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Investigation of Tobacco Pyrolysis Gases and Puff-by-puff Resolved Cigarette Smoke by Single Photon Ionisation (SPI) - Time-of-flight Mass Spectrometry (TOFMS)


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1. Adam, T.: Investigation of Tobacco Pyrolysis Gases and Puff-by-puff resolved Cigarette Smoke by Single Photon Ionisation (SPI) - Time-of-flight Mass Spectrometry (TOFMS); PhD thesis; Technical Uni-versity of Munich (2006)Search in Google Scholar

2. Adam, T., T. Streibel, S. Mitschke, F. Mühlberger, R. R. Baker, and R. Zimmermann: Application of time-of-flight mass spectrometry with laser-based photoioni-zation methods for analytical pyrolysis of PVC and tobacco; J. Anal. Appl. Pyrol. 74 (2005) 454–464.Search in Google Scholar

3. Adam, T., S. Mitschke, T. Streibel, R. R. Baker, and R. Zimmermann: Puff-by-puff resolved characterisation of cigarette mainstream smoke by single photon ionisation (SPI) – time-of-flight mass spectrometry (TOFMS): Comparison of the 2R4F research cigarette and pure Burley, Virginia, Oriental and Maryland tobacco ciga-rettes; Anal. Chim. Acta 572 (2006) 219– 229.Search in Google Scholar

4. Adam, T., S. Mitschke, T. Streibel, R.R. Baker and R. Zimmermann Quantitative puff-by-puff resolved characterization of selected toxic compounds in cigarette mainstream smoke; Chem. Res. Toxicol. 19 (2006) 511–520Search in Google Scholar

5. Adam, T., T. Ferge, S. Mitschke, T. Streibel, R.R. Baker and R. Zimmermann Discrimination of three tobacco types (Burley, Virginia and Oriental) by pyrolysis single photon ionisation (SPI) / time-of-flight mass spectro-metry and advanced statistical methods; Anal. Bioanal. Chem. 381 (2005) 487–499.Search in Google Scholar

6. Adam, T., R.R. Baker and R. Zimmermann: Characteri-zation of puff-by-puff resolved cigarette mainstream smoke by single photon ionization – time-of-flight mass spectrometry and principal component Analysis; J. Agric. Food Chem. 55 (2007) 2055–2061Search in Google Scholar

7. Adam, T., R.R. Bakerm, and R. Zimmermann: Investi-gation, by single photon ionisation (SPI) – time-of-flight mass spectrometry (TOFMS), of the effect of different cigarette-lighting devices on the chemical composition of the first cigarette puff; Anal. Bioanal. Chem. 387 (2007) 575–584.Search in Google Scholar

8. Mitschke, S., T. Adam, T. Streibel, R.R. Baker, and R. Zimmermann: Application of time-of-flight mass spec-trometry with laser-based photo-ionization methods for time-resolved on-line analysis of mainstream cigarette smoke; Anal. Chem. 77 (2005) 2288–2296.Search in Google Scholar

9. Baker, R.R.: Smoke Chemistry; in: Tobacco: Pro-duction, Chemistry, and Technology, edited by L.D. Davis and M.T. Nielsen, Blackwell Science, Oxford, U.K., 1999, pp. 398–439.Search in Google Scholar

10. Dallüge, J., L.L.P. Van Stee, X. Xu, J. Williams, J. Beens, R.J.J. Vreuls, and U.A.T. Brinkman: Unravelling the composition of very complex samples by com-prehensive gas chromatography coupled to time-of-flight mass spectrometry: Cigarette smoke; J. Chro-matogr. A 974 (2002) 169–184.Search in Google Scholar

11. Wakeham, H.: Recent trends in tobacco and tobacco smoke research; 162nd National Meeting of the American Chemical Society, Washington D.C., 1971.10.1007/978-1-4757-0462-4_1Search in Google Scholar

12. Gaworski, C.L., M.M. Dozier, S.R. Eldridge, R. Morrissey, N. Rajendran, and J.M. Gerhart: Cigarette smoke vapor-phase effects on the rat upper respiratory tract; Inhal. Toxicol. 10 (1998) 857–873.Search in Google Scholar

