Multi-element analysis of airborne particulate matter collected on PTFE-membrane filters by laser ablation inductively coupled plasma mass spectrometry

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

Ching-Jer Chin, Chu-Fang Wang and Su-Ling Jeng


Abstract

Direct analysis of airborne particulate matter collected on PTFE-membrane filters using laser ablation inductively coupled plasma mass spectrometry (LA-ICP-MS) was performed. Laboratory prepared standard filter samples were analyzed. Several parameters, including the laser energy, pulse type and beam focus, thermal properties and homogeneity of the sample and the carrier gas flow rate, may affect the LA-ICP-MS measurement. The influences of these parameters were thoroughly examined. Empirical results obtained here demonstrated that applying LA-ICP-MS for multi-element analysis of airborne particulate matter collected on PTFE-membrane filter is feasible. More than 20 major, minor and trace elements in airborne particles on PTFE membrane filters can be determined. It was found that the optimum ablation efficiency can be achieved using a 160 mJ single shot laser operated in the free-running mode with a 6.5 mm defocus distance from the filter surface. The optimum transport efficiency for most of the elements can be obtained if the argon gas flow rate is kept at 0.8 L min–1.


References

  1. C. F. Wang, E. E. Chang, P. C. Chiang and N. K. Aras, Analyst, 1995, 120, 2521 RSC.
  2. C. F. Wang, M. F. Huang, E. E. Chang and P. C. Chiang, Anal. Sci., 1996, 12, 201 CAS.
  3. H. Kawaguchi, T. Tanaka, T. Nakamuram, M. Morishita and A. Mizuike, Anal. Sci., 1987, 3, 205.
  4. J. A. Olivares and R. S. Houk, Anal. Chem., 1986, 58, 20 CrossRef CAS.
  5. B. S. Sheppard, D. T. Heitkemper and C. M. Gaston, Analyst, 1994, 119, 1683 RSC.
  6. L. Ebdon, A. S. Fisher and P. J. Worsfold, J. Anal. At. Spectrom., 1994, 9, 611 RSC.
  7. D. E. Nixon and T. P. Moyer, Spectrochim. Acta, Part B, 1996, 51, 13 CrossRef.
  8. N. Imai, Anal. Chim. Acta, 1989, 235, 381 CrossRef CAS.
  9. S. F. Durrant and N. I. Ward, Food Chem., 1994, 49, 317 CrossRef CAS.
  10. C. F. Wang, S. L. Jeng and F. J. Shieh, J. Anal. At. Spectrom., 1997, 12, 61 RSC.
  11. C. Luedke, E. Hoffmann and J. Skole, Fresenius' J. Anal. Chem., 1994, 350, 272 CAS.
  12. F. N. Abercrombie, M. D. Silvester, A. D. Murray and A. R. Barringer, in Application of ICP to Emission Spectrometry, ed. Barnes, R. M., Franklin Institute Press, Philadelphia, 1987, p. 121 Search PubMed.
  13. E. R. Denoyer, K. J. Freeden and J. W. Hager, Anal. Chem., 1991, 63, 455A.
  14. S. A. Darke and J. F. Tyson, J. Anal. At. Spectrom., 1993, 8, 145 RSC.
  15. S. Tanaka, N. Yasushi, N. Sato, T. Fukasawa, S. J. Santosa, K. Yamanaka and T. Ootoshi, J. Anal. At. Spectrom., 1998, 13, 135 RSC.
  16. C. F. Wang, S. L. Jeng, C. C. Lin and P. C. Chiang, Anal. Chim. Acta, 1998, 368, 11 CrossRef CAS.
  17. L. Moenke-Blankenburg, M. Gäckle, D. Günther and J. Kammel, in Plasma Source Mass Spectrometry, ed. K. E. Jarvis, A. L. Gray, I. Jarvis and J. G. Williams, Royal Society of Chemistry, Cambridge, 1990, p. 1 Search PubMed.
  18. D. Pottor and I. Abell, Anal. Sci., 1991, 7, 1239.
  19. R. L. Armstrong and A. Zardecki, Appl. Opt., 1990, 29, 1786 CAS.
  20. I. D. Abell, in Applications of Plasma Source Mass Spectrometry, ed. Holland, G., and Eaton, A. N., Royal Society of Chemistry, Cambridge, 1991, p. 209 Search PubMed.
  21. P. Arrowsmith and S. K. Hughes, Appl. Spectrosc., 1988, 42, 1231 CAS.
  22. T. Mochizuki, A. Sakashita, H. Iwata, T. Kagaya, T. Shimamura and P. Blair, Anal. Sci., 1988, 4, 403 CrossRef CAS.
  23. S. T. Durrant and N. I. Ward, Food Chem., 1994, 49, 317 CrossRef CAS.
  24. L. A. Currie, Anal. Chem., 1968, 40, 586 CrossRef CAS.
Click here to see how this site uses Cookies. View our privacy policy here.