28
A. G. RYDER
45 K. L. Yong and J. G. Lu, Common and diverse characteristics of three-dimensional fluorescence spectra
of crude oils, Spectrosc. Lett. 33(6), 963-970 (2000).
46 J. Lu, and K. Yong, Fluorescence quenching phenomena in three-dimension of fluorescence
determination of crude oils. Fenxi Shiyanshi 17(6), 28-31, (1998).
47 G. C. Smith and J. F. Sinski, The red-shift cascade: Investigations into the concentration-dependent
wavelength shifts in three-dimensional fluorescence spectra of petroleum samples, Appl. Spectrosc.
53(11), 1459-1469 (1999).
48 J. F. Sinski, B. S. Compton, B. S. Perkins, and M. C. Nicoson, Utilizing three-dimensional fluorescence' s
red-shift cascade effect to monitor mycobacterium PRY-1 degradation of aged petroleum, Appl.
Spectrosc. 58(1), 91-95 (2004).
49 D. Patra and A. K. Mishra, Total synchronous fluorescence scan spectra of petroleum products, Anal.
Bioanal. Chem. 373(4-5), 304-309 (2002).
50 A. G. Ryder, Assessing the Maturity of crude petroleum oils using total synchronous fluorescence scan
spectra, J. Fluor. 14(1), 99-104 (2004).
51 X. Wu, E. B. Dussan V, and O. C. Mullins, Using an optical sensor to quantify the amount of oil, water,
and gas in a water-continuous flow, Proc SPIE – Int. Soc. Opt. Eng. 3856, 298-307 (1999).
52 US Patent 6,704109 B2.
53 T. D. Downare, O. C. Mullins, and X. Wu, Optimization of a fluorescence detection system for the
characterization of solids, Appl. Spectrosc., 48(12), 1483-1490 (1994).
54 J. Bublitz, M. Dickenhausen, M. Gratz, S. Todt, and W. Schade, Fiberoptic laser-induced fluorescence
probe for the detection of environmental-pollutants, Appl. Opt. 34(18), 3223-3233 (1995).
55 W. Schade and J. Bublitz, On-site laser probe for the detection of petroleum products in water and soil,
Environ. Sci. Technol. 30(5), 1451-1458 (1996).
56 M. L. Pascu, N. Moise, and A. Staicu, Tunable dye laser applications in environment pollution
monitoring, J. Mol. Struct. 598(1), 57-64 (2001).
57 S. Landgraf, Application of semiconductor light sources for investigations of photochemical reactions,
Spectrochim. Acta A 57(10), 2029-2048 (2001).
58 S. Landgraf, Use of ultrabright LEDs for the determination of static and time-resolved florescence
information of liquid and solid crude oil samples, J. Biochem. Bioph. Meth., In Press, (2004).
59 L. D. Stasiuk and L. R. Snowdon, Fluorescence micro-spectrometry of synthetic and natural hydrocarbon
fluid inclusions: crude oil chemistry, density and application to petroleum migration, Appl. Geochem.
12(3), 229-233 (1997).
60 P. L. Delaune, K. K. Spilker, S. A. Hanson, A. C. Wright, and R. Quagliaroli, Enhanced wellsite technique
for oil detection and characterization, SPE-56802, in 1999 SPE annual technical conference and
exhibition proceedings, v., Formation evaluation and reservoir geology, 801-816, (1999).
61 J. R. Lakowicz, Principles of Fluorescence Spectroscopy, 2nd. ed (Kluwer Academic/Plenum Publishers,
New York, 1999).
62 J. Pironon and B. Pradier, Ultraviolet-fluorescence alteration of hydrocarbon fluid inclusions, Org.
Geochem. 18(4), 501-509 (1992).
63 H. Szmacinski and J. R. Lakowicz in: Topics in fluorescence spectroscopy: Vol. 4. Probe Design and
Chemical Sensing, edited by J. R. Lakowicz, Ed. (Plenum Press, New York, 1994), pp. 295-329.
64 D. J. S. Birch and R. E. Imhof, in: Topics in Fluorescence Spectroscopy, Vol. 1 Techniques, edited by J. R.
Lakowicz (Plenum Press, New York and London, 1992), pp. 1-95.
65 M. A. Przyjalgowski and A. G. Ryder, unpublished results.
66 E. Roedder, Mineral Soc. Am., Rev. Mineral., 12, 1- (1984).
67 R. K. McLimans, The application of fluid inclusions to migration of oil and diagenesis in petroleum
reservoirs, Appl. Geochem. 2, 585-603 (1987).
68 I. A. Munz, Petroleum inclusions in sedimentary basins: systematics, analytical methods and applications,
Lithos 55(1-4), 195-212 (2001).
69 D. Emery and A. G. Robinson, Inorganic geochemistry: Applications to petroleum geology (Blackwell
Science, UK, 1993).
70 N. Guilhaumou, N. Szydlowskii, and B. Pradier, Characterization of hydrocarbon fluid inclusions by
infra-red and fluorescence microspectrometry, Mineral. Mag. 54, 311-324 (1990).
71 B. Alpern, M. J. Lemos de Sousa, H. J. Pinheiro, and X. Zhu, Optical morphology of hydrocarbons and oil
progenitors in sedimentary rocks-relations with geochemical parameters. Publ. Mus. Labor. miner.
geol. Fac. Ciênc. Porto. 3, 1-21, (1992)
72 S. C. George, T. E. Ruble, A. Dutkiewicz, The use and abuse of fluorescence colours as maturity
indicators of oil in inclusions from Australian petroleum systems. APPEA Journal. 41(1), 505-522
A. G. RYDER
45 K. L. Yong and J. G. Lu, Common and diverse characteristics of three-dimensional fluorescence spectra
of crude oils, Spectrosc. Lett. 33(6), 963-970 (2000).
