for trans-hydrogenation and gem-hydrogenation are similar: whereas DFT predicts a preference for trans-hydrogenation, CCSD(T) finds gem-hydrogenation slightly more facile. The carbene, once formed, will bind a second H2 molecule and evolve to the desired E-alkene, a positional alkene isomer or the corresponding alkane; this associative pathway explains why double bond isomerization and over-reduction compete with trans-hydrogenation. The computed scenario concurs with para-hydrogen-induced polarization transfer (PHIP) NMR data, which confirm direct trans-delivery of H2, the formation of carbene intermediates by gem-hydrogenation, and their evolution into product and side products alike. Propargylic -OR (R = H, Me) groups exert a strong directing and stabilizing effect, such that several carbene intermediates could be isolated and characterized by X-ray diffraction. The gathered information spurred significant preparative advances: specifically, highly selective trans-hydrogenations of propargylic alcohols are reported, which are compatible with many other reducible functional groups. Moreover, the ability to generate metal carbenes by gem-hydrogenation paved the way for noncanonical hydrogenative cyclopropanations, ring expansions, and cycloadditions.
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142
Total citations:
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Citations from 2025:
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Guthertz A. et al. Half-Sandwich Ruthenium Carbene Complexes Link trans-Hydrogenation and gem-Hydrogenation of Internal Alkynes. // Journal of the American Chemical Society. 2018. Vol. 140. No. 8. pp. 3156-3169.
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Guthertz A., Leutzsch M., Wolf L., Gupta P., Rummelt S. M., Goddard R. H., Farès C., Thiel W., Fürstner A. Half-Sandwich Ruthenium Carbene Complexes Link trans-Hydrogenation and gem-Hydrogenation of Internal Alkynes. // Journal of the American Chemical Society. 2018. Vol. 140. No. 8. pp. 3156-3169.
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TY - JOUR
DO - 10.1021/jacs.8b00665
UR - https://doi.org/10.1021/jacs.8b00665
TI - Half-Sandwich Ruthenium Carbene Complexes Link trans-Hydrogenation and gem-Hydrogenation of Internal Alkynes.
T2 - Journal of the American Chemical Society
AU - Guthertz, Alexandre
AU - Leutzsch, Markus
AU - Wolf, Lawrence
AU - Gupta, Puneet
AU - Rummelt, Stephan M
AU - Goddard, Richard H.
AU - Farès, Christophe
AU - Thiel, Walter
AU - Fürstner, Alois
PY - 2018
DA - 2018/02/16
PB - American Chemical Society (ACS)
SP - 3156-3169
IS - 8
VL - 140
PMID - 29429344
SN - 0002-7863
SN - 1520-5126
ER -
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@article{2018_Guthertz,
author = {Alexandre Guthertz and Markus Leutzsch and Lawrence Wolf and Puneet Gupta and Stephan M Rummelt and Richard H. Goddard and Christophe Farès and Walter Thiel and Alois Fürstner},
title = {Half-Sandwich Ruthenium Carbene Complexes Link trans-Hydrogenation and gem-Hydrogenation of Internal Alkynes.},
journal = {Journal of the American Chemical Society},
year = {2018},
volume = {140},
publisher = {American Chemical Society (ACS)},
month = {feb},
url = {https://doi.org/10.1021/jacs.8b00665},
number = {8},
pages = {3156--3169},
doi = {10.1021/jacs.8b00665}
}
Cite this
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Guthertz, Alexandre, et al. “Half-Sandwich Ruthenium Carbene Complexes Link trans-Hydrogenation and gem-Hydrogenation of Internal Alkynes..” Journal of the American Chemical Society, vol. 140, no. 8, Feb. 2018, pp. 3156-3169. https://doi.org/10.1021/jacs.8b00665.