Issue 48, 2020

Theoretical study on the photochemistry of furoylazides: Curtius rearrangement and subsequent reactions

Abstract

Organic azides are an efficient source of nitrenes, which serve as vigorous intermediates in many useful organic reactions. In this work, the complete active space self-consistent field (CASSCF) and its second-order perturbation (CASPT2) methods were employed to study the photochemistry of 2-furoylazide 1 and 3-furoylazide 5, including the Curtius rearrangement to two furylisocyanates (3 and 7) and subsequent reactions to the final product cyanoacrolein 9. Our calculations show that the photoinduced Curtius rearrangement of the two furoylazides takes place through similar stepwise mechanisms via two bistable furoylnitrenes 2 and 6. However, the decarbonylation and ring-opening process of 7 to 9 prefers a stepwise mechanism involving the 3-furoylnitrene intermediate 8, while 3 to 9 goes in a concerted asynchronous way without the corresponding 2-furoylnitrene intermediate 4. Importantly, we revealed that several conical intersections play key roles in the photochemistry of furoylazides. Our results are not only consistent and also make clear the experimental observations (X. Zeng, et al., J. Am. Chem. Soc., 2018, 140, 10–13), but additionally provide important information on the chemistry of furoylazides and nitrenes.

Graphical abstract: Theoretical study on the photochemistry of furoylazides: Curtius rearrangement and subsequent reactions

Supplementary files

Article information

Article type
Paper
Submitted
22 Oct 2020
Accepted
24 Nov 2020
First published
24 Nov 2020

Phys. Chem. Chem. Phys., 2020,22, 28317-28324

Theoretical study on the photochemistry of furoylazides: Curtius rearrangement and subsequent reactions

J. Li, M. Liu, Q. Li and Z. Li, Phys. Chem. Chem. Phys., 2020, 22, 28317 DOI: 10.1039/D0CP05539E

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