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6 May / June 2014


the applicability of gas chromatographic techniques in petroleomics by increasing the maximum allowable operating temperature of GC columns stability of stationary phases and manufacturing novel phases with unique selectivities (e.g., ionic liquids and polymeric ionic liquids [14,36]). Also, hyphenation of GC×GC to high-resolution mass spectrometers and/or tandem mass spectrometers will improve structural elucidation of novel biomarkers. Naturally, complex and massive data sets are now being generated by modern analytical systems in petroleomics; therefore, it is expected that updated protocols for data analysis (e.g. chemometrics) will increase in the scientific literature.


5. Acknowledgements


The Brazilian Ministry of Education Agency for Improvement of Graduate Personnel (CAPES), the National Council for Scientific and Technological Development (CNPq), and the São Paulo Research Foundation (FAPESP) are thanked for funding.


6. References


[1] K.E. Peters, C.C Walters, J.M. Moldowan The Biomarker Guide. Biomarkers and Isotopes in Petroleum Systems and Earth History, vols. 1 and 2. Cambridge University Press, USA, 2005, p. 1155.


[2] H.M.E. Van Kaam-Peters, S. Shouten, J.W. de Leeuw, J.S. Sinninghe Damsté, Organic. Geochem. 27 (1997) 399.


[3] S.C. George, H. Volk, A. Dutkiewicz, J. Ridley, R. Buick, Geochim. Cosmochim. Acta 72 (2008) 844.


[4] A. Bechtel, M. Hámor-Vidó, R.F. Sachsenhofer, D. Reischenbacher, R. Gratzer, W. Püttman, Int. J. Coal. Geol. 72 (2007) 33.


[5] P. Farrimond, A. Taylor, N. Telnaes, Org. Geochem. 29 (1998) 1181.


[6] A.E. Pomerantz, G.T. Ventura, A.M. McKenna, J.A. Cañas, J. Auman, K. Koerner, D. Curry, R.K. Nelson, C.M Rodgers, A.G Marshall, K.E. Peters, Mullins, Org. Geochem. 41 (2010) 812.


[7] D.A. Azevedo, J.B. Tamanqueira, J.C.M. Dias, A.P.B Carmo, L. Landau, F.T.T. Gonçalves, Fuel 87 (2008) 2122.


[8] T.F. Silva, D.A. Azevedo, M.D. Rangel, F.R. Aquino Neto, Org. Geochem. 39 (2008) 1249.


[9] ASTM (American Society for Testing and Materials), Standard Test Methods for Comparison of Waterborne Petroleum Oils by Gas Chromatography, D-3328-00, 2000a, W. Conshohocken, PA.


[10] A. Aguiar, A.I. Silva Júnior, D.A. Azevedo, F.R. Aquino Neto, Fuel 89 (2010) 2760.


[11] A.P. Kiepper, A. Casilli, D.A. Azevedo, Org. Geochem. 70 (2014) 62.


[12] C. Eiserbeck, R.K. Grice, J. Curiale, C.M. Reddy, Geochim. Cosmochim. Acta 87 (2012) 299.


[13] E. de Hoffman, V. Stroobant, Mass spectrometry, Wiley, Brussels, 2007, p. 479.


[14] J.C. Giddings, J. Chromatogr. A 703 (1995) 3.


[15] J.B. Phillips, J. Beens, J. Chromatogr. A 856 (1999) 331.


[16] J.V. Seeley, S.K. Seeley, Anal. Chem. 85 (2012) 557.


[17] T.D. Ho, C. Zhang, L.W. Hantao, Anal. Chem. 86 (2014) 262.


[18] P. Marriot, R. Shellie, TrAC, Trends Anal. Chem. 21 (2002) 573.


[19] P.J. Marriott, S. T. Chin, B. Maikhunthod, H.G. Schmarr, S. Bieri, TrAC, Trends Anal. Chem. 34 (2012) 1.


[20] J.V. Seeley, J. Chromatogr. A 1255 (2012) 24.


[21] P.Q. Tranchida, D. Sciarrone, P. Dugo, L. Mondello, Anal. Chim. Acta 716 (2012) 66.


[22] M. Edwards, A. Mostafa, T. Gorécki, Anal. Bioanal. Chem. 401 (2011) 2335.


[23] P.Q. Tranchida, G. Purcaro, P. Dugo, L. Mondello, TrAC, Trends Anal. Chem. 30 (2011) 1437.


[24] J.C. Gidding, Anal. Chem. 56 (1984) 1258.


[25] M. Edwards, A. Mostafa, T. Górecki, Anal. Bioanal. Chem. 401 (2011) 2335.


[26] P.J. Marriott, S.T. Chin, B. Maikhunthod, H.G. Schmarr, S. Bieri, Trends Anal. Chem. 34 (2012) 1.


[27] Z. Liu, J.B. Phillips, J. Chromatogr. Sci. 29 (1991) 227.


[28] J.A. Murray, J. Chomatogr. A 1261 (2012) 58.


[29] B.M.F. Avila, A. Aguiar, A.O. Gomes, D.A. Azevedo, Org. Geochem. 41 (2010) 863.


[30] G.S. Frysinger, R.B. Gaines, J. Sep. Sci. 24 (2001) 87.


[31] R.B. Gaines, G.S. Frysinger, C.M. Reddy, R.K. Nelson, Oil Spill Source Identification by Comprehensive Two- Dimensional Gas Chromatography (GC×GC). Oil Spill Fingerprinting and Source Identification, Chap 5, 2006, p. 169-206.


[32] C. Eiserbeck, R.K. Nelson, K. Grice, J. Curiale, C.M. Reddy, P. Raiteri, J. Chromatogr. A 1218 (2011) 5549.


[33] C.R. Oliveira, A.A. Ferreira, C.J.F. Oliveira, D.A. Azevedo, E.V. Santos Neto, F.R. Alquino Neto, Org. Geochem 46 (2012) 154.


[34] G.T. Ventura, G.J. Hall, R.K. Nelson, G.S. Frysinger, B. Raughuraman, A.E. Pomerantz, O.C. Mullins, C.M. Reddy, J. Chromatogr. A 1218 (2011) 2584.


[35] T. C. Tran, G. A. Logan, E. Grosjean, D. Ryan, P. J. Marriott, Geochim. Cosmochim. Acta 74 (2010) 6468.


[36] L.W. Hantao, A. Najafi, C. Zhang, Anal. Chem. 86 (2014) 3717.


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