Microwave Digestion and Ultrasonic Nebulization for Determination of Boron in Animal Tissues by Inductively Coupled Plasma Atomic Emission Spectrometry With Internal Standardization and Addition of Mannitol

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DA-HAI SUN, JAMES K. WATERS and THOMAS P. MAWHINNEY


Abstract

Determinations of boron in animal tissues were performed by inductively coupled plasma atomic emission spectrometry (ICP-AES) with an ultrasonic nebulizer. The method is based on the microwave digestion of tissues with HNO3–H2O2 and the use of mannitol as a modifier. It was found that mannitol can significantly enhance the analytical sensitivity, improve the precision and minimize the memory effect for the determination of boron. Acid effect and matrix effects were controlled by using the Be I 234.861 nm line as the internal standard. Six animal tissue samples, including two NIST standard reference materials (Oyster Tissue and Bovine Liver), were analyzed to test the reliability of the method. A limit of detection (3σ) of 0.7 µg l-1 and recoveries of added boron from selected matrices between 95.0 and 100.2% were obtained.


References

  1. F. H. Nielsen, in Trace Elements in Human and Animal Nutrition, ed. Mertz, W., Academic Press, Orlando, FL, 1986, vol. 2, ch. 10 Search PubMed.
  2. S. Evans and U. Krähenbühl, J. Anal. At. Spectrom., 1994, 9, 1249 RSC.
  3. H. Vanhoe, R. Dams, C. Vandecasteele and J. Versieck, Anal. Chim. Acta, 1993, 281, 401 CrossRef CAS.
  4. A. A. Ferrando, N. R. Green, K. W. Barnes and B. Woodward, Biol. Trace Elem. Res., 1993, 37, 17 Search PubMed.
  5. S. R. Tamat and D. E. Moore, Anal. Chem., 1987, 59, 2161 CrossRef CAS.
  6. J. Ziaziaris and J. L. Kacprzak, J. Assoc. Off. Anal. Chem., 1995, 78, 874 Search PubMed.
  7. P. Galli and N. Oddo, Microchem. J., 1992, 46, 327 CrossRef CAS.
  8. M. B. Denton, J. M. Freelin and T. R. Smith, in Sample Introduction in Atomic Spectroscopy, ed. Sneddon, J., Elsevier, New York, 1990, ch. 4 Search PubMed.
  9. M. J. Powell and D. W. Boomer, Spectroscopist (Thermo Jarrel Ash), 1993, 2(1), 1 Search PubMed.
  10. D. H. Sun, J. K. Waters and T. P. Mawhinney, J. Assoc. Off. Anal. Chem., 1997, 80, 20 Search PubMed.
  11. Offcial Methods of Analysis of the Association of Offcial Analytical Chemists, ed. Cunniff, P., Association of Offcial Analytical Chemists, Arlington, VA, 16th edn. 1995, Sect. 3.2.06 Search PubMed.
  12. H. M. Kuss, Fresenius' Z. Anal. Chem., 1992, 343, 788 CrossRef CAS.
  13. Introduction to Microwave Sample Preparation: Theory and Practice, ed. Kingston, H. M. and Jassie, L. B., American Chemical Society, Washington, DC, 1988 Search PubMed.
  14. S. A. Myers and D. H. Tracy, Spectrochim. Acta, Part B, 1983, 38, 1227 CrossRef.
  15. J. M. Mermet and J. C. Ivaldi, J. Anal. At. Spectrom., 1993, 8, 795 RSC.
  16. P. W. J. M. Boumans, in Inductively Coupled Plasma Emission Spectroscopy. I. Methodology, Instrumentation, and Performance, ed. Boumans, P. W. J. M., Wiley, New York, 1987, ch. 7 Search PubMed.
  17. H. Scholze, Glass: Nature, Structure, and Properties, Springer, New York, 1990, ch. 2 Search PubMed.
  18. T. Ishikawa and E. Nakamura, Anal. Chem., 1990, 62, 2612 CrossRef CAS.
  19. P. A. Schuppli, Can. J. Soil Sci., 1986, 66, 377 Search PubMed.
  20. M. W. Blades and G. Horlick, Spectrochim. Acta, Part B, 1981, 36, 881 CrossRef.
  21. D. H. Sun, Z. X. Zhang, H. W. Qian and M. X. Cai, Spectrochim. Acta, Part B, 1988, 43, 391 CrossRef.
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