A theoretical study on the mechanisms of intermolecular hydroacylation of aldehyde catalyzed by neutral and cationic rhodium complexes

被引:0
|
作者
WANG Min [1 ]
ZHANG Xin [1 ]
CHEN Zhuo [1 ]
TANG YanHui [2 ]
LEI Ming [1 ]
机构
[1] State Key Laboratory of Chemical Resource Engineering,Institute of Materia Medica,College of Science,Beijing University of Chemical Technology
[2] College of Materials Science and Engineering,Beijing Institute of Fashion Technology
基金
中国国家自然科学基金;
关键词
C–H activation; DFT; hydroacylation; metal organic cooperative catalyst; reaction mechanism; rhodium complex;
D O I
暂无
中图分类号
O641 [结构化学];
学科分类号
070304 ; 081704 ;
摘要
In this paper, we used density functional theory(DFT) computations to study the mechanisms of the hydroacylation reaction of an aldehyde with an alkene catalyzed by Wilkinson’s catalyst and an organic catalyst 2-amino-3-picoline in cationic and neutral systems. An aldehyde’s hydroacylation includes three stages: the C–H activation to form rhodium hydride(stage I), the alkene insertion into the Rh–H bond to give the Rh-alkyl complex(stage II), and the C–C bond formation(stage III). Possible pathways for the hydroacylation originated from the trans and cis isomers of the catalytic cycle. In this paper, we discussed the neutral and cationic pathways. The rate-determining step is the C–H activation step in neutral system but the reductive elimination step in the cationic system. Meanwhile, the alkyl group migration-phosphine ligand coordination pathway is more favorable than the phosphine ligand coordination-alkyl group migration pathway in the C–C formation stage. Furthermore, the calculated results imply that an electron-withdrawing group may decrease the energy barrier of the C–H activation in the benzaldehyde hydroacylation.
引用
收藏
页码:1264 / 1275
页数:12
相关论文
共 50 条
  • [1] A theoretical study on the mechanisms of intermolecular hydroacylation of aldehyde catalyzed by neutral and cationic rhodium complexes
    Wang Min
    Zhang Xin
    Chen Zhuo
    Tang YanHui
    Lei Ming
    SCIENCE CHINA-CHEMISTRY, 2014, 57 (09) : 1264 - 1275
  • [2] A theoretical study on the mechanisms of intermolecular hydroacylation of aldehyde catalyzed by neutral and cationic rhodium complexes
    Min Wang
    Xin Zhang
    Zhuo Chen
    YanHui Tang
    Ming Lei
    Science China Chemistry, 2014, 57 : 1264 - 1275
  • [3] A theoretical study on the mechanisms of intermolecular hydroacylation of aldehyde catalyzed by neutral and cationic rhodium complexes
    WANG Min
    ZHANG Xin
    CHEN Zhuo
    TANG YanHui
    LEI Ming
    Science China(Chemistry), 2014, 57 (09) : 1264 - 1275
  • [4] A theoretical study on the intermolecular hydroacylation of alkyne catalyzed by cationic rhodium complex
    Chung, LW
    Wu, YD
    JOURNAL OF THEORETICAL & COMPUTATIONAL CHEMISTRY, 2005, 4 : 737 - 749
  • [5] A theoretical study on the trans-addition intramolecular hydroacylation of 4-alkynals catalyzed by cationic rhodium complexes
    Chung, Lung Wa
    Wiest, Olaf
    Wu, Yun-Dong
    JOURNAL OF ORGANIC CHEMISTRY, 2008, 73 (07): : 2649 - 2655
  • [6] Rhodium-catalyzed intermolecular ketone hydroacylation
    Schenthal, Kyle B.
    Kou, Kevin G. M.
    Dong, Vy M.
    ABSTRACTS OF PAPERS OF THE AMERICAN CHEMICAL SOCIETY, 2013, 246
  • [7] Rhodium (I) catalyzed intermolecular hydroacylation.
    Sapmaz, S
    Willis, MC
    ABSTRACTS OF PAPERS OF THE AMERICAN CHEMICAL SOCIETY, 2001, 222 : U59 - U59
  • [8] Rhodium-catalyzed enantioselective intermolecular hydroacylation reactions
    Gonzalez-Rodriguez, Carlos
    Willis, Michael C.
    PURE AND APPLIED CHEMISTRY, 2011, 83 (03) : 577 - 585
  • [9] An enamine controlling group for rhodium-catalyzed intermolecular hydroacylation
    Straker, Robert N.
    Formica, Michele
    Lupton, James D.
    Niu, Jingze
    Willis, Michael C.
    TETRAHEDRON, 2018, 74 (38) : 5408 - 5414
  • [10] Mechanism of intermolecular hydroacylation of vinylsilanes catalyzed by a rhodium(I) olefin complex: a DFT study
    Meng, Qingxi
    Shen, Wei
    Li, Ming
    JOURNAL OF MOLECULAR MODELING, 2012, 18 (03) : 1229 - 1239