Hydrosilylation of Terminal Alkynes Catalyzed by a ONO-Pincer Iridium(III) Hydride Compound: Mechanistic Insights into the Hydrosilylation and Dehydrogenative Silylation Catalysis

被引:50
|
作者
Perez-Torrente, Jesus J. [1 ]
Duc Hanh Nguyen [2 ]
Victoria Jimenez, M. [1 ]
Javier Modrego, F. [1 ]
Puerta-Oteo, Raquel [1 ]
Gomez-Bautista, Daniel [1 ]
Iglesias, Manuel [1 ]
Oro, Luis A. [1 ]
机构
[1] Univ Zaragoza, Fac Ciencias, Inst Sintesis Quim & Catalisis Homogenea ISQCH, Dept Quim Inorgan,CSIC, C Pedro Cerbuna 12, E-50009 Zaragoza, Spain
[2] Univ Artois, CNRS, ENSCL, Univ Lille,Cent Lille,UMR 8181,UCCS, F-59000 Lille, France
关键词
C-H ACTIVATION; N-HETEROCYCLIC CARBENES; STEREOSELECTIVE HYDROSILYLATION; INTERMOLECULAR HYDROSILYLATION; SELECTIVE HYDROSILYLATION; ASYMMETRIC HYDROGENATION; TRANS-HYDROSILYLATION; RUTHENIUM COMPLEXES; OXIDATIVE ADDITION; DONOR LIGAND;
D O I
10.1021/acs.organomet.6b00471
中图分类号
O61 [无机化学];
学科分类号
070301 ; 081704 ;
摘要
The catalytic activity in the hydrosilylation of terminal alkynes by the unsaturated hydrido iridium(III) compound [IrH(kappa(3)-hqca)(coe)] (1), which contains the rigid asymmetrical dianionic ONO pincer ligand 8-oxidoquinoline-2-carboxylate, has been studied. A range of aliphatic and aromatic 1-alkynes has been efficiently reduced using various hydrosilanes. Hydrosilylation of the linear 1-alkynes hex-1-yne and oct-1-yne gives a good selectivity toward the beta-(Z)-vinylsilane product, while for the bulkier t-Bu-C CH a reverse selectivity toward the beta-(E)-vinylsilane and significant amounts of alkene, from a competitive dehydrogenative silylation, has been observed. Compound 1, unreactive toward silanes, reacts with a range of terminal alkynes RC CH, affording the unsaturated eta(1)-alkenyl complexes [Ir(kappa(3)-hqca)(E-CH=CHR)(coe)] in good yield. These species are able to coordinate monodentate neutral ligands such as PPh3 and pyridine, or CO in a reversible way, to yield octahedral derivatives. Further mechanistic aspects of the hydrosilylation process have been studied by DFT calculations. The catalytic cycle passes through Ir(III) species with an iridacyclopropene (eta(2)-vinylsilane) complex as the key intermediate. It has been found that this species may lead both to the dehydrogenative silylation products, via a beta-elimination process, and to a hydrosilylation cycle. The beta-elimination path has a higher activation energy than hydrosilylation. On the other hand, the selectivity to the vinylsilane hydrosilylation products can be accounted for by the different activation energies involved in the attack of a silane molecule at two different faces of the iridacyclopropene ring to give eta(1)-vinylsilane complexes with either an E or Z configuration. Finally, proton transfer from a eta(2)-silane to a eta(1)-vinylsilane ligand results in the formation of the corresponding beta-(Z)- and beta-(E)-vinylsilane isomers, respectively.
引用
收藏
页码:2410 / 2422
页数:13
相关论文
共 22 条
  • [11] Ligand relay catalysis for cobalt-catalyzed sequential hydrosilylation and hydrohydrazidation of terminal alkynes
    Sun, Yufeng
    Guo, Jun
    Shen, Xuzhong
    Lu, Zhan
    NATURE COMMUNICATIONS, 2022, 13 (01)
  • [12] Theoretical Study of POCOP-Pincer Iridium(III)/Iron(II) Hydride Catalyzed Hydrosilylation of Carbonyl Compounds: Hydride Not Involved in the Iridium(III) System but Involved in the Iron(II) System
    Wang, Wenmin
    Gu, Piao
    Wang, Yiou
    Wei, Haiyan
    ORGANOMETALLICS, 2014, 33 (04) : 847 - 857
  • [13] Hydride Source in Ethers Hydrosilylation Reaction Catalyzed by Brookhart's Ir(III) Pincer Complex
    Zhang Qi
    Liu Ao
    Yu Haizhu
    Fu Yao
    ACTA CHIMICA SINICA, 2018, 76 (02) : 113 - 120
  • [14] Insight into the Mechanism of Carbonyl Hydrosilylation Catalyzed by Brookhart's Cationic Iridium(III) Pincer Complex
    Metsaenen, Toni T.
    Hrobarik, Peter
    Klare, Hendrik F. T.
    Kaupp, Martin
    Oestreich, Martin
    JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 2014, 136 (19) : 6912 - 6915
  • [15] Iridium-catalyzed Markovnikov hydrosilylation of terminal alkynes achieved by using a trimethylsilyl-protected trihydroxysilane
    Xie, Xingze
    Zhang, Xueyan
    Gao, Weiwei
    Meng, Congcong
    Wang, Xiaojun
    Ding, Shengtao
    COMMUNICATIONS CHEMISTRY, 2019, 2 (1)
  • [16] Iridium-catalyzed Markovnikov hydrosilylation of terminal alkynes achieved by using a trimethylsilyl-protected trihydroxysilane
    Xingze Xie
    Xueyan Zhang
    Weiwei Gao
    Congcong Meng
    Xiaojun Wang
    Shengtao Ding
    Communications Chemistry, 2
  • [17] Copper-Catalyzed Formal Dihydrosilylation of Terminal Alkynes: A C(sp)-H Silylation-Hydrosilylation-Hydrogenation Sequence
    Li, Jia
    Fang, Siqiang
    Ge, Shaozhong
    ACS CATALYSIS, 2024, 14 (10): : 7996 - 8004
  • [18] Efficient and Selective Hydrosilylation of Secondary and Tertiary Amides Catalyzed by an Iridium(III) Metallacycle: Development and Mechanistic Investigation
    Corre, Yann
    Trivelli, Xavier
    Capet, Frederic
    Djukic, Jean-Pierre
    Agbossou-Niedercorn, Francine
    Michon, Christophe
    CHEMCATCHEM, 2017, 9 (11) : 2009 - 2017
  • [19] Experimental and Computational Studies of the Ruthenium-Catalyzed Hydrosilylation of Alkynes: Mechanistic Insights into the Regio- and Stereoselective Formation of Vinylsilanes
    Gao, Ruili
    Pahls, Dale R.
    Cundari, Thomas R.
    Yi, Chae S.
    ORGANOMETALLICS, 2014, 33 (23) : 6937 - 6944
  • [20] Carboxylate-Assisted β-(Z) Stereoselective Hydrosilylation of Terminal Alkynes Catalyzed by a Zwitterionic Bis-NHC Rhodium(III) Complex
    Puerta-Oteo, Raquel
    Munarriz, Julen
    Polo, Victor
    Victoria Jimenez, M.
    Perez-Torrente, Jesus J.
    ACS CATALYSIS, 2020, 10 (13): : 7367 - 7380