Flow injection on-line photochemical reaction coupled to spectrofluorimetry for the determination of thiamine in pharmaceuticals and serum

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Hengwu Chen, Xiaoxia Cao, Qiongjun Fang and Jingping Zhu


Abstract

The photochemical reaction of thiamine was studied with a photochemical reactor made by coiling a knotted PTFE reactor around a low-pressure mercury lamp. Acetone, which was previously reported to be a sensitizer for the photochemical reaction that took place in situ in a flow-through cell, severely depressed the fluorescence signal of the photochemical reaction that took place on-line in the knotted PTFE reactor when sodium sulfite was involved in the photochemical reaction. Experiments revealed that the effect of acetone on the photochemical reaction was dependent on the intensity of the irradiation that was used to induce the photochemical reaction, and that acetone might impair the photochemically induced fluorescence if strong UV irradiation was applied to induce the photochemical reaction and sodium sulfite was used to enhance the fluorescence signal. Based on these observations, a flow injection on-line photochemical–spectrofluorimetric method for the determination of thiamine was developed without using acetone. With the proposed method, a detection limit of 0.11 µg l1 thiamine, a relative standard deviation of 0.36% for 11 determinations of 1 mg l1 thiamine and a sampling frequency of 100 h1 were achieved. The developed method was successfully applied to the determination of the thiamine content in various pharmaceutical preparations and serum.


References

  1. R. Strochecker and H. M. Henning, Vitamin Assay Tested Methods, Verlag Chemie, Weinheim, 1965 Search PubMed.
  2. B. C. P. Jansen, Rec. Trav. Chim. Pays-Bas, 1936, 55, 1046 CAS.
  3. M. Fujimara and K. Matsui, Anal. Chem., 1953, 25, 810 CrossRef.
  4. E. E. Edwin, R. Jackman and N. Hebert, Analyst, 1975, 100, 689 RSC.
  5. M. A. Ray and J. D. Ingle, Jr., Anal. Chem., 1980, 52, 2177 CrossRef.
  6. B. Karlberg and S. Thelander, Anal. Chim. Acta, 1980, 114, 129 CrossRef CAS.
  7. C. Martinez-Lozano, T. Pérez-Ruiz, V. Tomás and C. Abellán, Analyst, 1990, 115, 217 RSC.
  8. A. Kusude, O. Hiroshima, Y. Ishiguro, S. Ishikawa and H. Hoshida, Chem. Pharm. Bull., 1983, 31, 3589.
  9. J. W. Birks and R. W. Frei, Trends Anal. Chem., 1982, 1, 361 CrossRef CAS.
  10. X.-q. Guo, J.-g. Xu and G.-z. Chen, Fenxi Huaxue, 1991, 19, 244 CAS.
  11. D. Chen, A. Rios, M. D. Luque de Castro and M. Valcarcel, Analyst, 1991, 116, 171 RSC.
  12. D. Chen, A. Rios, M. D. Luque de Castro and M. Valcarcel, Talanta, 1991, 38, 1227 CrossRef CAS.
  13. J. Martinez Calatayud and C. Gomez Benito, Anal. Chim. Acta, 1992, 256, 105 CrossRef.
  14. J.-p. Zhu, H.-w. Chen and Q.-j. Fang, Fenxi Huaxue, 1997, 25, 573 CAS.
  15. A. Mellado Romero, C. Gomez Benito and J. Martinez Calatayud, Anal. Lett., 1992, 25, 1289.
  16. J. Martinez Calatayud and C. Gomez Benito, Anal. Chim. Acta, 1991, 245, 101 CrossRef.
  17. M. C. Mahedero and J. J. Aaron, Anal. Chim. Acta, 1992, 269, 193 CrossRef CAS.
  18. X.-q. Guo, J.-g. Xu, Y.-z. Wu, Y.-b. Zhao, X.-z. Huang and G.-z. Chen, Anal. Chim. Acta, 1993, 275, 151 CrossRef CAS.
  19. H.-w. Chen, S.-k. Xu and Z.-l. Fang, J. Anal. At. Spectrom., 1995, 10, 533 RSC.
  20. J. Růžička and E. H. Hansen, Flow Injection Analysis, Wiley, New York, 2nd edn., 1988 Search PubMed.
  21. United States Pharmacopeia XXIII, US Pharmacopeial Convention, Rockville, MD, 1995, p. 1751 Search PubMed.
  22. Zhejiang Provincial Pharmacopeia IV, Zhejiang Press House of Science and Technology, Hangzhou, 1993, pp. 288 and 459 Search PubMed.
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