Thermodynamic excess properties of ionic solutions in the primitive MSA

Part of the Progress in Theoretical Chemistry and Physics book series (PTCP, volume 1)

Keywords

Activity Coefficient Partial Molal Volume Osmotic Coefficient Strong Electrolyte Thermodynamic Excess Property 
These keywords were added by machine and not by the authors. This process is experimental and the keywords may be updated as the learning algorithm improves.

Preview

Unable to display preview. Download preview PDF.

Unable to display preview. Download preview PDF.

Bibliography

  1. [1]
    R.M. Pytkowicz (Ed.) Activity Coefficients in Electrolyte Solutions, Vols I and II, CRC Press, Boca Raton, 1979.Google Scholar
  2. [2]
    A.L. Horvath Handbook of Aqueous Electrolyte Solutions, Ellis Horwood, Chichester, 1985.Google Scholar
  3. [3]
    I.M. Shiah, H.C. Tseng Fluid Phase Equilibria 90 (1994) 75, and references therein.Google Scholar
  4. [4]
    R.A. Robinson, R.H. Stokes Electrolyte Solutions, 2nd ed., Butterworths, London, 1959.Google Scholar
  5. [5]
    K.S. Pitzer and G. Mayorga J. Phys. Chem. 77 (1973) 2300.Google Scholar
  6. [6]
    T.J. Edwards, G. Maurer, J. Newman and J.M. Prausnitz AIChE J. 24 (1978) 24.CrossRefGoogle Scholar
  7. [7]
    C.E. Harvie, N. Moller and J.H. Weare Geochim. Cosmochim. Acta 48 (1984) 723.CrossRefGoogle Scholar
  8. [8]
    J. K. Percus and G. Yevick, Phys. Rev. 110 (1966) 251.Google Scholar
  9. [9]
    L. Blum and J. S. Høye J. Phys. Chem. 81 (1977) 1311.Google Scholar
  10. [10]
    L. Blum and Y. Rosenfeld J. Stat. Phys. 63 (1991) 1177.CrossRefGoogle Scholar
  11. [11]
    S. Watanasiri, M.R. Brule and L.L. Lee J. Phys. Chem. 86 (1982) 292.CrossRefGoogle Scholar
  12. [12]
    W. Ebeling and K. Scherwinski Z. Phys. Chemie 264 (1983) 1.Google Scholar
  13. [13]
    H.R. Corti J. Phys. Chem. 91 (1987) 686.CrossRefGoogle Scholar
  14. [14]
    R. Triolo, J.R. Grigera and L. Blum J. Phys. Chem. 80 (1976) 1858.CrossRefGoogle Scholar
  15. [15]
    R. Triolo, L. Blum and M.A. Floriano J. Phys. Chem. 67 (1976) 5956.Google Scholar
  16. [16]
    R. Triolo, L. Blum, L. and M.A. Floriano J. Phys. Chem. 82 (1978) 1368.CrossRefGoogle Scholar
  17. [17]
    T. Sun, J.L. Lenard and A.S. Teja J. Phys. Chem. 98 (1994) 6870.Google Scholar
  18. [18]
    J.P. Simonin and L. Blum J. Chem. Soc. Faraday Trans. 92 (1996) 1533.Google Scholar
  19. [19]
    H.C. Andersen, D. Chandler and J.D. Weeks Adv. Chem. Phys. 34 (1976) 105.Google Scholar
  20. [20]
    S.A. Adelman J. Chem. Phys. 64 (1976) 724.Google Scholar
  21. [21]
    H.L. Friedman Kinam 3A (1981) 101.Google Scholar
  22. [22]
    J.B. Hasted, D.M. Ritson and C.H. Collie J. Chem. Phys. 16 (1948) 1.CrossRefGoogle Scholar
  23. [23]
