54. Saada A, Breeze D, Crouzet C, Cornu S, Baranger P (2003) Adsorption of arsenic (V) on
kaolinite and on kaolinite–humic acid complexes: role of humic acid nitrogen groups.
Chemosphere 51:757–763
55. Wu P, Tang Y, Wang W, Zhu N, Li P, Wu J, Dang Z, Wang X (2011a) Effect of
dissolved organic matter from Guangzhou landfill leachate on sorption of phenanthrene by
Montmorillonite. J Colloid Interface Sci 361:618–627
56. Wu P, Zhang Q, Dai Y, Zhu N, Dang Z, Li P, Wu J, Wang X (2011b) Adsorption of Cu (II),
Cd (II) and Cr (III) ions from aqueous solutions on humic acid modified Camontmorillonite.
Geoderma 164:215–219
57. Soares Pereira-Derome C (2016) Influence de la matière organique dissoute d’origine urbaine
sur la spéciation des micropolluants: de la station d’épuration au milieu récepteur. Thèse,
Université Paris-Est, Champs-sur-Marne, 297 p
58. Chaminda GGT, Nakajima F, Furumai H (2008) Heavy metal (Zn and Cu) complexation
and molecular size distribution in wastewater treatment plant effluent. Water Sci Technol
58:1207–1213
59. Benedetti MF, Van Riemsdijk WH, Koopal LK, Kinniburgh DG, Gooddy DC, Milne CJ (1996)
Metal ion binding by natural organic matter: from the model to the field. Geochim Cosmochim
Acta 60(14):2503–2513
60. Milne CJ, Kinniburgh DG, Tipping E (2001) Generic NICA-Donnan model parameters for
proton binding by humic substances. Environ Sci Technol 35:2049–2059
61. Croue JP, Benedetti MF, Violleau D, Leenheer JA (2003) Characterization and copper binding
of humic and nonhumic organic matter isolated from the South Platte River: evidence for the
presence of nitrogenous binding site. Environ Sci Technol 37(2):328–336
62. Knepper T (2003) Synthetic chelating agents and compounds exhibiting complexing properties
in the aquatic environment. Trac-Trends Anal Chem 22:708–724
63. Markich SJ, Brown PL, Jeffree RA, Lim RP (2003) The effects of pH and dissolved organic
carbon on the toxicity of cadmium and copper to a freshwater bivalve: further support for the
extended free ion activity model. Arch Environ Contam Toxicol 45:479–491
64. Schwartz ML, Curtis PJ, Playle RC (2004) Influence of natural organic matter source on acute
copper, lead, and cadmium toxicity to rainbow trout (Oncorhynchus mykiss). Environ Toxicol
Chem 23:2889–2899
65. De Schamphelaere KAC, Vasconcelos FM, Tack FMG, Allen HE, Janssen CR (2004) Effect of
dissolved organic matter source on acute copper toxicity to Daphnia magna. Environ Toxicol
Chem 23:1248–1255
66. DePalma S-G-S, Arnold W-R, McGeer JC, Dixon DG, Smith DS (2011) Effects of dissolved
organic matter and reduced sulphur on copper bioavailability in coastal marine environments.
Ecotoxicol Environ Saf 74:230–237
67. Trenfield MA, McDonald S, Kovacs K, Lesher EK, Pringle JM, Markich SJ, Ng JC, Noller B,
Brown PL, van Dam RA (2011) Dissolved organic carbon reduces uranium bioavailability
and toxicity. 1. Characterization of an aquatic fulvic acid and its complexation with uranium
VI. Environ Sci Technol 45:3075–3081
Open Access This chapter is licensed under the terms of the Creative Commons Attribution 4.0
International License (http://creativecommons.org/licenses/by/4.0/), which permits use, sharing,
adaptation, distribution and reproduction in any medium or format, as long as you give appropriate
credit to the original author(s) and the source, provide a link to the Creative Commons licence and
indicate if changes were made.
The images or other third party material in this chapter are included in the chapter's Creative
Commons licence, unless indicated otherwise in a credit line to the material. If material is not
included in the chapter's Creative Commons licence and your intended use is not permitted by
statutory regulation or exceeds the permitted use, you will need to obtain permission directly from
the copyright holder.
