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ChiPros® Chiral Epoxides

Daniel Weibel

Oxiranes are very valuable building blocks which allow derivatization:

  • by forming C-X bonds (through reactions with alcohols, ammonia, amines, phenolates etc.)
  • or by forming new C–C bonds (through reactions with cyanide, malonates, allyl silyl reagents, metal-organic reagents, e.g. Mg, Zn, Li organyls)

There are several alternative routes towards chiral aryl-substituted epoxides, among them Jacobsen’s asymmetric epoxidation1 or his hydrolytic kinetic resolution2 method, Sharpless’s asymmetric epoxidation3,4 using catalytic titan(IV)- isopropylate/diethyl tartrate complexes and tert-butylhydroperoxide, complemented by Shi’s reaction5,6 using peroxomonosulfate with a chiral ketone as catalyst, or among the enzymatic methods, application of epoxide hydrolases, lipases or monooxygenases. The stereoselective reduction of α-chlorinated acetophenones using dehydrogenases, however, affords a very versatile and more cost-efficient access to a wide range of oxiranes, including both enantiomers of styrene oxide as well as very differently substituted phenyl oxiranes (Scheme 1).

Stereoselective synthesis of oxiranes

Scheme 1.Stereoselective synthesis of oxiranes.

Aldrich Chemistry is proud to offer ChiPros® in small quantities (up to kilograms). A total of 79 products from the ChiPros® portfolio are available from Aldrich Chemistry, including chiral amines, alcohols, epoxides and carboxylic acids.

ChiPros is a registered trademark of BASF SE

Materials

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References

1.
Zhang W, Loebach JL, Wilson SR, Jacobsen EN. 1990. Enantioselective epoxidation of unfunctionalized olefins catalyzed by salen manganese complexes. J. Am. Chem. Soc.. 112(7):2801-2803. https://doi.org/10.1021/ja00163a052
2.
White DE, Jacobsen EN. 2003. New oligomeric catalyst for the hydrolytic kinetic resolution of terminal epoxides under solvent-free conditions. Tetrahedron: Asymmetry. 14(22):3633-3638. https://doi.org/10.1016/j.tetasy.2003.09.024
3.
Katsuki T, Sharpless KB. 1980. The first practical method for asymmetric epoxidation. J. Am. Chem. Soc.. 102(18):5974-5976. https://doi.org/10.1021/ja00538a077
4.
Höft E. 1993. Enantioselective epoxidation with peroxidic oxygen.63-77. https://doi.org/10.1007/3-540-56252-4_25
5.
Wang Z, Tu Y, Frohn M, Zhang J, Shi Y. 1997. An Efficient Catalytic Asymmetric Epoxidation Method. J. Am. Chem. Soc.. 119(46):11224-11235. https://doi.org/10.1021/ja972272g
6.
Ager DJ, Anderson K, Oblinger E, Shi Y, VanderRoest J. 2007. An Epoxidation Approach to a Chiral Lactone:  Application of the Shi Epoxidation. Org. Process Res. Dev.. 11(1):44-51. https://doi.org/10.1021/op060140e