Iridium-catalyzed direct asymmetric reductive amination utilizing primary alkyl amines as the N-sources

被引:0
|
作者
Zitong Wu
Wenji Wang
Haodong Guo
Guorui Gao
Haizhou Huang
Mingxin Chang
机构
[1] Northwest A&F University,College of Chemistry & Pharmacy
[2] Northwest A&F University,College of Plant Protection, Shaanxi Research Center of Biopesticide Engineering & Technology
[3] Shandong Normal University,College of Chemistry, Chemical Engineering and Materials Science, Collaborative Innovation Center of Functionalized Probes for Chemical Imaging in Universities of Shandong
来源
关键词
D O I
暂无
中图分类号
学科分类号
摘要
Direct asymmetric reductive amination is one of the most efficient methods for the construction of chiral amines, in which the scope of the applicable amine coupling partners remains a significant challenge. In this study we describe primary alkyl amines effectively serve as the N-sources in direct asymmetric reductive amination catalyzed by the iridium precursor and sterically tunable chiral phosphoramidite ligands. The density functional theory studies of the reaction mechanism imply the alkyl amine substrates serve as a ligand of iridium strengthened by a (N)H-O(P) hydrogen-bonding attraction, and the hydride addition occurs via an outer-sphere transition state, in which the Cl-H H-bonding plays an important role. Through this concise procedure, cinacalcet, tecalcet, fendiline and many other related chiral amines have been synthesized in one single step with high yields and excellent enantioselectivity.
引用
收藏
相关论文
共 50 条
  • [1] Iridium-catalyzed direct asymmetric reductive amination utilizing primary alkyl amines as the N-sources
    Wu, Zitong
    Wang, Wenji
    Guo, Haodong
    Gao, Guorui
    Huang, Haizhou
    Chang, Mingxin
    [J]. NATURE COMMUNICATIONS, 2022, 13 (01)
  • [2] Iridium-catalyzed direct asymmetric reductive amination of aromatic ketones
    Huang, Haizhou
    Wu, Zitong
    Gao, Guorui
    Zhou, Le
    Chang, Mingxin
    [J]. ORGANIC CHEMISTRY FRONTIERS, 2017, 4 (10): : 1976 - 1980
  • [3] Iridium-Catalyzed Direct Reductive Amination of Ketones and Secondary Amines: Breaking the Aliphatic Wall
    Jouffroy, Matthieu
    Nguyen, Thi-Mo
    Cordier, Marie
    Blot, Marielle
    Roisnel, Thierry
    Gramage-Doria, Rafael
    [J]. CHEMISTRY-A EUROPEAN JOURNAL, 2022, 28 (36) : e202201078
  • [4] Practical N-alkylation via homogeneous iridium-catalyzed direct reductive amination
    Wang, Jing
    Wang, Wenji
    Yang, Xiongyu
    Liu, Jingwen
    Huang, Haizhou
    Chang, Mingxin
    [J]. SCIENCE CHINA-CHEMISTRY, 2023, 66 (02) : 518 - 525
  • [5] Iridium-catalyzed asymmetric reductive amination of ketones using an amidophosphite ligand
    Lyubimov, S. E.
    Ozolin, D. V.
    Ivanov, P. Yu.
    Maiorov, K. B.
    Velezheva, V. S.
    Davankov, V. A.
    [J]. RUSSIAN CHEMICAL BULLETIN, 2015, 64 (02) : 318 - 321
  • [6] Iridium-catalyzed asymmetric reductive amination of ketones using an amidophosphite ligand
    S. E. Lyubimov
    D. V. Ozolin
    P. Yu. Ivanov
    K. B. Maiorov
    V. S. Velezheva
    V. A. Davankov
    [J]. Russian Chemical Bulletin, 2015, 64 : 318 - 321
  • [7] Practical N-alkylation via homogeneous iridium-catalyzed direct reductive amination
    Jing Wang
    Wenji Wang
    Xiongyu Yang
    Jingwen Liu
    Haizhou Huang
    Mingxin Chang
    [J]. Science China Chemistry, 2023, 66 : 518 - 525
  • [8] Practical N-alkylation via homogeneous iridium-catalyzed direct reductive amination
    Jing Wang
    Wenji Wang
    Xiongyu Yang
    Jingwen Liu
    Haizhou Huang
    Mingxin Chang
    [J]. Science China Chemistry, 2023, 66 (02) : 518 - 525
  • [9] Iridium-catalyzed reductive amination of carboxylic acids
    Ouyang, Lu
    Miao, Rui
    Yang, Zhanhui
    Luo, Renshi
    [J]. JOURNAL OF CATALYSIS, 2023, 418 : 283 - 289
  • [10] Iridium-catalyzed enantioselective reductive amination of aromatic ketones
    Liu, Ruixia
    Li, Bin
    Han, Jingkuo
    Zhang, Dongxu
    Li, Muqiong
    Yao, Lin
    Zhao, Wei
    Wang, Qiaofeng
    Jiang, Ru
    Nie, Huifang
    [J]. CATALYSIS SCIENCE & TECHNOLOGY, 2020, 10 (16) : 5448 - 5452