| Literature DB >> 28262737 |
Jiwei Wang1, Xiaoming Cao2, Shichang Lv1, Caiyun Zhang1, Sheng Xu1, Min Shi1,3, Jun Zhang1.
Abstract
Metal carbenes are often proposed as reactive intermediates in the late transitionEntities:
Year: 2017 PMID: 28262737 PMCID: PMC5343500 DOI: 10.1038/ncomms14625
Source DB: PubMed Journal: Nat Commun ISSN: 2041-1723 Impact factor: 14.919
Figure 1Selected metal carbene species involved in late transition metal-mediated transformations.
(a) Late transition metal carbenes generated by decomposition of the diazo precursors. (b) Proposed late transition metal carbenes in catalytic cycloisomerization of alkynes. (c) Gold and copper carbene intermediates isolated in gold- and copper-catalysed cyclization of N-alkynyl formamidines.
Figure 2Cu-mediated cyclization of N-alkynyl formamidine.
(a) Cu-promoted amidiniumation of N-alkynyl formamidine 1. (b) Cu-catalysed cyclization oxidation of N-alkynyl formamidine 1 and transformation of copper intermediate 2 into compound 6.
Figure 3Molecular structure of 6 and 7.
(a) Molecular structure of 6 with 20% probability. H atoms in aryl rings have been omitted for clarity. (b) Molecular structure of 7·CH2Cl2 with 20% probability. The counterion (NTf2−) and CH2Cl2 in 7 and H atoms in aryl rings have been omitted for clarity.
Figure 4Formation of compound 6 and copper carbene 7 and related mesoionic compound G.
(a) IPr*CuNTf2-catalysed cyclization oxidation of formamidine 1 and related copper carbene 7. (b) Copper carbene complex 7 bearing mesoionic imidazolium-4-olate ring and related mesoionic 1,2,3-triazolium-4-olate G.
Figure 5Preparation of gold carbene 8 and related heteroatom-stabilized gold carbenes 9–13.
(a) Au-catalysed cyclization oxidation of N-alkynyl formamidine 1 and gold carbene intermediate 8. (b) Heteroatom-stabilized gold carbenes 9–13.
Figure 6Molecular structure of 8 with 20% probability.
The counterion (OTf−) and H atoms in aryl rings have been omitted for clarity.
Figure 7Known gold carbene complexes 14 and 15 and comparison of them with gold carbene 8.
(a) Previously reported gold carbene complexes 14 (top) and 15 (bottom) prepared through gold-mediated cyclization of allenes. (b) Comparison of related bond lengths and characteristic NMR spectroscopic data of complex 8 with those of reference complexes 15 and 15a; see ref. 63. (c) Comparison of Mayer bond order of complex 8 with those of reference complexes 14 and 15; see refs 63 and 62.
Figure 8C1-stabilizing IBOs of gold complex 8.
Numbers in parentheses indicate the fraction of electrons of the doubly occupied orbital assigned to the individual atoms. (a) Coordinative bond between the lone pair electrons of C1 and Au. (b) Delocalized π bond between C1 and phenyl ring. (c) d-π backbond between Au and C1. (d) Delocalized π bond between C1 and imidazolium-4-olate ring.
Figure 9Cu-activated amidiniumation of formamidine 17 having a terminal alkyne in the presence of a base.
CuBr-mediated cyclization of formamidine 17 in the presence of N(iPr)2Et as a base afforded a 6-membered vinylcopper species 18, which could be transformed into a divinylcopper species 19. Vinylcopper 18 is prone to undergo carbene oxidation to give a zwitterionic oxo-adduct 20, suggesting that 18 is more like a copper carbene species 18′.
Figure 10Molecular structure of 19 with 20% probability.
H atoms in aryl rings have been omitted for clarity.