ANALYSIS OF OILS USING FLUORESCENCE.
27
determining the intrinsic fluorescence decay lifetimes of crude oils, Appl. Spectrosc. 42(3), 406-410
(1988).
20 D. M. Rayner and A. G. Szabo, Time-resolved laser fluorosensors: A laboratory study of their potential in
the remote characterization of oil, Appl. Optics 17(10), 1624-1630 (1978).
21 A. G. Ryder, T. J. Glynn, M. Feely, and A. J. G. Barwise, Characterization of crude oils using
fluorescence lifetime data, Spectrochim. Acta A 58(5), 1025-1037 (2002).
22 A. G. Ryder, Quantitative analysis of crude oils by fluorescence lifetime and steady state measurements
using 380 nm excitation, Appl. Spectrosc. 56(1), 107-116 (2002).
23 A. G. Ryder, T. J. Glynn, and M. Feely, Influence of chemical composition on the fluorescence lifetimes
of crude petroleum oils, Proc SPIE – Int. Soc. Opt. Eng. 4876, 1188-1195 (2003).
24 L. D. Stasiuk, T. Gentzis, and P. Rahimi, Application of spectral fluorescence microscopy for the
characterization of Athabasca bitumen vacuum bottoms, Fuel. 79, 769-775 (2000).
25 X. Wang and O. C. Mullins, Fluorescence lifetime studies of crude oils, Appl. Spectrosc. 48(8), 977-984
(1994).
26 Y. Zhu and O. C. Mullins, Temperature dependence of fluorescence of crude oils and related compounds,
Energy & Fuels. 6(5), 545-552 (1992).
27 M. V. Reyes, Application of fluorescence techniques for mud-logging analysis of oil drilled with oil-based
muds, SPE Formation Evaluation, 9(4), 300-305 (1994).
28 B. Pradier, C. Largeau, S. Derenne, L. Martinez, P. Bertrand, and Y. Pouet, Chemical basis of
fluorescence alteration of crude oils and kerogens .1. Microfluorimetry of an oil and its isolated
fractions - relationships with chemical-structure, Org. Geochem. 16(1-3), 451-460 (1990).
29 G. Ellingsen and S. Fery-Forgues, Application de la spectroscopie de fluorescence à l’étude du pétrole: la
défi de la complexité, Rev. I. Fr. Petrol. 53(2), 201-216 (1998).
30 C. Y. Ralston, X. Wu, and O. C. Mullins, Quantum yields of crude oils, Appl. Spectrosc. 50(12), 15631568 (1996).
31 D. E. Nicodem, M. F. V. Da Cunha, and C. L. B. Guedes, Time-resolved single photon counting study of
the quenching of fluorescent probes by petroleum: Probing the energy distribution of the nonaliphatic
components, Appl. Spectrosc. 54(9), 1409-1411 (2000).
32 A. G. Ryder, M. A. Przyjalgowski, M. Feely, B. Szczupak, and T. J. Glynn, Time-resolved fluorescence
microspectroscopy for characterizing crude oils in bulk and hydrocarbon bearing fluid inclusions,
Appl. Spectrosc. 58(9), in press (2004).
33 A. E. Dudelzak, S. M. Babichenko, L. V. Poryvkina, and K. J. Saar, Total luminescent spectroscopy for
remote laser diagnostics of natural water conditions Appl. Optics 30(4), 453- (1991).
34 D. Patra and A. K. Mishra, Study of diesel fuel contamination by excitation emission matrix spectral
subtraction fluorescence, Anal. Chim. Acta 454(2), 209-215 (2002).
35 P. John and I. Soutar, Identification of crude oils by synchronous excitation spectrofluorimetry, Anal.
Chem. 48(3), 520-524 (1976).
36 S. G. Wakeham, Synchronous fluorescence spectroscopy and its application to indigenous and petroleumderived hydrocarbons in Lacustrine sediments, Environ. Sci. Technol. 11(3), 272-276 (1977).