13. Norman, V.: An overview of the vapor phase, sem-volatile and nonvolatile components of cigarette smoke; Rec. Adv. Tob. Sci. 3 (1977) 28–58.Search in Google Scholar

14. Dube, M.F. and C.R. Green: Methods of collection of smoke for analytical purposes; Rec. Adv. Tob. Sci. 8 (1982) 42–102.Search in Google Scholar

15. Streibel, T., K. Hafner, F. Mühlberger, T. Adam, R. Warnecke, and R. Zimmermann: Investigation of NOx precursor compounds and other combustion by-products in the primary combustion zone of a waste incineration plant using on-line, real time mass spectrometry and Fourier-Transform Infrared Spectrometry (FT-IR); Anal. Bioanal. Chem. 384 (2005) 1096–1106.Search in Google Scholar

16. Cao, L., F. Mühlberger, T. Adam, T. Streibel, H.Z. Wang, A. Kettrup, and R. Zimmermann: Resonance-enhanced multiphoton ionization and VUV-single photon ionization as soft and selective laser ionization methods for on-line time-of-flight mass spectrometry: Investigation of the pyrolysis of typical organic conta-minants in the steel recycling process; Anal. Chem. 75 21 (2003) 5639–5645.Search in Google Scholar

17. Mühlberger, F., J. Wieser, A. Ulrich, and R. Zimmer-mann: Coupling of a novel electron beam pumped rare gas-excimer VUV-light source for single photon ioni-zation (SPI) to a mobile time-of-flight mass spectro-meter: A new concept for a robust and compact on-line real-time industrial process gas analyzer; Anal. Chem. 74 (2002) 3790–3801.Search in Google Scholar

18. Mühlberger, F., J. Wieser, A. Morozov, A. Ulrich, and R. Zimmermann: Single-photon ionization quadrupole mass spectrometry with an electron beam pumped excimer light source; Anal. Chem. 77 (2005) 2218–2226.Search in Google Scholar

19. Dorfner, R., T. Ferge, C. Yeretzian, A. Kettrup, and R. Zimmermann: Laser mass spectrometry as on-line sensor for industrial process analysis: Process control of coffee roasting; Anal. Chem. 76 (2004) 1386–1402.Search in Google Scholar

20. Mühlberger, F.: Entwicklung von on-line-Analysever-fahren auf Basis der Einphotonenionisations-Massen-spektrometrie [Development of analytical on-line methods based on single photon ionization mass spectro-metry]; PhD thesis; Technical University of Munich, 2003.Search in Google Scholar

21. Baker, R.R. and L. J. Bishop: The pyrolysis of tobacco ingredients; J. Anal. Appl. Pyrol. 71 (2004) 223–311.10.1016/S0165-2370(03)00090-1Search in Google Scholar

22. Baker, R.R.: A review of pyrolysis studies to unravel reaction steps in burning tobacco; J. Anal. Appl. Pyrol. 11 (1987) 555–573.Search in Google Scholar

23. Shin, E.-J., M.R. Hajaligol, and F. Rasouli: Characterizing biomatrix materials using pyrolysis mole-cular beam mass spectrometer and pattern recognition; J. Anal. Appl. Pyrol. 68 (2003) 213–229.Search in Google Scholar

24. Simmleit, N. and H.-R. Schulten: Differentiation of commercial tobacco blends by pyrolysis field ionization mass spectrometry and pattern recognition; Fresenius J. Anal. Chem. 324 (1986) 9–12.Search in Google Scholar

25. Schulten, H.-R.: Pyrolysis-field ionization mass spectro-metry – A new method for direct, rapid characterization of tobacco; Beitr. Tabakforsch. Int. 13 (1986) 219–227.Search in Google Scholar

26. Halket, J.M.: Rapid characterization of tobacco by com-bined direct pyrolysis-field ionization mass spectrometry and pyrolysis-gas chromatography-mass spectrometry; J. Anal. Appl. Pyrol. 8 (1985) 547 - 560Search in Google Scholar

