Azetidinylideneketenimines as a Multimodal Synthetic Platform: Coordination Chemistry and Cycloaddition‐Triggered Transformations
Abstract
ABSTRACT Methyleneketenimines, due to their highly unsaturated and CN‐cumulenic nature, represent a rare class of heterocumulenes with potential as building blocks for pharmaceuticals and molecular electronics. However, their systematic chemistry has been limited. Herein, we report a concise C═C═N homologation reaction, driven by the strain release of the three‐membered‐ring carbene, bis(diisopropylamino)cyclopropenylidene ( BAC ), which unlocks rapid and scalable access to a series of isolable methyleneketenimines, including the first example of a bis(methyleneketenimine), featuring terminal azetidine moieties (azetidinylideneketenimines). Mechanistic studies, supported by control experiments and computational analysis, elucidate the important role of a methyleneketeniminyl carbene intermediate in forming the target heterocumulene. Spectroscopic and electrochemical investigations show that the visible‐light absorption and redox potentials correlate with the degree of N ‐substituent π‐conjugation. Most importantly, the highly polarized nature of the C═C═C═N framework enables a multimodal reactivity platform, spanning from unprecedented coordination to transition metals (Au(I), Rh(I)), CO 2 splitting, alkyne C≡C bond insertion, to divergent skeletal rearrangements via (2 + 2) or (3 + 2) cycloaddition. This work establishes methyleneketenimines as a versatile toolkit for accessing complex heterocycles and novel organometallic complexes.
Article Details
Authors (4)
Taichi Koike
Department of Chemistry Graduate School of Science Tohoku University Sendai Japan
Keisuke Ito
Shintaro Ishida
Takeaki Iwamoto
Department of Chemistry Graduate School of Science Tohoku University Sendai Japan