Membrane potentials in charged membranes separating solutions of weak electrolytes

(Note: The full text of this document is currently only available in the PDF Version )

Misako Kawaguchi, Tatsuji Murata and Akihiko Tanioka


Abstract

The transport of weak electrolyte ions through a charged membrane has been studied. The membrane potential across cation- and anion-exchange membranes was measured for acetic acid and glycine methyl ester hydrochloride aqueous solutions. Membrane potentials were correlated to a transport theory using the Donnan equilibrium and the Nernst–Planck equation of ion flux by introducing the dissociation constant of a weak electrolyte in aqueous solution. The anion-to-cation mobility ratios in the membrane were determined via a non-linear regression method. In the case of acetic acid solutions in an anion-exchange membrane, the ratios were about 0.0001–0.001 times larger than those in water. On the other hand, they were about 10000 times larger than in water if a cation-exchange membrane was employed. Therefore, the ion mobilities of weak electrolytes are significantly affected by groups of fixed charge in the membrane. In the case of glycine methyl ester hydrochloride, the mobility ratio was the same as in water, which means that it behaves as a strong electrolyte. It is suggested that the transport phenomena of weak electrolyte ions in a charged membrane can be explained by the above-described transport theory.


References

  1. F. Helfferich, Ion Exchange, McGraw-Hill, New York, 1962 Search PubMed.
  2. N. Lakshminaranaiah, Transport Phenomena in Membranes, Academic Press, New York, 1969 Search PubMed.
  3. R. Schloegl, Stofftransport durch Membranen, Steinkopff, Darmstadt, 1964 Search PubMed.
  4. A. Katchalsky and P. F. Curran, Non-equilibrium Thermodynamics in Biophysics, Harvard University Press, Cambridge, MA, 1967 Search PubMed.
  5. T. Teorell, Proc. Soc. Exptl. Biol., 1935, 33, 282 Search PubMed.
  6. T. Teorell, Prog. Biophys. Biophys. Chem., 1953, 3, 305 Search PubMed.
  7. K. H. Meyer and J. F. Sievers, Helv. Chim. Acta, 1936, 19, 649; 665; 987.
  8. F. G. Donnan, Z. Electrochem., 1911, 17, 572 Search PubMed.
  9. F. G. Donnan, Z. Phys. Chem. A, 1934, 168, 369 Search PubMed.
  10. W. Nernst, Z. Phys. Chem., 1888, 2, 613 Search PubMed.
  11. W. Nernst, Z. Phys. Chem., 1889, 4, 129 Search PubMed.
  12. M. Planck, Annu. Phys. Chem., 1980, 39, 161 Search PubMed.
  13. M. Planck, Annu. Phys. Chem., 1980, 40, 561 Search PubMed.
  14. N. Lakshminarayanaiah, Equations of Membrane Biophysics, Academic Press, Orlando, FL, 1984 Search PubMed.
  15. R. B. Gennis, Biomembrane, Molecular Structure and Function, Springer, New York, 1989 Search PubMed.
  16. S. K. Sikdar, J. Membr. Sci., 1985, 24, 59 CrossRef CAS.
  17. P. G. Glugla and H. Dindi, J. Membr. Sci., 1986, 28, 311 CrossRef CAS.
  18. K. Lee and J. Hong, J. Membr. Sci., 1992, 75, 107 CrossRef CAS.
  19. N. Takai, M. Senoo and T. Yamabe, Kogyokagakuzassi, 1965, 68, 159 Search PubMed.
  20. N. Takai, M. Senoo and T. Yamabe, Kogyokagakuzassi, 1964, 67, 39 Search PubMed.
  21. T. Yamabe, M. Senoo and N. Takai, Kogyokagakuzassi, 1961, 64, 134 Search PubMed.
  22. C. Kanzawa and S. Ishizaka, Kogyokagakuzassi, 1969, 72, 1228 Search PubMed.
  23. D. Nomura and T. Muramoto, Membrane, 1977, 2, 147 Search PubMed.
  24. O. H. LeBlanc, Jr, W. J. Ward, S. L. Matson and S. G. Kimura, J. Membr. Sci., 1980, 6, 339 CrossRef CAS.
  25. H. L. Chum, A. Hauser and D. W. Sopher, J. Electrochem. Soc., 1983, 130, 2507 CAS.
  26. S. K. Sikdar, J. Membr. Sci., 1985, 23, 83 CrossRef CAS.
  27. M. Yoshikawa, S. Shudo, K. Sanui and N. Ogata, J. Membr. Sci., 1986, 26, 51 CrossRef CAS.
  28. M. Yoshikawa, M. Suzuki, K. Sanui and N. Ogata, J. Membr. Sci., 1987, 32, 235 CrossRef CAS.
  29. S. K. Sikdar, Ind. Eng. Chem. Res., 1987, 26, 170 CrossRef CAS.
  30. F. Alhaique, A. Memoli, E. Santucci and F. Olana, J. Membr. Sci., 1989, 45, 55 CrossRef CAS.
  31. Z. Ogumi, K. Toyama, Z.-I. Takahara, K. Katakura and S. Inuta, J. Membr. Sci., 1992, 65, 205 CrossRef CAS.
  32. S. Martinez, R. Sandeaux, J. Sandeaux and C. Gavach, J. Membr. Sci., 1992, 69, 273 CrossRef.
  33. P. Henderson, Z. Phys. Chem., 1907, 59, 118 CAS.
  34. H. Freiser and Q. Fernando, Ionic Equilibria in Analytical Chemistry, Wiley, New York, 1963 Search PubMed.
  35. M. Higa, A. Tanioka and K. Miyasaka, J. Membr. Sci., 1988, 37, 251 CrossRef CAS.
  36. M. Higa, A. Tanioka and K. Miyasaka, J. Membr. Sci., 1990, 49, 145 CrossRef CAS.
  37. W. Pusch, Desalination, 1986, 59, 105 CrossRef CAS.
  38. M. Sieber, A. Tanioka and N. Minoura, Membr. Symp., 1991, 3, 44 Search PubMed.
  39. A. Tanioka, K. Saito, M. Kawaguchi and N. Minoura, Membr. Symp., 1992, 4, 77 Search PubMed.
  40. Y. Toyoshima, Y. Kobatake and H. Fujita, Trans. Faraday Soc., 1967, 63, 2814 RSC.
  41. N. Kamo, Y. Toyoshima, H. Nozaki and Y. Kobatke, Kolloid Z. Z. Polym., 1971, 248, 914 Search PubMed.
Click here to see how this site uses Cookies. View our privacy policy here.