27. Zimmermann, R., H.J. Heger, and A. Kettrup: On-line monitoring of traces of aromatic-, phenolic- and chlori-nated components in flue gases of industrial scale incinerators and cigarette smoke by direct-inlet laser ionization-mass spectrometry (REMPI-TOFMS); Frese-nius J. Anal. Chem. 363 (1999) 720–730.Search in Google Scholar

28. Zimmermann, R., R. Dorfner, and A. Kettrup: Direct analysis of products form plant material pyrolysis; J. Anal. Appl. Pyrol. 49 (1999) 257–266.Search in Google Scholar

29. Schmeltz, I., W.S. Schlotzhauer, and E.B. Higman: Characteristic products from pyrolysis of nitrogenous organic substances; Beitr. Tabakforsch. 6 (1972) 134– 138.Search in Google Scholar

30. Stedman, R.L.: The chemical composition of tobacco and tobacco smoke; Chem. Rev. 68 (1968) 153–207Search in Google Scholar

31. Schmeltz, I., A. Wenger, D. Hoffmann, and T.C. Tso: Chemical studies on tobacco smoke. 63. On the fate of nicotine during pyrolysis and in a burning cigarette; J. Agric. Food Chem. 27 (1979) 602–608.Search in Google Scholar

32. Evans, R.J. and T.A. Milne: Molecular characterization of the pyrolysis of biomass. 1. Fundamentals; Energy & Fuels 1 (1987) 123–137.Search in Google Scholar

33. Palmer, G.K. and R.C. Pearce: Light air-cured tobacco; in: Tobacco – Production, Chemistry, and Technology, edited by D.L. Davis and M.T. Nielsen, Blackwell Science, Oxford, U.K.; 1999, pp. 143–153.Search in Google Scholar

34. Bokelman, G.H. and W.S. Ryan: Analyses of bright and burley tobacco laminae and stems; Beitr. Tabakforsch. Int. 13 (1985) 29–36.Search in Google Scholar

35. Peedin, G.F.: Flue-cured tobacco; in: Tobacco – Production, Chemistry, and Technology, edited by D. L. Davis and M.T. Nielsen, Blackwell Science, Oxford, U.K., 1999, 104–142.Search in Google Scholar

36. Gilchrist, S.N.: Oriental tobacco; in: Tobacco – Production, Chemistry, and Technology, edited by D. L. Davis and M.T. Nielsen, Blackwell Science, Oxford, U.K., 1999, pp. 154–164.Search in Google Scholar

37. Schlotzhauer, W.S. and O.T. Chortyk: Recent Advances in studies on the pyrosynthesis of cigarette smoke constituents; Rec. Adv. Tob. Sci. 12 (1987) 193–222.Search in Google Scholar

38. Fisher, R.: The use of multiple measurements in taxo-nomic problems; Ann. Eugenics 7 (1936) 179–188.Search in Google Scholar

39. Duda, R.O. and P.E. Hart: Pattern classification and scene analysis; John Wiley & Sons Inc., New York, 1973, p. 482.Search in Google Scholar

40. Krishnan, S., K. Samdravijava, and P.V.S. Rao: Feature selection for pattern classification with Gaussian mixture models: A new objective criterion; Patt. Rec. Lett. 17 (1996) 803–809.Search in Google Scholar

41. Vilcins, G.: Determination of ethylene and isoprene in the gas phase of cigarette smoke by infrared spectro-scopy; Beitr. Tabakforsch. 8 (1975) 181–185.Search in Google Scholar

42. Ceschini, P. and A. Lafaye: Evolution of the Gas-vapour phase and the total particulate matter of cigarette smoke in a single puff; Beitr. Tabakforsch. Int. 8 (1976) 378-–381.Search in Google Scholar

43. Parrish, M.E., J.L. Lyons-Hart, and K.H. Shafer: Puff-by-puff and intrapuff analysis of cigarette smoke using infrared spectroscopy; Vib. Spectrosc. 27 (2001) 29–42.Search in Google Scholar