37 J. M. Song and L. F. Wang, Study on the characteristic and significance of synchronous fluorescence
spectrum of crude oil and nature gas samples, Spectrosc. Spect. Anal. 22(5), 803-805 (2002).
38 D. Patra, K. L. Sireesha, and A. K. Mishra, Determination of synchronous fluorescence scan parameters
for certain petroleum products, J. Sci. Ind. Res. India 59(4), 300-305 (2000).
39 D. Patra and A. K. Mishra, Concentration dependent red shift: qualitative and quantitative investigation of
motor oils by synchronous fluorescence scan, Talanta 53(4), 783-790 (2001).
40 E. Buenrostro-Gonzalez, S. I. Andersen, J. A. Garcia-Martinez, C. Lira-Galeana, Solubility/molecular
structure relationships of asphaltenes in polar and nonpolar media, Energ. Fuel. 16(3), 732-741 (2002).
41 L. J. Shadle, K. S. Seshadri, and D. L. Webb, Characterization of shale oils .1. Analysis of Fischer assay
oils and their aromatic fractions using advanced analytical techniques, Fuel Process. Technol. 37(2),
101-120 (1994).
42 J. A. Musgrave, R. G. Carey, D. R. Janecky, and C. D. Tait, Adaption of synchronously scanned
luminescence spectroscopy to organic-rich fluid inclusion microanalysis, Rev. Sci. Instrum. 65(6),
1877-1882 (1994).
43 A. Permanyer, L. Douifi, A. Lahcini, J. Lamontagne, and J. Kister, FTIR and SUVF spectroscopy applied
to reservoir compartmentalization: a comparative study with gas chromatography fingerprints results,
Fuel 81(7), 861-866 (2002).
44 L. A. Files, M. Moore, M. J. Kerkhoff, and J. D. Winefordner, Gasoline and crude-oil fingerprinting using
constant energy synchronous luminescence spectrometry, Microchem. J. 35(3), 305-314 (1987).
27
determining the intrinsic fluorescence decay lifetimes of crude oils, Appl. Spectrosc. 42(3), 406-410
(1988).
20 D. M. Rayner and A. G. Szabo, Time-resolved laser fluorosensors: A laboratory study of their potential in
the remote characterization of oil, Appl. Optics 17(10), 1624-1630 (1978).
21 A. G. Ryder, T. J. Glynn, M. Feely, and A. J. G. Barwise, Characterization of crude oils using
fluorescence lifetime data, Spectrochim. Acta A 58(5), 1025-1037 (2002).
22 A. G. Ryder, Quantitative analysis of crude oils by fluorescence lifetime and steady state measurements
using 380 nm excitation, Appl. Spectrosc. 56(1), 107-116 (2002).
23 A. G. Ryder, T. J. Glynn, and M. Feely, Influence of chemical composition on the fluorescence lifetimes
of crude petroleum oils, Proc SPIE – Int. Soc. Opt. Eng. 4876, 1188-1195 (2003).
24 L. D. Stasiuk, T. Gentzis, and P. Rahimi, Application of spectral fluorescence microscopy for the
characterization of Athabasca bitumen vacuum bottoms, Fuel. 79, 769-775 (2000).
25 X. Wang and O. C. Mullins, Fluorescence lifetime studies of crude oils, Appl. Spectrosc. 48(8), 977-984
(1994).
26 Y. Zhu and O. C. Mullins, Temperature dependence of fluorescence of crude oils and related compounds,
Energy & Fuels. 6(5), 545-552 (1992).
27 M. V. Reyes, Application of fluorescence techniques for mud-logging analysis of oil drilled with oil-based
muds, SPE Formation Evaluation, 9(4), 300-305 (1994).
28 B. Pradier, C. Largeau, S. Derenne, L. Martinez, P. Bertrand, and Y. Pouet, Chemical basis of
fluorescence alteration of crude oils and kerogens .1. Microfluorimetry of an oil and its isolated
fractions - relationships with chemical-structure, Org. Geochem. 16(1-3), 451-460 (1990).
