| Literature DB >> 27686744 |
Dong-Yu Wang1,2, Masatoshi Kawahata3, Ze-Kun Yang1, Kazunori Miyamoto1, Shinsuke Komagawa4, Kentaro Yamaguchi3, Chao Wang1,2, Masanobu Uchiyama1,2.
Abstract
Cross-coupling is a fundamental reaction in the synthesis of functional molecules, and has been widely applied, for example, to phenols, anilines, alcohols, amines and their derivatives. Here we report the Ni-catalysed Stille cross-coupling reaction of quaternary ammonium salts via C-N bond cleavage. Aryl/alkyl-trimethylammonium salts [Ar/R-NMe3]+ react smoothly with arylstannanes in 1:1 molar ratio in the presence of a catalytic amount of commercially available Ni(cod)2 and imidazole ligand together with 3.0 equivalents of CsF, affording the corresponding biaryl with broad functional group compatibility. The reaction pathway, including C-N bond cleavage step, is proposed based on the experimental and computational findings, as well as isolation and single-crystal X-ray diffraction analysis of Ni-containing intermediates. This reaction should be widely applicable for transformation of amines/quaternary ammonium salts into multi-aromatics.Entities:
Year: 2016 PMID: 27686744 PMCID: PMC5056441 DOI: 10.1038/ncomms12937
Source DB: PubMed Journal: Nat Commun ISSN: 2041-1723 Impact factor: 14.919
Figure 1Amines.
Various functional molecules containing amine moieties.
Stille cross-coupling reactions of aryltrimethylammonium salts 1 with aryltrimethylstannanes 2, leading to biaryl products 3, catalyzed by Ni(cod)2 and ICy ligand.
Figure 2Synthetic applicability.
(a,b) Sequential cross-coupling for regio-controlled synthesis of p-terphenyl derivative; (c) Selective phenylation of NMe2 group in Padimate A; (d) Cross-coupling between benzyltrimethylammonium salt 4a and stannane 2j catalyzed by Ni(cod)2 and ICy ligand.
Mechanistic aspects of Ni-mediated C–N cleavage.
ICy, 1,3-dicyclohexylimidazol-2-ylidene.
Figure 3Mechanistic study.
(a) Trapping of Ni-intermediates after C–N cleavage. (b, c) Crystal structures images.
Influence of fluoride on the present coupling reaction.
N.D., not determined; r.t., room temperature.
Figure 4Reaction route located by means of DFT calculations.
Optimizations: B3LYP/LANL2DZ (Ni, Sn)&6-31G* (H, C, N and F). Single-point energies: M06(polarizable continuum model, solvent=1, 4-dioxane)/SDD (Ni, Sn)&6-311++G** (H, C, N and F).
Figure 5Transmetalation step.
DFT calculation for the transmetalation step in the presence and absence of fluoride. See Fig. 4 for details.