242
G. Varrault et al.
kaolinite and on kaolinite–humic acid complexes: role of humic acid nitrogen groups.
Chemosphere 51:757–763
55. Wu P, Tang Y, Wang W, Zhu N, Li P, Wu J, Dang Z, Wang X (2011a) Effect of
dissolved organic matter from Guangzhou landfill leachate on sorption of phenanthrene by
Montmorillonite. J Colloid Interface Sci 361:618–627
56. Wu P, Zhang Q, Dai Y, Zhu N, Dang Z, Li P, Wu J, Wang X (2011b) Adsorption of Cu (II),
Cd (II) and Cr (III) ions from aqueous solutions on humic acid modified Camontmorillonite.
Geoderma 164:215–219
57. Soares Pereira-Derome C (2016) Influence de la matière organique dissoute d’origine urbaine
sur la spéciation des micropolluants: de la station d’épuration au milieu récepteur. Thèse,
Université Paris-Est, Champs-sur-Marne, 297 p
58. Chaminda GGT, Nakajima F, Furumai H (2008) Heavy metal (Zn and Cu) complexation
and molecular size distribution in wastewater treatment plant effluent. Water Sci Technol
58:1207–1213
59. Benedetti MF, Van Riemsdijk WH, Koopal LK, Kinniburgh DG, Gooddy DC, Milne CJ (1996)
Metal ion binding by natural organic matter: from the model to the field. Geochim Cosmochim
Acta 60(14):2503–2513
60. Milne CJ, Kinniburgh DG, Tipping E (2001) Generic NICA-Donnan model parameters for
proton binding by humic substances. Environ Sci Technol 35:2049–2059
61. Croue JP, Benedetti MF, Violleau D, Leenheer JA (2003) Characterization and copper binding
of humic and nonhumic organic matter isolated from the South Platte River: evidence for the
presence of nitrogenous binding site. Environ Sci Technol 37(2):328–336
62. Knepper T (2003) Synthetic chelating agents and compounds exhibiting complexing properties
in the aquatic environment. Trac-Trends Anal Chem 22:708–724
63. Markich SJ, Brown PL, Jeffree RA, Lim RP (2003) The effects of pH and dissolved organic
carbon on the toxicity of cadmium and copper to a freshwater bivalve: further support for the
extended free ion activity model. Arch Environ Contam Toxicol 45:479–491
64. Schwartz ML, Curtis PJ, Playle RC (2004) Influence of natural organic matter source on acute
copper, lead, and cadmium toxicity to rainbow trout (Oncorhynchus mykiss). Environ Toxicol
Chem 23:2889–2899
65. De Schamphelaere KAC, Vasconcelos FM, Tack FMG, Allen HE, Janssen CR (2004) Effect of
dissolved organic matter source on acute copper toxicity to Daphnia magna. Environ Toxicol
Chem 23:1248–1255
66. DePalma S-G-S, Arnold W-R, McGeer JC, Dixon DG, Smith DS (2011) Effects of dissolved
organic matter and reduced sulphur on copper bioavailability in coastal marine environments.
Ecotoxicol Environ Saf 74:230–237
67. Trenfield MA, McDonald S, Kovacs K, Lesher EK, Pringle JM, Markich SJ, Ng JC, Noller B,
Brown PL, van Dam RA (2011) Dissolved organic carbon reduces uranium bioavailability
and toxicity. 1. Characterization of an aquatic fulvic acid and its complexation with uranium
VI. Environ Sci Technol 45:3075–3081
Open Access This chapter is licensed under the terms of the Creative Commons Attribution 4.0
International License (http://creativecommons.org/licenses/by/4.0/), which permits use, sharing,
adaptation, distribution and reproduction in any medium or format, as long as you give appropriate
credit to the original author(s) and the source, provide a link to the Creative Commons licence and
indicate if changes were made.
The images or other third party material in this chapter are included in the chapter's Creative
Commons licence, unless indicated otherwise in a credit line to the material. If material is not
included in the chapter's Creative Commons licence and your intended use is not permitted by
statutory regulation or exceeds the permitted use, you will need to obtain permission directly from
the copyright holder.
242
G. Varrault et al.