29 G. Ellingsen and S. Fery-Forgues, Application de la spectroscopie de fluorescence à l’étude du pétrole: la
défi de la complexité, Rev. I. Fr. Petrol. 53(2), 201-216 (1998).
30 C. Y. Ralston, X. Wu, and O. C. Mullins, Quantum yields of crude oils, Appl. Spectrosc. 50(12), 15631568 (1996).
31 D. E. Nicodem, M. F. V. Da Cunha, and C. L. B. Guedes, Time-resolved single photon counting study of
the quenching of fluorescent probes by petroleum: Probing the energy distribution of the nonaliphatic
components, Appl. Spectrosc. 54(9), 1409-1411 (2000).
32 A. G. Ryder, M. A. Przyjalgowski, M. Feely, B. Szczupak, and T. J. Glynn, Time-resolved fluorescence
microspectroscopy for characterizing crude oils in bulk and hydrocarbon bearing fluid inclusions,
Appl. Spectrosc. 58(9), in press (2004).
33 A. E. Dudelzak, S. M. Babichenko, L. V. Poryvkina, and K. J. Saar, Total luminescent spectroscopy for
remote laser diagnostics of natural water conditions Appl. Optics 30(4), 453- (1991).
34 D. Patra and A. K. Mishra, Study of diesel fuel contamination by excitation emission matrix spectral
subtraction fluorescence, Anal. Chim. Acta 454(2), 209-215 (2002).
35 P. John and I. Soutar, Identification of crude oils by synchronous excitation spectrofluorimetry, Anal.
Chem. 48(3), 520-524 (1976).
36 S. G. Wakeham, Synchronous fluorescence spectroscopy and its application to indigenous and petroleumderived hydrocarbons in Lacustrine sediments, Environ. Sci. Technol. 11(3), 272-276 (1977).
37 J. M. Song and L. F. Wang, Study on the characteristic and significance of synchronous fluorescence
spectrum of crude oil and nature gas samples, Spectrosc. Spect. Anal. 22(5), 803-805 (2002).
38 D. Patra, K. L. Sireesha, and A. K. Mishra, Determination of synchronous fluorescence scan parameters
for certain petroleum products, J. Sci. Ind. Res. India 59(4), 300-305 (2000).
39 D. Patra and A. K. Mishra, Concentration dependent red shift: qualitative and quantitative investigation of
motor oils by synchronous fluorescence scan, Talanta 53(4), 783-790 (2001).
40 E. Buenrostro-Gonzalez, S. I. Andersen, J. A. Garcia-Martinez, C. Lira-Galeana, Solubility/molecular
structure relationships of asphaltenes in polar and nonpolar media, Energ. Fuel. 16(3), 732-741 (2002).
41 L. J. Shadle, K. S. Seshadri, and D. L. Webb, Characterization of shale oils .1. Analysis of Fischer assay
oils and their aromatic fractions using advanced analytical techniques, Fuel Process. Technol. 37(2),
101-120 (1994).
42 J. A. Musgrave, R. G. Carey, D. R. Janecky, and C. D. Tait, Adaption of synchronously scanned
luminescence spectroscopy to organic-rich fluid inclusion microanalysis, Rev. Sci. Instrum. 65(6),
1877-1882 (1994).
43 A. Permanyer, L. Douifi, A. Lahcini, J. Lamontagne, and J. Kister, FTIR and SUVF spectroscopy applied
to reservoir compartmentalization: a comparative study with gas chromatography fingerprints results,
Fuel 81(7), 861-866 (2002).
44 L. A. Files, M. Moore, M. J. Kerkhoff, and J. D. Winefordner, Gasoline and crude-oil fingerprinting using
constant energy synchronous luminescence spectrometry, Microchem. J. 35(3), 305-314 (1987).
