The thermal rearrangements of benzotriazole 1 to fulvenimine 4 and 1H-benzazirine 7 are investigated at DFT and CASPT2 levels of theory. Ring opening of benzotriazole 1 to 2-diazo-cyclohexadienimine 2 followed by N elimination affords Z- and E-2-iminocyclohexadienylidenes 3, which have triplet ground states (A″). The open-shell singlet (OSS) (A″) and closed-shell singlet (CSS) (A') of 3 lie ∼15 and 40 kcal/mol higher in free energy, respectively. The OSS 3 (A″) is best described as a 1,3-diradical, whereas the CSS (A') has the character of a carbene. A hetero-Wolff rearrangement of OSS 3 yields fulvenimine 4, which is a precursor of cyanocyclopentadiene 5, with a calculated activation barrier of 38 kcal/mol at the CASPT2(8,8) level, whereby there is a surface crossing from the OSS to the CSS near the transition state. The barrier for cyclization to 1H-benzo[b]azirine 7 is only ∼13 kcal/mol. Therefore, reaction paths involving the singlet iminocyclohexadienylidene diradicals 3 will necessarily cause equilibration with 1H-benzazirine 7 prior to ring contraction to iminofulvene 4 and cyanocyclopentadiene 5, in agreement with experimental observations based on C labeling. The thermolysis of 1-acetylbenzotriazole 7 leads to the analogous N-acetyl-diazocyclohexadienimines 8, N-acetyliminocyclohexadienylidene diradicals 9, and N-acetylfulvenimine 10. The E-N-acetyliminocyclohexadienylidene E9 ring closes to the N-acetyl-1H-benzazirine 11 prior to ring contraction to N-acetylfulvenimine 10, and the Z-N-acetyl-2-diazocyclohexadienimine Z8 ring closes to 2-methylbenzoxazole 12. 1H-benzazirines are predicted to be spectroscopically observable species.

Download full-text PDF

Source
http://dx.doi.org/10.1021/acs.jpca.7b05325DOI Listing

Publication Analysis

Top Keywords

hetero-wolff rearrangement
8
oss a″
8
prior ring
8
ring contraction
8
ring closes
8
ring
5
iminocyclohexadienylidenes carbenes
4
carbenes diradicals?
4
diradicals? hetero-wolff
4
rearrangement benzotriazoles
4

Similar Publications

CASPT2, CASSCF and non-adiabatic molecular dynamics (NAMD) studies on the low-lying electronic states of 1H-1,2,3-triazole photolysis.

Phys Chem Chem Phys

November 2019

Grupo de Química Teórica, Universidade Federal do Rio Grande do Sul - Instituto de Química, Avenida Bento Gonçalves, 9500, CP 15003, CEP 91501970, Porto Alegre, RS, Brazil.

The photolysis mechanisms of 1H-1,2,3-triazole and 1H-1,2,3-benzotriazole were elucidated by employing multiconfigurational methods (CASSCF and CASPT2). The potential energy curves and crossing points for the low-lying excited states were analyzed. In addition to the static electronic structure calculations, non-adiabatic molecular dynamics (NAMD) was propagated at the CASSCF level using SHARC (Surface Hopping including ARbitrary Couplings) dynamics in order to verify the proposed static picture, thereby understanding the possible reaction paths and the time scale of the photo-induced events.

View Article and Find Full Text PDF

The thermal rearrangements of benzotriazole 1 to fulvenimine 4 and 1H-benzazirine 7 are investigated at DFT and CASPT2 levels of theory. Ring opening of benzotriazole 1 to 2-diazo-cyclohexadienimine 2 followed by N elimination affords Z- and E-2-iminocyclohexadienylidenes 3, which have triplet ground states (A″). The open-shell singlet (OSS) (A″) and closed-shell singlet (CSS) (A') of 3 lie ∼15 and 40 kcal/mol higher in free energy, respectively.

View Article and Find Full Text PDF

Want AI Summaries of new PubMed Abstracts delivered to your In-box?

Enter search terms and have AI summaries delivered each week - change queries or unsubscribe any time!