Stedmon and Cory
298
Murphy, K.R., Stedmon, C.A., Waite, T.D., and Ruiz, G.M. (2008). Distinguishing between
terrestrial and autochthonous organic matter sources in marine environments using
fluorescence spectroscopy. Mar. Chem., 108, 40–58.
Nagata, T. (2000). Production mechanisms of dissolved organic matter. In D.L. Kirchman
(Ed.), Microbial Ecology of the Oceans (pp. 121–152). Wiley Series in Ecological and
Applied Microbiology. Hoboken, NJ: Wiley-Liss.
Nelson, N.B., Siegel, D.A., Carlson, C.A., and Swan, C. (2010). Tracing global biogeochemical cycles and meridional overturning circulation using chromophoric dissolved
organic matter. Geophys. Res. Lett., 37, L03610.
Nieto-Cid, M., Alvarez-Salgado, X.A., and Perez, F.F. (2006). Microbial and photochemical reactivity of fluorescent dissolved organic matter in a coastal upwelling system.
Limnol. Oceanogr., 51(3), 1391–1400
Obernosterer, I. and Benner, R. (2004). Competition between biological and photochemical processes in the mineralization of dissolved organic carbon. Limnol. Oceanogr.,
49, 117–124.
Ogawa, H., Amagi, Y., Koike, I., Kaiser, K., and Benner, R. (2001). Production of refractory dissolved organic matter by bacteria. Science, 292, 917–920.
Opsahl, S. and Benner, R. (1997). Distribution and cycling of terrigenous dissolved organic
matter in the ocean. Nature, 386, 480–482.
Rember, R.D. and Trefry, J.H. (2004). Increased concentrations of dissolved trace metals and organic carbon during snowmelt in rivers of the Alaskan Arctic. Geochim.
Cosmochim. Acta, 68, 477–489.
Reynolds, D.M. and Ahmad, S.R.A. (1997). Rapid and direct determination of wastewater
BOD values using a fluorescence technique. Water Res., 31(8), 2012−2018.
Rochelle-Newall, E.J. and Fisher, T.R. (2002). Production of chromophoric dissolved
organic matter fluorescence in marine and estuarine environments: An investigation
into the role of phytoplankton. Mar. Chem., 77, 7–21.
Romera-Castillo, C., Sarmento, H., Álvarez-Salgado, X.A., Gasol, J.M., and Marrase
C. Production of chromophoric dissolved organic matter by marine phytoplankton.
Limnol. Oceanogr., 55(1), 2010, 446–454.
Sarkanen, K.V. and Ludwig, C.H. Lignins, Eds. (1971). Occurrences, Formation, Structure
and Reactions. New York: Wiley-Interscience.
Senesi, N., Miano, T.M., Provenzano, M.R., and Brunetti, G. (1991). Characterization, differentiation and classification of humic substances by fluorescence spectroscopy. Soil
Sci., 152, 259–271.
Spencer, R.G.M., Aiken, G.R., Butler, K.D., Dornblaser, M.M., Striegl, R.G., and Hernes,
P. (2009). Utilizing chromophoric dissolved organic matter measurements to derive
export and reactivity of dissolved organic carbon exported to the arctic ocean: A case
study of the Yukon river, Alaska, Geophys. Res. Lett., 36, L06401.
Stedmon, C.A. and Markager, S.S. (2005a). Resolving the variability in dissolved organic
matter fluorescence in a temperate estuary and its catchment using PARAFAC analysis. Limnol. Oceanogr., 50(2), 686–697.
Stedmon, C.A. and Markager, S.S. (2005b). Tracing the production and degradation of
autochthonous fractions of dissolved organic matter by fluorescence analysis. Limnol.
Oceanogr., 50(5), 1415–1426.
Stedmon, C.A. and Bro, R. (2008). Characterizing dissolved organic matter fluorescence
with parallel factor analysis: A tutorial. Limnol. Oceanogr. Methods, 6, 572–579.
Stedmon, C.A., Markager, S., and Bro, R. (2003). Tracing dissolved organic matter in
aquatic environments using a new approach to fluorescence spectroscopy. Mar. Chem.,
82, 239–254.
