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X-Ray Diffractometric Study on Modification Mechanism of Matrixes for Electrothermal AAS Determination of Volatile Lead and Bismuth


Abstract

The mechanism of a matrix modification for the trace determination of volatile lead and bismuth by an electro-thermal atomic absorption spectrophotometry was studied by a X-ray diffractometry (XRD). For the investigation of structures, the ash products of the elements were produced by using a palladium as a matrix modifier with or without aluminum or nickel as an auxiliary modifier. The same charring conditions as in the analysis of samples were applied together with much concentrated solution of analytical elements and modifiers in a graphite furnace to get a large amount of the product for XRD. The XRD patterns showed PbPd3 for lead and BiPd3 for bismuth. These mean that the reaction procedures through the charring and atomization were changed from $Pb^{2+}$ ${\rightarrow}$ PbO ${\rightarrow}$$Pb^0$ to $Pb^{2+}$ ${\rightarrow}$ PbO ${\rightarrow}PbPd_3$ ${\rightarrow}$ Pb o for lead and from $Bi^{3+}$ ${\rightarrow}$ BiO ${\rightarrow}$ Bi o to $Bi^{3+}$ ${\rightarrow}$ BiO ${\rightarrow}$ $BiPd_3$ ${\rightarrow}$ $Bi^0$ for bismuth by the addition of modifiers. The volatile elements were stabilized by the formation of palladium alloys through a charring process. Charring temperatures were raised about 500 $^{\circ}C$ by the alloying and the atomization was also stabilized for the enhancement of sensitivities.

Keywords

References

  1. J. Korean Chem. Soc. v.39 no.3 Choi, J. M.; Choi, H. S.; Kim, Y. S.
  2. J. Korean Chem. Soc. v.40 no.2 Choi, H. S.; Choi, J. M.; Kim, Y. S.
  3. Anal. Sci. & Tech. v.8 no.4 Kim, Y. S.; Choi, J. M.; Kim, Y. M.
  4. Spectrochim. Acta v.39B Wendl, W.; Muller-Vogt, G.
  5. Anal. Chem. v.55 Sturgen, R. E.; Mitchell, D. F.; Berman, S. S.
  6. Anal. Chem. v.60 Bass, D. A.; Holcombe, J. A.
  7. Spectrochim. Acta v.35B Akman, S.; Genc, O.; Ozdural, A. R.; Balkis, T.
  8. Spectrochim. Acta v.41B Schlemmer, G.; Welz, B.
  9. At. Absorpt. Newslett v.14 Ediger, R. D.
  10. Prog. Anal. Atom. Spectrsc. v.6 Suzuki, M.; Ohta, K.
  11. Anal. Chim. Acta v.167 Crland, A.; Fouillac, C.
  12. Analyst v.111 Hunt, D. T. E.; Winnard, D. A.
  13. Analyst v.106 Hodges, D. T.; Skelding, D.
  14. Fresenius Z. Anal. Chem. v.329 Arpadjan, S.; Krivan, V.
  15. J. Anal. At. Spectrom. v.6 Beinrohr, E.; Rayta, M.; Taddia, M.; Poluzzi, V.
  16. Acta Chim. Sin. v.37 Shan, X. Q.; Ni, Z. M.
  17. Anal. Chim. Acta v.173 Shan, X. Q.; Wang, D. X.
  18. J. Anal. At. Spectrom. v.3 Wendl, W.; Muller-Vogt, G.
  19. Joint Committee on Powder Diffraction Standards (JCPDS) Powder Diffraction File
  20. Metals Reference Book(4th ed.) Smithells, C. J.
  21. Anal. Sci. v.7 Oishi, K.; Yasuda, K.; Hirokawa, K.

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