44. Li, S., J.L. Banyasz, M.E. Parrish, J. Lyons-Hart, and K.H. Shafer: Formaldehyde in the gas phase of main-stream cigarette smoke; J. Anal. Appl. Pyrol. 65 (2002) 137–145.Search in Google Scholar

45. Parrish, M.E., C.N. Harward, and G. Vilcins: Simulta-neous monitoring of filter ventilation and a gaseous com-ponent in whole cigarette smoke using tunable diode laser infrared spectroscopy; Beitr. Tabakforsch. Int. 13 (1986) 169–181.Search in Google Scholar

46. Parrish, M.E. and C.N. Harward: Measurement of form-aldehyde in a single puff of cigarette smoke using tunable diode laser infrared spectroscopy; Appl. Spectrosc. 54 (2000) 1665–1677.Search in Google Scholar

47. Shi, Q., D.D. Nelson, J.B. McManus, M.S. Zahniser, M.E. Parrish, R.E. Baren, K.H. Shafer, and C.N. Harward: Quantum cascade infrared laser spectroscopy for real-time cigarette smoke analysis; Anal. Chem. 75 (2003) 5180–5190.Search in Google Scholar

48. Baren, R.E., M.E. Parrish, K.H. Shafer, C.N. Harward, Q. Shi, D.D. Nelson, J.B. MacManus, and M.S. Zahniser: Quad quantum cascade laser spectrometer with dual gas cells for the simultaneous analysis of main-stream and sidestream cigarette smoke; Spectrochim. Acta A 60 (2004) 3437–3447.Search in Google Scholar

49. Plunkett, S., M.E. Parrish, K.H. Shafer, D. Nelson, J. Shorter, and M. Zahniser: Time-resolved analysis of cigarette combustion gases using a dual infrared tunable diode laser system; Vib. Spectrosc. 27 (2001) 53–63.Search in Google Scholar

50. Thomas, C.E. and K.B. Koller: Puff-by-puff mainstream smoke analysis by multiplex gas chromatography-mass spectrometry; Beitr. Tabakforsch. Int. 19 (2001) 345–351.Search in Google Scholar

51. Li, S., R.M. Olegario, J.L. Banyasz, and K.H. Shafer: Gas chromatography-mass spectrometry analysis of polycyclic aromatic hydrocarbons in single puff of ciga-rette smoke; J. Anal. Appl. Pyrol. 66 (2003) 156–163.Search in Google Scholar

52. Wagner, K.A., R. Higby, and K. Stutt: Puff-by-puff analysis of selected mainstream smoke constituents in the Kentucky reference 2R4F cigarette; Beitr. Tabakforsch. Int. 21 (2005) 273–279.Search in Google Scholar

53. Crooks, E.L. and D. Lynm: The measurement of intra-puff nicotine yield; Beitr. Tabakforsch. Int. 15 (1992) 75–86.Search in Google Scholar

54. Baker, R.R. and C.J. Proctor: 2001 – A smoke odyssey; Coresta 2001; Xian, China, 2001.Search in Google Scholar

55. Chen, P.X. and S.C. Moldoveanu: Mainstream smoke chemical analyses for 2R4F Kentucky reference cigarette; Beitr. Tabakforsch. Int. 20 (2003) 448–458.Search in Google Scholar

56. Williams, T.B.: The determination of nitric oxide in gas phase cigarette smoke by non-dispersive infrared analysis; Beitr. Tabakforsch. Int. 10 (1980) 91–99.Search in Google Scholar

57. Vilcins, G. and J.O. Lephardt: Ageing processes of cigarette smoke: formation of methyl nitrite; Chem. Ind. (London) 22 (1975) 974–975.Search in Google Scholar

58. Cueto, R. and W.A. Pryor: Cigarette smoke chemistry: conversion of nitric oxide to nitrogen dioxide and reactions of nitrogen oxides with other smoke components as studied by Fourier transform infrared spectroscopy; Vib. Spectrosc. 7 (1994) 97–111.Search in Google Scholar

