Chiral phosphinamides: new catalysts for the asymmetric reduction of ketones by borane

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Barry Burns, N. Paul King, Heather Tye, John R. Studley, Mark Gamble and Martin Wills


Abstract

We have identified a new class of catalysts for the asymmetric reduction of prochiral ketones by borane. Key to the architecture of effective catalysts is an N–P[double bond, length half m-dash]O structural unit which may be part of a phosphinamide, phosphonamide or a related structure. Such catalysts are simple to prepare, are often crystalline solids and may be recovered from reduction reactions and reused. The catalysts act essentially as Lewis bases, serving to increase the reactivity of borane by electron donation. The incorporation of a hydroxy group into the catalyst provides an adjacent Lewis acid site upon reaction with borane and thus affords a superior catalyst capable of asymmetric inductions of up to 92% ee.


References

  1. (a) For excellent recent surveys in asymmetric catalysis see R. Noyori, Asymmetric Catalysis in Organic Synthesis, John Wiley and Sons Ltd., New York, 1994 Search PubMed; (b) Catalytic Asymmetric Synthesis, ed. I. Ojima, VCH Press, Berlin, 1993 Search PubMed; (c) V. K. Singh, Synthesis, 1992, 605 CrossRef.
  2. Hydrogenation of compounds containing C[double bond, length as m-dash]C, C[double bond, length as m-dash]O and C[double bond, length as m-dash]N bonds, by M. Wills, in the series Chemistry of the Functional Groups, edited by S. Patai, Supplement A3: The Chemistry of Double-Bonded Functional Groups Part 1, ch. 15, pp. 781–842 Search PubMed.
  3. (a) S. Wallbaum and J. Martens, Tetrahedron: Asymmetry, 1992, 3, 1481 CrossRef CAS; (b) L. Deloux and M. Srebnik, Chem. Rev., 1993, 93, 763 CrossRef CAS; (c) M. Palmer, T. Walsgrove and M. Wills, J. Org. Chem., 1997, 62, 5226 CrossRef CAS and references therein.
  4. (a) B. Burns, J. R. Studley and M. Wills, Tetrahedron Lett., 1993, 34, 7105 CrossRef CAS; (b) B. Burns, N. P. King, J. R. Studley, H. Tye and M. Wills, Tetrahedron: Asymmetry, 1994, 5, 801 CrossRef CAS; (c) M. P. Gamble, J. R. Studley and M. Wills, Tetrahedron Lett., 1996, 37, 2853 CrossRef CAS; (d) M. P. Gamble, J. R. Studley and M. Wills, Tetrahedron: Asymmetry, 1996, 7, 3071 CrossRef CAS; (e) B. Burns, M. P. Gamble, A. R. C. Simm, J. R. Studley, N. W. Alcock and M. Wills, Tetrahedron: Asymmetry, 1997, 8, 73 CrossRef CAS.
  5. (a) D. Barr, W. Clegg, R. E. Mulvey and R. Snaith, J. Chem. Soc., Chem. Commun., 1984, 79 RSC; (b) S. E. Denmark and R. L. Dorow, J. Am. Chem. Soc., 1990, 112, 864 CrossRef CAS; (c) S. E. Denmark, P. C. Miller and S. R. Wilson, J. Am. Chem. Soc., 1991, 113, 1468 CrossRef CAS.
  6. (a) O. Chiodi, F. Fotiadu, M. Sylvestre and G. Buono, Tetrahedron Lett., 1996, 37, 39 CrossRef CAS; (b) V. Peper and J. Martens, Tetrahedron: Asymmetry, 1996, 37, 8351 CrossRef CAS Closely related reagents; (c) R. Hulst, H. Heres, N. C. M. W. Peper and R. M. Kellogg, Tetrahedron: Asymmetry, 1996, 7, 1373 CrossRef CAS; (d) I. A. Oapos;Neil, C. D. Turner and S. B. Kalindjian, Synlett, 1997, 777 CAS.
  7. B. Burns, E. Merifield, M. F. Mahon, K. C. Molloy and M. Wills, J. Chem. Soc., Perkin Trans. 1, 1993, 2243 RSC.
  8. (a) S. E. Denmark, D. M. Coe, N. E. Pratt and B. D. Griedel, J. Org. Chem., 1994, 59, 6161 CrossRef CAS; (b) K. Iseki, Y. Kuroki, M. Takahashi and Y. Kobayashi, Tetrahedron Lett., 1996, 37, 5149 CrossRef CAS; (c) S. E. Denmark and S. B. D. Winter, Synlett, 1997, 1087 CAS.
  9. (a) A. Alexakis, S. Mutti and P. Mangeney, J. Org. Chem., 1992, 57, 1224 CrossRef CAS; (b) A. Alexakis, S. Mutti, J. F. Normant and P. Mangeney, Tetrahedron: Asymmetry, 1990, 1, 437 CrossRef CAS; (c) R. Hulst, N. K. de Vries and B. L. Feringa, Tetrahedron: Asymmetry, 1994, 5, 699 CrossRef CAS.
  10. I. H. Williams and L. Linney, unpublished results.
  11. The oxazaphospholidine ring opening reaction of related compounds has been reported to proceed with retention of configuration at phosphorus, for example: J. M. Brown, J. V. Carey and M. J. H. Russell, Tetrahedron, 1990, 46, 4877 Search PubMed.
  12. (a) H. M. I. Osborn, J. B. Sweeney and B. Howson, Synlett, 1994, 145 CrossRef CAS; (b) H. M. I. Osborn, A. A. Cantrill, J. B. Sweeney and B. Howson, Tetrahedron Lett., 1994, 35, 3159 CrossRef CAS.
  13. The reaction between prolinol and diphenylphosphine chloride, in the presence of triethylamine and in dichloromethane solvent gave a large quantity of O-phosphinylated material. However the same reaction using diphenylprolinol gave mainly the N-phosphinylated product in 56% yield.
  14. (a) J.-M. Brunel, O. Pardigon, B. Faure and G. Buono, J. Chem. Soc., Chem. Commun., 1992, 287 RSC; (b) G. Buono, J.-M. Brunel, B. Faure and O. Pardigon, Phosphorus, Sulfur Silicon, 1993, 93, 43.
  15. J.-M. Brunel, M. Maffei and G. Buono, Tetrahedron: Asymmetry, 1993, 4, 2255 CrossRef CAS.
  16. H. Tye, C. Eldred and M. Wills, J. Chem. Soc., Perkin Trans. 1, 1997, 457 RSC.
  17. (a) G. Brenchley, M. Fedouloff, E. Merifield and M. Wills, Tetrahedron: Asymmetry, 1996, 7, 2809 CrossRef CAS; (b) E. J. Corey, C. P. Chen and G. A. Reichard, Tetrahedron Lett., 1989, 30, 5547 CrossRef CAS.
  18. (a) R. E. Gawley, G. C. Hart and L. J. Bartolli, J. Org. Chem., 1989, 54, 175 CrossRef CAS; (b) J. R. Gage and D. A. Evans, Org. Synth., 1990, 68, 77 CAS.
  19. (a) T. Koizumi, R. Yanada, H. Takagi, H. Hirai and E. Yoshii, Tetrahedron Lett., 1981, 22, 477 CrossRef CAS; (b) T. Koizumi, R. Yanada, H. Takagi, H. Hirai and E. Yoshii, Tetrahedron Lett., 1981, 22, 571 CrossRef CAS.
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