Fluorescence and Dissolved Organic Matter
71
Murphy, K. R., Ruiz, G.M., Dunsmuir, W.T.M., and Waite, T.D. (2006). Optimized parameters for rapid fluorescence-based verification of ballast water exchange by ships.
Environ. Sci. Technol., 40, 2357−2362.
Murphy, K.R., Butler, K.D., Spencer, R.G.M., Stedmon, C.A., Boehme, J.R., and Aiken,
G.R. (2010). Measurement of dissolved organic matter fluorescence in aquatic environments: An interlaboratory comparison. Environ. Sci. Technol., 44, 9405–9412.
Nurmi, J.T. and Tratnyek, P.G. (2002). Electrochemical properties of natural organic matter
(NOM), fractions of NOM, and model biogeochemical electron shuttles. Environ. Sci.
Technol., 36, 617–624.
Ohno, T., Amirbahman, A., and Bro, R. (2008). Parallel factor analysis of excitationemission matrix fluorescence spectra of water soluble organic matter as basis for the
determination of conditional metal binding parameters. Environ. Sci. Technol., 42,
186–192.
Olmstead, J.A. and Gray, D.G. (1997). Fluorescence spectroscopy of cellulose, lignin and
mechanical pulps: A review. J. Pulp Paper Sci., 23, J571–J581.
Pellerin, B.A., Saracen, J.F., Shanley, J.B., Sebestyn, S.D., Aiken, G.R., Wollheim,
W.M., and Bergamaschi, B.A. (2012). Taking the pulse of snowmelt: In-situ sensors reveal seasonal, event and diurnal patterns of nitrate and dissolved organic
matter variability in an upland forest stream, Biogeochemistry, 108, 183–198,
doi:10.1007/s10533–011–9589–8..
Perdue, E.M. (1998). Chemical composition, structure and metal binding properties. In D.
Hessen (Ed.), Aquatic Humic Substances: Ecology and Biogeochemistry (pp. 41–62).
Ecological Studies, Vol. 133. New York: Springer-Verlag.
Persson, T. and Wedborg, M. (2001). Multivariate evaluation of the fluorescence of aquatic
organic matter. Anal. Chim. Acta, 434, 179–192.
Poulson, J.R. and Birks, J.W. (1989). Photoreduction fluorescence detection of quinones in
high-performance liquid chromatography. Anal. Chem., 61, 2267–2276.
Pullman, B. and Pullman, A. (1958). Electron-donor and -acceptor properties of biologically important purines, pyrimidines, pteridines, flavins, and aromatic amino acids.
Proc. Natl. Acad. Sci.USA, 44, 1197–1202.
Putschögl, M., Zirak, P., and Penzkofer, A. (2008). Absorption and emission behavior of
trans-p-coumaric acid in aqueous solutions and some organic solvents. Chem. Phys.,
343, 107–120.
Qualls, R.G. and Richardson, C.J. (2003). Factors controlling concentration, export
and decomposition of dissolved organic nutrients in the Everglades, Florida.
Biogeochemistry, 62, 197–229.
Quina, F.H., Moreira, P., Vautier-Giongo, C., Rettori, D., Rodigues, R.F., Freitas, A.A.,
Silva, P.F., and Maçanita, A.L. (2009). Photochemistry of anthocyanins and their biological role in plant tissues. Pure Appl. Chem., 81, 1687–1694.
Radotić, K., Kalauzi, A., Djikanović, D., Jeremić, M., Leblanc, R.M., and Cerović, Z.G.
(2006). Component analysis of the fluorescence spectra of a lignin model compound.
J. Photochem. Photobiol. B. Biol., 83, 1–10.
Reynolds, D.M. (2003). Rapid and direct determination of tryptophan in water using synchronous fluorescence spectroscopy, Water Res., 37, 3055–3060.
Robinson, T. (1991). The Organic Constituents of Higher Plants, 6th ed. North Amherst,
MA: Cordus Press, 346 p.
Saar, R.A. and Weber, J.H. (1980). Comparison of spectrofluorometry and ion-selective
electrode potentiometry for determination of complexes between fulvic acid and
heavy metal ions. Anal. Chem. 52, 2095–2100.
