Hydrogen Bonding Shuts Down Tunneling in Hydroxycarbenes A Gas-Phase Study by Tandem-Mass Spectrometry, Infrared Ion Spectroscopy, and Theory
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| Publication date | 07-06-2023 |
| Journal | Journal of the American Chemical Society |
| Volume | Issue number | 145 | 22 |
| Pages (from-to) | 12124-12135 |
| Number of pages | 12 |
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| Abstract |
Hydroxycarbenes can be generated and structurally characterized in the gas phase by collision-induced decarboxylation of α-keto carboxylic acids, followed by infrared ion spectroscopy. Using this approach, we have shown earlier that quantum-mechanical hydrogen tunneling (QMHT) accounts for the isomerization of a charge-tagged phenylhydroxycarbene to the corresponding aldehyde in the gas phase and above room temperature. Herein, we report the results of our current study on aliphatic trialkylammonio-tagged systems. Quite unexpectedly, the flexible 3-(trimethylammonio)propylhydroxycarbene turned out to be stable-no H-shift to either aldehyde or enol occurred. As supported by density functional theory calculations, this novel QMHT inhibition is due to intramolecular H-bonding of a mildly acidic α-ammonio C-H bonds to the hydroxyl carbene's C-atom (C:···H-C). To further support this hypothesis, (4-quinuclidinyl)hydroxycarbenes were synthesized, whose rigid structure prevents this intramolecular H-bonding. The latter hydroxycarbenes underwent "regular" QMHT to the aldehyde at rates comparable to, e.g., methylhydroxycarbene studied by Schreiner et al. While QMHT has been shown for a number of biological H-shift processes, its inhibition by H-bonding disclosed here may serve for the stabilization of highly reactive intermediates such as carbenes, even as a mechanism for biasing intrinsic selectivity patterns. |
| Document type | Article |
| Note | With supplementary file. |
| Language | English |
| Related dataset | CCDC 2220665: Experimental Crystal Structure Determination CCDC 2220666: Experimental Crystal Structure Determination |
| Published at | https://doi.org/10.1021/jacs.3c01698 |
| Other links | https://www.scopus.com/pages/publications/85162030592 |
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