Chromatographia

, Volume 21, Issue 1, pp 12–15 | Cite as

Determination of vanadium, cobalt, copper, zinc, and cadmium in biological materials by a combined anion-exchange-spectrophotometric method

  • T. Kiriyama
  • R. Kuroda
Originals

Summary

A preconcentration technique involving anion-exchange in thiocyanate media has been developed for the determination of traces of bio-significant and biofunctional elements. The procedure is applied to the analyses of NBS standard reference materials as well as environmental reference materials of NIES (The National Institute of Environmental Studies, Japan Environmental Agency). The results are quoted for vanadium, cobalt, copper, zinc, and cadmium.

Key Words

Column liquid chromatography Anion-exchange Biological standard reference materials Anion-exchange preconcentration Thiocyanate system 

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References

  1. [1]
    T. S. West, Bunseki Kagaku30, S103 (1981).Google Scholar
  2. [2]
    H. A. Schroeder, A. P. Nason, Clin. Chem.17, 461 (1971).Google Scholar
  3. [3]
    T. Kiriyama, R. Kuroda, Analyst107, 505 (1982).CrossRefGoogle Scholar
  4. [4]
    R. J. Lacoste, M. H. Earing, S. E. Wiberley, Anal. Chem.23, 871 (1951).CrossRefGoogle Scholar
  5. [5]
    J. A. Platte, V. M. Marcy, Anal. Chem.31, 1226 (1959).CrossRefGoogle Scholar
  6. [6]
    B. E. Salzman, Anal. Chem.25, 493 (1953).Google Scholar
  7. [7]
    H. Hamaguchi, N. Onuma, M. Kishi, R. Kuroda, Talanta11, 495 (1964).CrossRefGoogle Scholar
  8. [8]
    K. Kawabuchi, H. Hamaguchi, R. Kuroda, J. Chromatogr.17, 567 (1965).CrossRefGoogle Scholar
  9. [9]
    A. K. Majumdar, B. K. Mitra Fresenius' Z. Anal. Chem.208, 1 (1965).CrossRefGoogle Scholar
  10. [10]
    T. Kiriyama, R. Kuroda, Anal. Chim. Acta101, 207 (1978).CrossRefGoogle Scholar
  11. [11]
    D. E. Leyden, W. Wegscheider, Anal. Chem.53, 1059A (1981).Google Scholar
  12. [12]
    R. van Grieken, Anal. Chim. Acta143, 3 (1982).Google Scholar
  13. [13]
    E. S. Gladney, Anal. Chim. Acta118, 385 (1980).CrossRefGoogle Scholar
  14. [14]
    P. A. Legotte, W. C. Rosa, D. C. Sutton, Talanta27, 39 (1980).CrossRefGoogle Scholar
  15. [15]
    R. R. Greenberg, Anal. Chem.52, 676 (1980).CrossRefGoogle Scholar
  16. [16]
    L. G. Danielsson, D. Jagner, M. Josefson, S. Westerlund, Anal. Chim. Acta127, 147 (1981).CrossRefGoogle Scholar
  17. [17]
    M. Dermelj, A. Vakselj, V. Ravnik, B. Smodis, Radiochem. Radioanal. Lett.41, 149 (1979).Google Scholar
  18. [18]
    K. Okamoto, Res. Rep. Natl. Inst. Environ. Stud., No.38, 1980.Google Scholar
  19. [19]
    K. Okamoto, Res. Rep. Natl. Inst. Environ. Stud., No.18, 1980.Google Scholar
  20. [20]
    K. Okamoto, K. Fuwa, Kikan Kankyo Kenkyu, No.42, 1983.Google Scholar

Copyright information

© Friedr. Vieweg & Sohn Verlagsgesellschaft mbH 1986

Authors and Affiliations

  • T. Kiriyama
    • 1
  • R. Kuroda
    • 2
  1. 1.Laboratory for Chemistry, Faculty of EducationKagoshima UniversityKagoshimaJapan
  2. 2.Laboratory for Analytical Chemistry, Faculty of EngineeringUniversity of ChibaYayoi-cho, ChibaJapan

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