46 J. Lu, and K. Yong, Fluorescence quenching phenomena in three-dimension of fluorescence
determination of crude oils. Fenxi Shiyanshi 17(6), 28-31, (1998).
47 G. C. Smith and J. F. Sinski, The red-shift cascade: Investigations into the concentration-dependent
wavelength shifts in three-dimensional fluorescence spectra of petroleum samples, Appl. Spectrosc.
53(11), 1459-1469 (1999).
48 J. F. Sinski, B. S. Compton, B. S. Perkins, and M. C. Nicoson, Utilizing three-dimensional fluorescence' s
red-shift cascade effect to monitor mycobacterium PRY-1 degradation of aged petroleum, Appl.
Spectrosc. 58(1), 91-95 (2004).
49 D. Patra and A. K. Mishra, Total synchronous fluorescence scan spectra of petroleum products, Anal.
Bioanal. Chem. 373(4-5), 304-309 (2002).
50 A. G. Ryder, Assessing the Maturity of crude petroleum oils using total synchronous fluorescence scan
spectra, J. Fluor. 14(1), 99-104 (2004).
51 X. Wu, E. B. Dussan V, and O. C. Mullins, Using an optical sensor to quantify the amount of oil, water,
and gas in a water-continuous flow, Proc SPIE – Int. Soc. Opt. Eng. 3856, 298-307 (1999).
52 US Patent 6,704109 B2.
53 T. D. Downare, O. C. Mullins, and X. Wu, Optimization of a fluorescence detection system for the
characterization of solids, Appl. Spectrosc., 48(12), 1483-1490 (1994).
54 J. Bublitz, M. Dickenhausen, M. Gratz, S. Todt, and W. Schade, Fiberoptic laser-induced fluorescence
probe for the detection of environmental-pollutants, Appl. Opt. 34(18), 3223-3233 (1995).
55 W. Schade and J. Bublitz, On-site laser probe for the detection of petroleum products in water and soil,
Environ. Sci. Technol. 30(5), 1451-1458 (1996).
56 M. L. Pascu, N. Moise, and A. Staicu, Tunable dye laser applications in environment pollution
monitoring, J. Mol. Struct. 598(1), 57-64 (2001).
57 S. Landgraf, Application of semiconductor light sources for investigations of photochemical reactions,
Spectrochim. Acta A 57(10), 2029-2048 (2001).
58 S. Landgraf, Use of ultrabright LEDs for the determination of static and time-resolved florescence
information of liquid and solid crude oil samples, J. Biochem. Bioph. Meth., In Press, (2004).
59 L. D. Stasiuk and L. R. Snowdon, Fluorescence micro-spectrometry of synthetic and natural hydrocarbon
fluid inclusions: crude oil chemistry, density and application to petroleum migration, Appl. Geochem.
12(3), 229-233 (1997).
60 P. L. Delaune, K. K. Spilker, S. A. Hanson, A. C. Wright, and R. Quagliaroli, Enhanced wellsite technique
for oil detection and characterization, SPE-56802, in 1999 SPE annual technical conference and
exhibition proceedings, v., Formation evaluation and reservoir geology, 801-816, (1999).
61 J. R. Lakowicz, Principles of Fluorescence Spectroscopy, 2nd. ed (Kluwer Academic/Plenum Publishers,
New York, 1999).
62 J. Pironon and B. Pradier, Ultraviolet-fluorescence alteration of hydrocarbon fluid inclusions, Org.
Geochem. 18(4), 501-509 (1992).
63 H. Szmacinski and J. R. Lakowicz in: Topics in fluorescence spectroscopy: Vol. 4. Probe Design and
Chemical Sensing, edited by J. R. Lakowicz, Ed. (Plenum Press, New York, 1994), pp. 295-329.
64 D. J. S. Birch and R. E. Imhof, in: Topics in Fluorescence Spectroscopy, Vol. 1 Techniques, edited by J. R.
Lakowicz (Plenum Press, New York and London, 1992), pp. 1-95.
65 M. A. Przyjalgowski and A. G. Ryder, unpublished results.
66 E. Roedder, Mineral Soc. Am., Rev. Mineral., 12, 1- (1984).
67 R. K. McLimans, The application of fluid inclusions to migration of oil and diagenesis in petroleum
reservoirs, Appl. Geochem. 2, 585-603 (1987).
68 I. A. Munz, Petroleum inclusions in sedimentary basins: systematics, analytical methods and applications,
Lithos 55(1-4), 195-212 (2001).
69 D. Emery and A. G. Robinson, Inorganic geochemistry: Applications to petroleum geology (Blackwell
Science, UK, 1993).
70 N. Guilhaumou, N. Szydlowskii, and B. Pradier, Characterization of hydrocarbon fluid inclusions by
infra-red and fluorescence microspectrometry, Mineral. Mag. 54, 311-324 (1990).
71 B. Alpern, M. J. Lemos de Sousa, H. J. Pinheiro, and X. Zhu, Optical morphology of hydrocarbons and oil
progenitors in sedimentary rocks-relations with geochemical parameters. Publ. Mus. Labor. miner.
geol. Fac. Ciênc. Porto. 3, 1-21, (1992)
72 S. C. George, T. E. Ruble, A. Dutkiewicz, The use and abuse of fluorescence colours as maturity
indicators of oil in inclusions from Australian petroleum systems. APPEA Journal. 41(1), 505-522
