Determination of carbonyls using liquid chromatography-mass spectrometry with atmospheric pressure chemical ionization

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Christine Kempter, Gabriela Zurek and Uwe Karst


Abstract

A liquid chromatographic method for the determination of aldehydes and ketones based on mass spectrometric detection is described. Recently developed modular derivatizing agents are employed for analysis. These hydrazine reagents, e.g. 4-dimethylamino-6-(4-methoxy-1-naphthyl)-1,3,5-triazine-2-hydrazine (DMNTH), react with the carbonyl compounds with the formation of the respective hydrazones, which are separated by HPLC-MS with atmospheric pressure chemical ionization in the positive mode. Electrospray ionization may also be used for analysis. Particular focus is directed on various calibration approaches, including external calibration with standard solutions and internal calibration with a hydrazone standard of cyclobutanone, an aldehyde not likely to occur in real samples. A second approach for internal calibration is based on the 13C2-labelled acetaldehyde hydrazone standard. Different calibration approaches may then be used for the analysis of real samples. Limits of detection range from 2×10–8 to 5×10–8 mol L–1 for a series of hydrazones, including hydrazones of saturated aldehydes with alkyl chain lengths from 1 to 7 carbon atoms, and hydrazones of selected unsaturated and aromatic aldehydes as well as ketone hydrazones.


References

  1. R. H. Beasley, C. E. Hoffmann, M. L. Rueppel and J. W. Worley, Anal. Chem., 1980, 52, 1110 CrossRef CAS.
  2. K. Kuwata, M. Uebori and H. J. Yamasaki, J. Chromatogr. Sci., 1979, 17, 264 CAS.
  3. D. Grosjean and K. Fung, Anal. Chem., 1982, 54, 1221 CrossRef CAS.
  4. W. Pötter and U. Karst, Anal. Chem., 1996, 68, 3354 CrossRef.
  5. J.-O. Levin, K. Andersson, R. Lindahl and C. A. Nilsson, Anal. Chem., 1985, 57, 1032 CAS.
  6. R. R. Miksch, D. W. Anthon, L. Z. Fanning, C. D. Hollowell, K. Revzan and J. Glanville, Anal. Chem., 1981, 53, 2118 CrossRef.
  7. I. Ahonen, E. Priha and M.-L. Äijälä, Chemosphere, 1984, 13, 521 CAS.
  8. C. H. Risner and P. J. Martin, Chromatogr. Sci., 1994, 32, 76 Search PubMed.
  9. W. Schmied, M. Przewosnik and K. Bächmann, Fresenius' Z. Anal. Chem., 1989, 335, 464 CAS.
  10. D. R. Rodier, L. Nondek and J. W. Birks, Environ. Sci. Technol., 1993, 27, 2814 CAS.
  11. K. L. Olson and S. J. Swarin, J. Chromatogr., 1985, 333, 337 CrossRef CAS.
  12. S. Kölliker, M. Oehme and C. Dye, Anal. Chem., 1998, 70, 1979 CrossRef.
  13. G. Zurek, H. Luftmann and U. Karst, 1999, submitted for publication.
  14. C. Kempter, W. Pötter, N. Binding, H. Kläning, U. Witting and U. Karst, 1999, submitted for publication.
  15. R. Willoughby, E. Sheehan and S. Mitrovich, A Global View of LC/MS, Pittsburgh, Global View Publications, 1998, p. 351 Search PubMed.
  16. R. Baldwin, R. A. Bethem, R. K. Boyol, W. L. Budde, T. Cairns, R. D. Gibbens, J. D. Henion, M. A. Kaiser, D. L. Lewis, J. E. Matusik, J. A. Sphon, R. W. Stephany and R. K. Trubey, J. Am. Soc. Mass Spectrom., 1997, 8, 1180 CrossRef CAS.
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