298
Murphy, K.R., Stedmon, C.A., Waite, T.D., and Ruiz, G.M. (2008). Distinguishing between
terrestrial and autochthonous organic matter sources in marine environments using
fluorescence spectroscopy. Mar. Chem., 108, 40–58.
Nagata, T. (2000). Production mechanisms of dissolved organic matter. In D.L. Kirchman
(Ed.), Microbial Ecology of the Oceans (pp. 121–152). Wiley Series in Ecological and
Applied Microbiology. Hoboken, NJ: Wiley-Liss.
Nelson, N.B., Siegel, D.A., Carlson, C.A., and Swan, C. (2010). Tracing global biogeochemical cycles and meridional overturning circulation using chromophoric dissolved
organic matter. Geophys. Res. Lett., 37, L03610.
Nieto-Cid, M., Alvarez-Salgado, X.A., and Perez, F.F. (2006). Microbial and photochemical reactivity of fluorescent dissolved organic matter in a coastal upwelling system.
Limnol. Oceanogr., 51(3), 1391–1400
Obernosterer, I. and Benner, R. (2004). Competition between biological and photochemical processes in the mineralization of dissolved organic carbon. Limnol. Oceanogr.,
49, 117–124.
Ogawa, H., Amagi, Y., Koike, I., Kaiser, K., and Benner, R. (2001). Production of refractory dissolved organic matter by bacteria. Science, 292, 917–920.
Opsahl, S. and Benner, R. (1997). Distribution and cycling of terrigenous dissolved organic
matter in the ocean. Nature, 386, 480–482.
Rember, R.D. and Trefry, J.H. (2004). Increased concentrations of dissolved trace metals and organic carbon during snowmelt in rivers of the Alaskan Arctic. Geochim.
Cosmochim. Acta, 68, 477–489.
Reynolds, D.M. and Ahmad, S.R.A. (1997). Rapid and direct determination of wastewater
BOD values using a fluorescence technique. Water Res., 31(8), 2012−2018.
Rochelle-Newall, E.J. and Fisher, T.R. (2002). Production of chromophoric dissolved
organic matter fluorescence in marine and estuarine environments: An investigation
into the role of phytoplankton. Mar. Chem., 77, 7–21.
Romera-Castillo, C., Sarmento, H., Álvarez-Salgado, X.A., Gasol, J.M., and Marrase
C. Production of chromophoric dissolved organic matter by marine phytoplankton.
Limnol. Oceanogr., 55(1), 2010, 446–454.
Sarkanen, K.V. and Ludwig, C.H. Lignins, Eds. (1971). Occurrences, Formation, Structure
and Reactions. New York: Wiley-Interscience.
Senesi, N., Miano, T.M., Provenzano, M.R., and Brunetti, G. (1991). Characterization, differentiation and classification of humic substances by fluorescence spectroscopy. Soil
Sci., 152, 259–271.
Spencer, R.G.M., Aiken, G.R., Butler, K.D., Dornblaser, M.M., Striegl, R.G., and Hernes,
P. (2009). Utilizing chromophoric dissolved organic matter measurements to derive
export and reactivity of dissolved organic carbon exported to the arctic ocean: A case
study of the Yukon river, Alaska, Geophys. Res. Lett., 36, L06401.
Stedmon, C.A. and Markager, S.S. (2005a). Resolving the variability in dissolved organic
matter fluorescence in a temperate estuary and its catchment using PARAFAC analysis. Limnol. Oceanogr., 50(2), 686–697.
Stedmon, C.A. and Markager, S.S. (2005b). Tracing the production and degradation of
autochthonous fractions of dissolved organic matter by fluorescence analysis. Limnol.
Oceanogr., 50(5), 1415–1426.
Stedmon, C.A. and Bro, R. (2008). Characterizing dissolved organic matter fluorescence
with parallel factor analysis: A tutorial. Limnol. Oceanogr. Methods, 6, 572–579.
Stedmon, C.A., Markager, S., and Bro, R. (2003). Tracing dissolved organic matter in
aquatic environments using a new approach to fluorescence spectroscopy. Mar. Chem.,
82, 239–254.
