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Basicity of Urea: Near-Infrared Spectroscopic and Theoretical Studies on the Hydrogen Bonding Ability of TMU and DMDPU

  • Published : 1998.01.20

Abstract

The hydrogen-bonding interactions between thioacetamide (TA) and urea derivatives such as tetramethylurea (TMU) and dimethyldiphenylurea (DMDPU) have been studied using near-infrared absorption spectroscopy. Thermodynamic parameters for the interactions between TA and urea derivatives were determined by analyzing the $v^{as}_{N-H}$+Amide Ⅱ combination band of TA at 1970 nm. The ΔH° values, indicating the intrinsic strength of hydrogen bonding, are - 23.0 kJ/mole and - 19.8 kJ/mol for TMU and DMDPU, respectively. This is well explained by the inductive effects of substituents. Ab initio molecular orbital calculations for the proton affinity of TMU, N,N-dimethylformamide (DMF), and N,N-dimethylacetamide (DMA) in gas phase have been carried out at HF/3-21G ad HF/6-31G(d) levels, showing that the proton affinity of TMU is larger than that of DMA, which agrees well the experimental results.

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References

  1. J. Phys. Chem. v.70 Ellerton, H. D.;Dunlop, P.
  2. J. Am. Chem. Soc. v.86 Wetlaufer, D. B.;Malik, S. K.;Stoller, L.;Coffin, R. I.
  3. J. Am. Chem. Soc. v.89 Brandts, J. F.;Hunt, L. J.
  4. J. Chem. Phys. v.48 Frank, F. S.;Franks, F.
  5. J. Chem. Phys. v.69 Kreschek, G. C.;Schergaga, H. A.
  6. J. Chem. v.20 Stokes, R. H. Aust.
  7. J. Am. Chem. Soc. v.106 Kuharski, R. A.;Rossky, P.J.
  8. ibid. v.106 Kuharski, R. A.;Rossky, P. J.
  9. J. Chem. Phys. v.80 Tanaka, H.;Touhara, H.;Nakanishi, K.;Watanabe, N.
  10. ibid. v.82 Tanaka, H.;Nakanishi, K.;Touhara, H.
  11. Chem. Phys. Lett. v.140 Cristinziano, P.;Lelj, F.;Amodeo, P.;Barone, V.
  12. J. Chem. Soc., Faraday Trans. I v.85 Cristinziano, P.;Lelj, F.;Amodeo, P.;Barone, V.
  13. Electrochim, Acta v.9 Finney, J. I.;Turner, J.
  14. J. Phys. Chem. v.74 no.10 Barone, G.;Rizzo, E.;Vitagliano, V.
  15. J. Phys. Chem. v.75 no.6 Subramanian, S.;Balasubramanian, D.;Ahluwalia, J. C.
  16. Pure & Appl. Chem. v.66 no.40 Jancso, G.;Cser, L.;Grosz T.;Ostanevich, Yu. M.
  17. Spectrochimica Acta A v.41 Choi, Y. S.;Huh, Y. D.;Bonner, O. D.
  18. Spectrochimica Acta A v.52 Choi, Y. S.;Kim, J.;Park, J.;Yu, J.;Yoon, C. J.
  19. J. Korean Chem. Soc. v.30 Lee, K. B.;Kim, B. C.;Bonner, O. D.;Choi, Y. S.
  20. J. Chem. Soc., Perkin Trans. 2 Le Questel, J. Y.;Laurence, C.;Lachkar, A.;Helbert, H.;Berthelot, M.
  21. Acta Crystallgr. Sect. B v.25 Caron, A.;Donohue, J.
  22. J. Phys. Chem. v.99 Wozniak, K.;Wawer, I.;Strohl, D.
  23. J. Mol. Struc. v.377 Nyuist, R. A.;Streck, R.;Jeschek, G.
  24. J. Mol. Spectrosc. v.58 Brown, R. D.;Godfrey, P. D.;Storey, J.
  25. J. Mol. Struc. (Theochem) v.253 Meier, R. J.;Coussens, B.
  26. J. Mol. Struct. (Theochem) v.312 Toth, K.;Bopp, B.;Perakyla, M.;Pakkanen, T. A.;Jancso, G.
  27. J. Phys. Chem. v.99 Ou, M. C.;Chu, S. Y.
  28. J. Phys. Chem. v.99 Lin, C. K.;Chen, S. Y.;Lien, M. H.
  29. J. Am. Chem. Soc. v.117 Wiberg, K. B.;Rablen, P. R.;Rush, D. J.;Keith, T. A.