71
Murphy, K. R., Ruiz, G.M., Dunsmuir, W.T.M., and Waite, T.D. (2006). Optimized parameters for rapid fluorescence-based verification of ballast water exchange by ships.
Environ. Sci. Technol., 40, 2357−2362.
Murphy, K.R., Butler, K.D., Spencer, R.G.M., Stedmon, C.A., Boehme, J.R., and Aiken,
G.R. (2010). Measurement of dissolved organic matter fluorescence in aquatic environments: An interlaboratory comparison. Environ. Sci. Technol., 44, 9405–9412.
Nurmi, J.T. and Tratnyek, P.G. (2002). Electrochemical properties of natural organic matter
(NOM), fractions of NOM, and model biogeochemical electron shuttles. Environ. Sci.
Technol., 36, 617–624.
Ohno, T., Amirbahman, A., and Bro, R. (2008). Parallel factor analysis of excitationemission matrix fluorescence spectra of water soluble organic matter as basis for the
determination of conditional metal binding parameters. Environ. Sci. Technol., 42,
186–192.
Olmstead, J.A. and Gray, D.G. (1997). Fluorescence spectroscopy of cellulose, lignin and
mechanical pulps: A review. J. Pulp Paper Sci., 23, J571–J581.
Pellerin, B.A., Saracen, J.F., Shanley, J.B., Sebestyn, S.D., Aiken, G.R., Wollheim,
W.M., and Bergamaschi, B.A. (2012). Taking the pulse of snowmelt: In-situ sensors reveal seasonal, event and diurnal patterns of nitrate and dissolved organic
matter variability in an upland forest stream, Biogeochemistry, 108, 183–198,
doi:10.1007/s10533–011–9589–8..
Perdue, E.M. (1998). Chemical composition, structure and metal binding properties. In D.
Hessen (Ed.), Aquatic Humic Substances: Ecology and Biogeochemistry (pp. 41–62).
Ecological Studies, Vol. 133. New York: Springer-Verlag.
Persson, T. and Wedborg, M. (2001). Multivariate evaluation of the fluorescence of aquatic
organic matter. Anal. Chim. Acta, 434, 179–192.
Poulson, J.R. and Birks, J.W. (1989). Photoreduction fluorescence detection of quinones in
high-performance liquid chromatography. Anal. Chem., 61, 2267–2276.
Pullman, B. and Pullman, A. (1958). Electron-donor and -acceptor properties of biologically important purines, pyrimidines, pteridines, flavins, and aromatic amino acids.
Proc. Natl. Acad. Sci.USA, 44, 1197–1202.
Putschögl, M., Zirak, P., and Penzkofer, A. (2008). Absorption and emission behavior of
trans-p-coumaric acid in aqueous solutions and some organic solvents. Chem. Phys.,
343, 107–120.
Qualls, R.G. and Richardson, C.J. (2003). Factors controlling concentration, export
and decomposition of dissolved organic nutrients in the Everglades, Florida.
Biogeochemistry, 62, 197–229.
Quina, F.H., Moreira, P., Vautier-Giongo, C., Rettori, D., Rodigues, R.F., Freitas, A.A.,
Silva, P.F., and Maçanita, A.L. (2009). Photochemistry of anthocyanins and their biological role in plant tissues. Pure Appl. Chem., 81, 1687–1694.
Radotić, K., Kalauzi, A., Djikanović, D., Jeremić, M., Leblanc, R.M., and Cerović, Z.G.
(2006). Component analysis of the fluorescence spectra of a lignin model compound.
J. Photochem. Photobiol. B. Biol., 83, 1–10.
Reynolds, D.M. (2003). Rapid and direct determination of tryptophan in water using synchronous fluorescence spectroscopy, Water Res., 37, 3055–3060.
Robinson, T. (1991). The Organic Constituents of Higher Plants, 6th ed. North Amherst,
MA: Cordus Press, 346 p.
Saar, R.A. and Weber, J.H. (1980). Comparison of spectrofluorometry and ion-selective
electrode potentiometry for determination of complexes between fulvic acid and
heavy metal ions. Anal. Chem. 52, 2095–2100.
