Nonlinear Effects in Asymmetric Catalysis by Design: Concept, Synthesis, and Applications

被引:14
|
作者
Mayer, Lena C. [1 ]
Heitsch, Simone [1 ]
Trapp, Oliver [1 ]
机构
[1] Ludwig Maximilians Univ Munchen, Dept Chem, D-81377 Munich, Germany
基金
欧洲研究理事会;
关键词
CONTROLLED BIDIRECTIONAL ENANTIOSELECTIVITY; STATIONARY-PHASE; PHOSPHORAMIDITE LIGAND; ROTATIONAL BARRIERS; SYMMETRY-BREAKING; BIPHEP LIGANDS; RATE CONSTANTS; AMPLIFICATION; HYDROGENATION; AUTOCATALYSIS;
D O I
10.1021/acs.accounts.2c00557
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
CONSPECTUS: Asymmetric synthesis constitutes a key technology for the preparation of enantiomerically pure compounds as well as for the selective control of individual stereocenters in the synthesis of complex compounds. It is thus of extraordinary importance for the synthesis of chiral drugs, dietary supplements, flavors, and fragrances, as well as novel materials with tunable and reconfigurable chiroptical properties or the assembly of complex natural products. Typically, enantiomerically pure catalysts are used for this purpose. To prepare enantiomerically pure ligands or organocatalysts, one can make use of the natural chiral pool. Ligands and organocatalysts with an atropisomeric biphenyl and binaphthyl system have become popular, as they are configurationally stable and contain a C2symmetric skeleton, which has been found to be particularly privileged. For catalysts with opposite configurations, both product enantiomers can be obtained. Configurationally flexible biphenyl systems initially appeared to be unsuitable for this purpose, as they racemize after successful enantiomer separation and thus are neither storable nor afford a reproducible enantioselectivity. However, there are strategies that exploit the dynamics of such ligands to stereoconvergently enrich one of the catalyst enantiomers. This can be achieved, for example, by coordinating an enantiomerically pure additive to a ligand-metal complex, which results in deracemization of the configurationally flexible biphenyl system, thereby enriching the thermodynamically preferred diastereomer. In this Account, we present our strategy to design stereochemically flexible catalysts that combine the properties of supramolecular recognition, stereoconvergent alignment, and catalysis. Such systems are capable to recognize the chirality of the target product, leading to an increase in enantioselectivity during asymmetric catalysis. We have systematically developed and investigated these smart catalyst systems and have found ways to specifically design and synthesize them for various applications. In addition to (i) reaction product-induced chiral amplification, we have developed systems with (ii) intermolecular and (iii) intramolecular recognition, and successfully applied them in asymmetric catalysis. Our results pave the way for new applications such as temperature-controlled enantioselectivity, controlled inversion of enantioselectivity with the same chirality of the recognition unit, generation of positive nonlinear effects, and targeted design of autocatalytic systems through dynamic formation of transient catalysts. Understanding such systems is of enormous importance for catalytic processes leading to symmetry breaking and amplification of small imbalances of enantiomers and offer a possible explanation of homochirality of biological systems. In addition, we are learning how to target supramolecular interactions to enhance enantioselectivities in asymmetric catalysis through secondary double stereocontrol. Configurationally flexible catalysts will enable future resource-efficient development of asymmetric syntheses, as enantioselectivities can be fully switched by stereoselective alignment of the stereochemically flexible ligand core on demand.
引用
收藏
页码:3345 / 3361
页数:17
相关论文
共 50 条
  • [31] Chiral aldehyde catalysis: a highly promising concept in asymmetric catalysis
    Liu-Zhu Gong
    Science China Chemistry, 2019, (01) : 3 - 4
  • [32] Kinetic rationalization of nonlinear effects in asymmetric catalysis based on phase behavior
    Klussmann, Martin
    Mathew, Suju R.
    Iwamura, Hiroshi
    Wells, David H., Jr.
    Armstrong, Alan
    Blackmond, Donna G.
    ANGEWANDTE CHEMIE-INTERNATIONAL EDITION, 2006, 45 (47) : 7989 - 7992
  • [33] Kinetic implications of nonlinear effects in asymmetric synthesis
    Blackmond, DG
    JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 1998, 120 (51) : 13349 - 13353
  • [34] Nonlinear effects in asymmetric synthesis: Recent results
    Kagan, HB
    ABSTRACTS OF PAPERS OF THE AMERICAN CHEMICAL SOCIETY, 1996, 211 : 316 - ORGN
  • [35] Synthesis of P-Chiral Phosphine Ligands and Their Applications in Asymmetric Catalysis
    Imamoto, Tsuneo
    Sugiya, Masashi
    Oohara, Nobuhiko
    Tamura, Ken
    JOURNAL OF SYNTHETIC ORGANIC CHEMISTRY JAPAN, 2014, 72 (10) : 1084 - 1096
  • [36] Synthesis and applications of a new class of phosphorus donor ligands for asymmetric catalysis
    Tye, H
    Smyth, D
    Eldred, C
    Wills, M
    CHEMICAL COMMUNICATIONS, 1997, (11) : 1053 - 1054
  • [37] Applications of ortho-Quinone Methide Intermediates in Catalysis and Asymmetric Synthesis
    Pathak, Tejas P.
    Sigman, Matthew S.
    JOURNAL OF ORGANIC CHEMISTRY, 2011, 76 (22): : 9210 - 9215
  • [38] Recent advances in synthesis of planar chiral ferrocenes and their applications in asymmetric catalysis
    Zhang, JL
    Dong, CE
    Han, J
    Yu, ZL
    Zhang, LF
    CHINESE JOURNAL OF ORGANIC CHEMISTRY, 2001, 21 (08) : 573 - 588
  • [39] Synthesis of chiral phosphine ligands with aromatic backbones and their applications in asymmetric catalysis
    Longmire, JM
    Zhang, XM
    TETRAHEDRON LETTERS, 1997, 38 (10) : 1725 - 1728
  • [40] Molecular Design, Synthesis, and Asymmetric Catalysis of a Hexacoordinated Chiral Phosphate Ion
    Ooi, Takashi (tooi@chembio.nagoya-u.ac.jp), 1600, American Chemical Society (140):