    L. Blum and J.S. Høye J. Phys. Chem. 81 (1977) 1311.Google Scholar
  24. [24]
    C. Sanchez-Castro and L. Blum J. Phys. Chem. 93 (1989) 7478.CrossRefGoogle Scholar
  25. [25]
    J.S. H0ye and L. Blum Mol. Phys. Chem. 35 (1978) 299.Google Scholar
  26. [26]
    F. Vericat F. and J.R. Grigera J. Phys. Chem. 86 (1982) 1030.CrossRefGoogle Scholar
  27. [27]
    A. Humffray J. Phys. Chem. 87 (1983) 5521.CrossRefGoogle Scholar
  28. [28]
    J.P. Simonin, L. Blum and P. Turq J. Phys. Chem. 100 (1996) 7704.CrossRefGoogle Scholar
  29. [29]
    L. Blum in Theoretical Chemistry, Advances and Perspectives, H. Eyring and D. Henderson eds., vol. 5, Academic Press, New York, 1980.Google Scholar
  30. [30]
    T. Cartailler, P. Turq, L. Blum and N. Condamine J. Phys. Chem. 96 (1992) 6766.CrossRefGoogle Scholar
  31. [31]
    G.A. Mansoori, N.F. Carnahan, K.E. Starling and T.W. Leland J. Chem. Phys. 54 (1971) 1523.CrossRefGoogle Scholar
  32. [32]
    J.J. Salacuse and G. Stell J. Chem. Phys. 77 (1982) 3714.CrossRefGoogle Scholar
  33. [33]
    W.G. McMillan and J.E. Mayer J. Chem. Phys. 13 (1945) 276.CrossRefGoogle Scholar
  34. [34]
    H.L. Friedman J. Solution Chem. 1 (1972) 387.Google Scholar
  35. [35]
    J.P. Simonin J. Chem. Soc. Faraday Trans. 92 (1996) 3519.Google Scholar
  36. [36]
    J.P. Simonin J. Phys. Chem. 101 (1997) 4313.Google Scholar
  37. [37]
    J.P. Simonin, O. Bernard and L. Blum J. Phys. Chem. B 102 (1998) 4411.CrossRefGoogle Scholar
  38. [38]
    J.P. Sirnonin, O. Bernard and L. Blum, J. Phys. Chem., to be published.Google Scholar
  39. [39]
    O. Bernard and L. Blum J. Chem. Phys. 104 (1996) 4746.CrossRefGoogle Scholar
  40. [40]
    M.S. Wertheim J. Stat. Phys. 35 (1984) 19; ibid. 42 (1986) 459.Google Scholar
  41. [41]
    M.S. Wertheim J. Chem. Phys. 85 (1985) 2929; ibid. 87 (1987) 7323; ibid. 88 (1988) 1214.Google Scholar
  42. [42]
    Yu.V. Kalyuzhnyi, M.F. Holovko and A.D.J. Haymet J. Chem. Phys. 95 (1991) 9151.CrossRefGoogle Scholar
  43. [43]
    Yu.V. Kalyuzhnyi and V. Vlachy Chem. Phys. Letters 215 (1993) 518.Google Scholar
  44. [44]
    Yu.V. Kalyuzhnyi and M.F. Holovko Mol. Phys. 80 (1993) 1165.Google Scholar
  45. [45]
    M.F. Holovko and Yu. V. Kalyuzhnyi Mol. Phys. 73 (1991) 1145.Google Scholar
  46. [46]
    M.F. Holovko and I.A. Protsykevytch Mol. Phys. 90 (1996) 489.Google Scholar
  47. [47]
    L. Blum, M.F. Holovko and LA. Protsykevytch J. Stat. Phys. 84 (1996) 191.CrossRefGoogle Scholar
  48. [48]
    L. Blum and O. Bernard J. Stat. Phys. 79 (1995) 569.CrossRefGoogle Scholar
  49. [49]
    Y.C. Wu, R.M. Rush and G. Scatchard J. Phys. Chem. 72 (1968) 4048.Google Scholar

Copyright information

© Kluwer Academic Publishers 2002

Personalised recommendations