Scinovex
articleTop 1% cited

Asymmetric Catalysis with Heterobimetallic Compounds

Angewandte Chemie International Edition in English · 1997 · Vol. 36(12) · pp. 1236–1256
Masakatsu ShibasakiHiroaki SasaiTakayoshi Arai

Abstract

Abstract This review focuses on a new concept in catalytic asymmetric reactions that was first realized for the use of heterobimetallic complexes. As these heterobimetallic complexes function as both a Brønsted base and as a Lewis acid, just like an enzyme, they make possible a variety of efficient catalytic asymmetric reactions. This heterobimetallic concept should prove to be applicable to a variety of new asymmetric catalyses. The first part of this review describes the development of rare‐earth–alkali metal complexes such as LnM 3 tris(binaphthoxide) complexes (LnMB, Ln = rare‐earth metal, M = alkali metal), which are readily prepared from the corresponding rare‐earth trichlorides or rare‐earth isopropoxides, and their application to catalytic asymmetric synthesis. By using a catalytic amount of LnMB complexes several asymmetric reactions proceed efficiently to give the corresponding desired products in up to 98% ee : LnLB‐catalyzed asymmetric nitroaldol reactions (L = Li), LnSB‐catalyzed asymmetric Michael reactions (S  Na), and LnPB‐catalyzed asymmetric hydrophosphonylations of either imines or aldehydes (P  K). Applications of these heterobimetallic catalysts to the syntheses of several biologically and medicinally important compounds are also described. Spectral analyses and computational simulations of the asymmetric reactions catalyzed by the heterobimetallic complexes reveal that the two different metals play different roles to enhance the reactivity of both reaction partners and to position them. From mechanistic considerations, a useful activation of the heterobimetallic catalyses was realized by addition of alkali metal reagents. The second part describes the development of another type of heterobimetallic catalysts featuring Group 13 elements such as Al and Ga as the central metal. Among them, the AlLibis(binaphthoxide) complex (ALB) is an effective catalyst for asymmetric Michael reactions, tandem Michael–aldol reactions, and hydrophosphonylation of aldehydes.

Citations
689
FWCI
36.57
field-weighted impact
References
152
Percentile
100%
vs. same field & year
Citations per year
Cited by
Asymmetrische Katalyse durch chirale Wasserstoffbrückendonoren
Angewandte Chemie · 2006 · 561 citations
Im Goldenen Zeitalter der Organokatalyse
Angewandte Chemie · 2004 · 726 citations
Discovery and Application of Asymmetric Reaction by Multi-Functional Thioureas
Bulletin of the Chemical Society of Japan · 2008 · 277 citations
In the Golden Age of Organocatalysis
Angewandte Chemie International Edition · 2004 · 2,568 citations
Bifunctional transition metal-based molecular catalysts for asymmetric syntheses
Organic & Biomolecular Chemistry · 2005 · 636 citations
References
Comprehensive supramolecular chemistry
Choice Reviews Online · 1997 · 6,489 citations
UFF, a full periodic table force field for molecular mechanics and molecular dynamics simulations
Journal of the American Chemical Society · 1992 · 10,193 citations
Citation Network

How this paper connects to the literature. Drag to explore, click any node to open that paper.