59. Borland, C.D.R., A.T. Chamberlain, T.W. Higenbottam, R.W. Barber, and B.A. Thrush: A comparison between the rate of reaction of nitric oxide in the gas phase and in whole cigarette smoke; Beitr. Tabakforsch. Int. 13 (1985) 67–73.Search in Google Scholar

60. Sloan, C.H. and J.E. Keifer: Determination of NO and NO2 in cigarette smoke from kinetic data; Tob. Sci. 13 (1969) 180–182.Search in Google Scholar

61. Baker, R R. and R.A. Crellin: The diffusion of carbon monoxide out of cigarettes; Beitr. Tabakforsch. 9 (1977) 131–140.Search in Google Scholar

62. Baker, R.R. and D.P. Robinson: Tobacco combustion – the last ten years; Rec. Adv. Tob. Sci. 16 (1990) 3–101.Search in Google Scholar

63. Li, S., J.L. Banyasz, R.M. Olegario, C.B. Huang, E.A. Lambert, and K.H. Shafer: The flame effect on benzo[a]pyrene in cigarette smoke; Combust. Flame 128 (2002) 314–319.Search in Google Scholar

64. Hoffmann, D. and I. Hoffmann: The changing cigarette: Chemical studies and bioassays; Monograph 13: Risks associated with smoking cigarettes with low tar machine-measured yields of tar and nicotine; Chapter 5; Rockville, Maryland, U.S., pp. 159–185.Search in Google Scholar

65. Hoffmann, D., I. Hoffmann, and K. El-Bayoumy: The less harmful cigarette: A controversial issue. A tribute to Ernst L. Wynder; Chem. Res. Toxicol. 14 (2001) 767–790.Search in Google Scholar

66. Baker, R.R.: Temperature variation within a cigarette combustion coal during the smoking cycle; High. Temp. Sci. 7 (1975) 236–247.Search in Google Scholar

67. Seeman, J.I., S.W. Laffoon, and A.J. Kassman: Evalu-ation of relationships between mainstream smoke acetaldehyde and “tar” and carbon monoxide yields in tobacco smoke and reducing sugars in tobacco blends of U.S. commerical cigarettes; Inhal. Toxicol. 15 (2003) 373–395.Search in Google Scholar

68. Seeman, J.I., M. Dixon, and H.-J. Haussmann: Acet-aldehyde in mainstream tobacco smoke: formation and occurence in smoke and bioavailability in the smoker; Chem. Res. Toxicol. 15 (2002) 1331–1350.Search in Google Scholar

69. Brunnemann, K.D., J. Masaryk, and D. Hoffmann: The role of tobacco stems in the formation of N-nitrosamines in tobacco and cigarette mainstream and sidestream smoke; J. Agr. Food Chem. 31 (1983) 1221–1224.Search in Google Scholar

70. Norman, V., A.M. Ibrig, T.M. Larson, and B.L. Moss: The effect of some nitrogenous blend components on NO/NOX and HCN levels in mainstream and sidestream smoke; Beitr. Tabakforsch. Int. 12 (1983) 55–62.Search in Google Scholar

71. Hoffmann, D. and I. Hoffmann: The changing cigarette: 1950–1995; J. Toxicol. Env. Health 50 (1997) 307–364.Search in Google Scholar

72. Fowles, J. and M. Bates: The chemical constituents in cigarettes and cigarette smoke: Priorities for harm reduction; A report to the New Zealand Ministry of Health; Kenepuru Science Centre, Prirua, 2000, pp. 1–67.Search in Google Scholar

73. Fowles, J. and E. Dybing: Application of toxicological risk assessment principles to the chemical constituents of cigarette smoke; Tob. Control 12 (2003) 424–430.Search in Google Scholar

74. Vorhees, D.J., W. Heiger-Bernays, and M.D. McClean: Human health risk associated with cigarette smoke: The link between smoke constituents and additives; Menzie-Cura & Associates, Chelmsford, 1997.Search in Google Scholar

75. Rodgman, A. and C.R. Green: Toxic chemicals in ciga-rette mainstream smoke – hazards and hoopla; Beitr. Tabakforsch. Int. 20 (2003) 481–545.Search in Google Scholar

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