ANALYSIS OF OILS USING FLUORESCENCE.
29
(2001).
73 S. C. George, T. E. Ruble, A. Dutkiewicz, and P. J. Eadington, Assessing the maturity of oil trapped in
fluid inclusions using molecular geochemistry data and visually-determined fluorescence colours, Appl.
Geochem. 16(4), 451-473 (2001).
74 N. H. Oxtoby, Comments on: Assessing the maturity of oil trapped in fluid inclusions using molecular
geochemistry data and visually-determined fluorescence colours, Appl. Geochem. 17(10), 1371-1374
(2002).
75 S. C. George, T. E. Ruble, A. Dutkiewicz, and P. J. Eadington, Reply to comment by Oxtoby on
"Assessing the maturity of oil trapped in fluid inclusions using molecular geochemistry data and
visually-determined fluorescence colours", Appl. Geochem. 17(10), 1375-1378 (2002).
76 J. Kihle, Adaptation of fluorescence excitation-emission micro-spectroscopy for characterization of single
hydrocarbon fluid inclusions, Org. Geochem. 23(11-12), 1029-1042 (1995).
77 J. Pironon, Synthesis of hydrocarbon fluid inclusions at low temperature. Am. Mineral. 75, 226–229
(1990).
78 S. Teinturier and J. Pironon, Experimental growth of quartz in petroleum environment. part I: procedures
and fluid trapping, Geochim. Cosmochim. Ac. 68(11), 2495-2507 (2004).
79 J. Pironon, M. Canals, J. Dubessy, F. Walgenwitz, and C. Laplace-Builhe, Volumetric reconstruction of
individual oil inclusions by confocal scanning laser microscopy, Eur. J. Mineral. 10(6), 1143-1150
(1998).
80 C. E. Brown, R. D. Nelson, M. F. Fingas, and J. V. Mullin, Laser fluorosensor overflights of the Santa
Barbara oil seeps, Spill Sci. Technol. B. 3(4), 227-230 (1996).
81 C. E. Brown and M. F. Fingas, Review of the development of laser fluorosensors for oil spill application,
Mar. Pollut. Bull. 47(9-12), 477-484 (2003).
82 P. Lambert, M. Goldthorp, B. Fieldhouse, Z. Wang, M. Fingas, L. Pearson, and E. Collazzi, Field
fluorometers as dispersed oil-in-water monitors, J. Hazard. Mater. 102(1), 57-79 (2003).
83 M. F. Quinn, A. S. Al-Otaibi, A. Abdullah, P. S. Sethi, F. Al-Bahrani, and O. Alameddine, Determination
of intrinsic fluorescence lifetime parameters of crude oils using a laser fluorosensor with a streak
camera detection system, Instrum. Sci. Technol. 23(3), 201-215 (1995).
84 D. M. Rayner, M. Lee, and A. G. Szabo, Effect of sea-state on performance of laser fluorosensors, Appl.
Optics 17(17), 2730-2733 (1978).
85 S. D. Alaruri, M. Rasas, O. Alamedine, S. Jubian, F. Al-Bahrani, and M. Quinn, Remote characterization
of crude and refined oils using a laser fluorosensor system, Opt. Eng. 34(1), 214-221 (1995).
86 J. S. Knoll, Visible fluorescence from ultraviolet excited crude oil, Appl. Optics 24(14), 2121-2123
(1985).
87 T. Hengstermann and R. Reuter, Lidar fluorosensing of mineral oil spills on the sea surface, Appl. Optics,
29(22), 3218-3227 (1990).
88 D. E. Nicodem, C. L. B. Guedes, and R. J. Correa, Photochemistry of petroleum I. Systematic study of a
Brazilian intermediate crude oil, Mar. Chem. 63(1-2), 93-104 (1998).
89 A. Boukir, M. Guiliano, L. Asia, A. El Hallaoui, G. Mille, A fraction to fraction study of photo-oxidation
of BAL 150 crude oil asphaltenes, Analusis 26(9), 358-364 (1998).
90 J. Li, S. Fuller, J. Cattle, C. Pang Way, and D. B. Hibbert, Matching fluorescence spectra of oil spills with
spectra from suspect sources, Anal. Chim. Acta 514(1), 51-56 (2004).
91 T. J. Killeen, D. Eastwood and M. Schulz Hendrick, Oil-matching by using a simple vector model for
fluorescence spectra, Talanta 28(1), 1-6 (1981).
92 J. M. Andrews and S. H. Lieberman, Neural-Network approach to qualitative identification of fuels and
oils from laser-induced fluorescence-spectra, Anal. Chim. Acta 285(1-2), 237-246 (1994).
93 L. M. He, L. L. Kear-Padilla, S. H. Lieberman, and J. M. Andrews, Rapid in situ determination of total oil
concentration in water using ultraviolet fluorescence and light scattering coupled with artificial neural
networks, Anal. Chim. Acta 478(2), 245-258 (2003).
94 T. A. Dolenko, V. V. Fadeev, I. V. Gerdova, S. A. Dolenko, and R. Reuter, Fluorescence diagnostics of
oil pollution in coastal marine waters by use of artificial neural networks, Appl. Optics 41(24), 51555166 (2002).
95 F. C. Albuquerque, D. E. Nicodem, K. Rajagopal, Investigation of asphaltene association by front-face
fluorescence spectroscopy, Appl. Spectrosc. 57(7), 805-810 (2003).
96 S. I. Andersen, A. Keul, and E. Stenby, Variation in composition of subfractions of petroleum asphaltenes,
Petrol. Sci. Technol. 15(7-8), 611-645 (1997).
97 H. Groenzin, and O. C. Mullins, Asphaltene molecular size and structure, J. Phys. Chem. A 103(50),
11237-11245 (1999).
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