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Ewald, M. and Belin, C. (1987). Fluorescence from photic zone water in the Atlantic
Ocean. Sci. Total Environ ., 62 , 149-155.
Fellman, J.B., Miller, M.P., Cory, R.M., D'Amore, D.V., and White, D. (2009).
Characterizing dissolved organic matter using parafac modeling of fluorescence spec-
troscopy: A comparison of two models. Environ. Sci. Technol ., 43 (16), 6228-6234.
Fellman, J.B., Hood, E., and Spencer, R.G.M. (2010). Fluorescence spectroscopy opens
new windows into dissolved organic matter dynamics in freshwater ecosystems: A
review. Limnol. Oceanogr ., 55 (6), 2452-2462.
Fulton, J.R., McKnight, D.M., Foreman, C.M., Cory, R.M., Stedmon, C., and Blunt, E.
(2004). Changes in fulvic acid redox state through the oxycline of a permanently ice-
covered Antarctic lake. Aquat. Sci ., 66 , 27-46.
Gonsoir, M., Peake, B.M., Cooper, W.J., Jaffe, R., Young, H., Kahn, A.E., and Kowalczuk, P.
(2008). Spectral characterization of chromophoric dissolved organic matter (CDOM)
in a fjord (Doubtful Sound, New Zealand). Aquat. Sci ., 70 , 397-409.
Hassouna, M., Massiani, C., Dudal, Y., Pech, N., and Theraulaz, F. (2010). Changes in
water extractable organic matter (WEOM) in a calcareous soil under field conditions
with time and soil depth. Geoderma , 155 (1-2), 75-85.
Holbrook, R., DeRose, P., Leigh, S., Rukhin, A., and Heckert, N. (2006). Excitation-
emission matrix fluorescence spectroscopy for natural organic matter characteriza-
tion: A quantitative evaluation of calibration and spectral correction procedures. Appl.
Spectrosc ., 60 (7), 791-799.
Hood, E., McKnight, D., and Williams, M. (2003). Sources and chemical character of
dissolved organic carbon across an alpine/subalpine ecotone, Green Lakes Valley,
Colorado Front Range, United States. Water Resour. Res , 39 (7), 1188-1200.
Hood, E., Williams, M., and McKnight, D. (2005). Sources of dissolved organic matter
(DOM) in a Rocky Mountain stream using chemical fractionation and stable isotopes.
Biogeochemistry , 74 (2), 231-255.
Hudson, N., Baker, A., and Reynolds, D. (2007). Fluorescence analysis of dissolved
organic matter in natural, waste and polluted waters - a review. River Res. Appl .,
23 (6), 631-649.
Hudson, N., Baker, A., Ward, D, Reynolds, D., Brunsdon, C., Carliell-Marquet, C., and
Browning, S. (2008). Can fluorescence spectrometry be used as a surrogate for the
Biochemical Oxygen Demand (BOD) test in water quality assessment? An example
from South West England. Sci. Total Environ ., 391 (1), 149-158.
Huguet, A., Vacher, L., Relexans, S., Saubusse, S., Froidefond, J.M., and Parlanti, E.
(2009). Properties of fluorescent dissolved organic matter in the gironde estuary. Org.
Geochem ., 40 (6), 706-719.
Jaffé, R., Boyer, J., Lu, X., Maie, N., Yang, C., Scully, N., and Mock, S. (2004). Source
characterization of dissolved organic matter in a subtropical mangrove-dominated
estuary by fluorescence analysis. Mar. Chem ., 84 (3-4), 195-210.
Jaffé, R., McKnight, D., Maie, N., Cory, R., McDowell, W., and Campbell, J. (2008).
Spatial and temporal variations in DOM composition in ecosystems: The importance
of long-term monitoring of optical properties. J. Geophys. Res ., 113 , G04032.
Kalbitz, K., and Geyer, W. (2001). Humification indices of water-soluble fulvic acids
derived from synchronous fluorescence spectra - effects of spectrometer type and
concentration, J. Plant Nutr. Soil Sci ., 164 (3), 259-265.
Kalbitz, K., Geyer, W., and Geyer, S. (1999). Spectroscopic properties of dissolved humic
substances - a reflection of land use history in a fen area. Biogeochemistry , 47 (2),
219-238.
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