Inter- and intramolecular electron transfer in the complex OC···ICl determined from iodine and chlorine nuclear quadrupole hyperfine structure in its rotational spectrum

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J B. Davey, A C. Legon and E R. Waclawik


Abstract

The ground-state rotational spectra of three isotopomers O12C···I35Cl, O12C···I37Cl and O13C···I35Cl of a linear (or quasi-linear) complex formed by carbon monoxide and iodine monochloride were observed by using a pulsed-nozzle, Fourier transform microwave spectrometer. The spectroscopic constants B0, DJ, χaa(I), χaa(Cl) and Mbb(I) were determined for each isotopomer. Simple models were used to interpret the spectroscopic constants to give details of the geometry, binding strength and electric charge redistribution in OC···ICl. It was concluded that the nuclei lie in the order OC···ICl with the distance r(C···I)=3.011(1) Å, that the quadratic intermolecular stretching force constant kσ=8.00(3) N m-1, and that, when CO achieves its equilibrium position in the complex, the changes in the iodine and chlorine nuclear quadrupole coupling constants of ICl are consistent with the transfer of a fraction δ1=0.025(2) of an electronic charge from C to I and an intramolecular transfer of a fraction δ2=0.048(2) from I to Cl. A comparison of the r(C···X), kσ and δ2 values for the series of complexes OC···XY, where XY=ClF, Cl2, BrCl, Br2 and ICl is presented. The order of kσ is ICl>ClF>BrCl>Br2>Cl2, while the order of δ2 is Cl2∽ClF<Br2∽BrCl<ICl. It is deduced that ICl is ‘snub-nosed’, i.e. the I atom has a smaller van der Waals radius along the ICl internuclear axis than perpendicular to it.


References

  1. J. B. Davey, A. C. Legon and E. R. Waclawik, Chem. Phys. Lett., in the press Search PubMed.
  2. T. J. Balle and W. H. Flygare, Rev. Sci. Instrum., 1981, 52, 33 CrossRef CAS.
  3. A. C. Legon, in Atomic and Molecular Beam Methods, ed. G. Scoles, Oxford University Press, 1992, vol. 2, ch. 9 Search PubMed.
  4. A. C. Legon and C. A. Rego, J. Chem. Soc., Faraday Trans., 1990, 86, 1915 RSC.
  5. H. M. Pickett, J. Mol. Spectrosc., 1991, 148, 371 CrossRef CAS.
  6. C. C. Costain, J. Chem. Phys., 1958, 29, 864 CrossRef CAS.
  7. F. J. Lovas and P. H. Krupenie, J. Phys. Chem. Ref. Data, 1974, 3, 245 CAS.
  8. C. H. Townes and B. P. Dailey, J. Chem. Phys., 1949, 17, 782 CrossRef CAS.
  9. W. Gordy and R. L. Cook, Microwave Molecular Spectra, Techniques of Chemistry, Vol. XVIII, Wiley-Interscience, New York, 1984, ch. 14 Search PubMed.
  10. D. J. Millen, Can. J. Chem., 1985, 63, 1477 CAS.
  11. A. C. Legon and D. J. Millen, Chem. Phys. Lett., 1988, 147, 484 CrossRef CAS.
  12. M. R. Keenan, T. K. Minton, A. C. Legon, T. J. Balle and W. H. Flygare, Proc. Natl. Acad. Sci. USA, 1980, 77, 5583 CAS.
  13. Estimated from the vibrational separations for the ground electronic state of Ar2 given by E. A. Colbourn and A. E. Douglas, J. Chem. Phys., 1976, 65, 1741 Search PubMed.
  14. Calculated from ωe=(2πc)–1(ke/µ)1/2 using ωe given by J. R. Rusk and W. Gordy, Phys. Rev. A, 1962, 127, 817 Search PubMed.
  15. W. Jäger, Y. Xu and M. C. L. Gerry, J. Phys. Chem., 1993, 97, 3685 CrossRef CAS.
  16. E. R. Waclawik, J. M. A. Thumwood, D. G. Lister, P. W. Fowler and A. C. Legon, Mol. Phys., in the press Search PubMed.
  17. K. Hinds, J. H. Holloway and A. C. Legon, Chem. Phys. Lett., 1995, 242, 407 CrossRef CAS.
  18. S. Blanco, A. C. Legon and J. C. Thorn, J. Chem. Soc., Faraday Trans., 1994, 90, 1365 RSC.
  19. P. D. Soper, A. C. Legon and W. H. Flygare, J. Chem. Phys., 1981, 74, 2138 CrossRef.
  20. Z. Wang, R. R. Lucchese, J. W. Bevan, A. P. Suckley and A. C. Legon, J. Chem. Phys., 1993, 98, 1761 CrossRef CAS The value of r(C⋯I) given in this reference is slightly in error and the corrected value has been used here.
  21. A. D. Buckingham, C. Graham and J. H. Williams, Mol. Phys., 1983, 49, 703 CAS.
  22. S. A. Peebles, P. W. Fowler and A. C. Legon, unpublished calculations.
  23. K. P. R. Nair, J. Hoeft and E. Tiemann, Chem. Phys. Lett., 1973, 58, 153 CrossRef CAS.
  24. B. Fabricant and J. S. Muenter, J. Chem. Phys., 1977, 66, 5274 CrossRef CAS.
  25. E. Herbst and W. E. Steinmetz, J. Chem. Phys., 1972, 56, 5342 CrossRef CAS.
  26. J. B. Davey, J. M. A. Thumwood, E. R. Waclawik and A. C. Legon, unpublished observations.
  27. S. A. Peebles, PhD Thesis, University of Exeter, 1995.
  28. L. Pauling, The Nature of the Chemical Bond, Cornell University Press, Ithaca, NY, 3rd edn., 1960, p. 260 Search PubMed.
  29. A. C. Legon, Chem. Phys. Lett., 1995, 237, 291 CrossRef CAS.
  30. A. C. Legon, Chem. Phys. Lett., 1997, 279, 55 CrossRef CAS.
  31. S. A. Peebles, P. W. Fowler and A. C. Legon, Chem. Phys. Lett., 1995, 240, 130 CrossRef CAS.
  32. K. Higgins, F.-M. Tao and W. Klemperer, J. Chem. Phys., 1998, 109, 3048 CrossRef CAS.
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