37
Muller, J. (2006). Étude du cycle biogéochimique du sélénium dans
l’environnement. Thèse de doctorat. Université de Nantes, France : 256p.
Naseem, R., Tahir, S.S. (2001). Removal of Pb
2+ from aqueous acid solutions using
bentonite as an adsorbent. Water Res, 35: 3982-3994.
Oguz, E. (2005). Adsorption characteristics and the kinetics of the Cr (VI) on the
Thuja oriantalis, Colloids Surf, 252: 121–128
Panday, K.K., Prasad, G., Singh, V.N. (1986). Use of Wollastonite for the
Treatment of Cu (II) Rich Effluents. Water Air Soil Pollution, 27: 287–296.
Perrot, O. (2011). Cours de thermodynamique. Département génie thermique et
énergie. I.U.T. Saint-Omer Dunkerque: 112p.
Ramesh, A., Lee, D.J., Wong, J.W. (2005). Thermodynamic parameters for
adsorption equilibrium of heavy metals and dyes from wastewater with low-cost
adsorbent. Journal of colloid and interface science, 291: 588-592.
Ramirez, D., Qi, S., Rood, M.J., Hay, KJ. (2005). Equilibrium and Heat of
Adsorption for Organic Vapors and Activated Carbons. Environmental Science &
Technology, vol. 39: 5864-5871.
Romero-Gonzalez, J., Peralta-Videa, J.R., Rodriguez, E., Ramirez, S.L.,
Gardeaorresdey, J.L. (2005) Determination of thermodynamic parameters of Cr
(VI) adsorption from aqueous solution onto Agave lechuguilla biomass. J. Chem.
Thermodyn, 37: 343–347.
Sekirifa, M.L., Hadj-Mohammed, M. (2005). Etude comparative de la capacité
adsorbante d’un charbon actif issu de noyaux de dattes et un charbon actif
commercial. Sciences et Technologies, B-N°23 : 55-59.
Slasli,A.M.(2002). Modélisation de l’adsorption par les charbons microporeux :
Approche théoriques et expérimentales. Thèse de doctorat de l’Université de
Neuchâtel. France : 156p.
Sud, D., Mahajan, G., Kaur, M.P. (2008). Agricultural waste material as potential
adsorbent for sequestering heavy metal ions from aqueous solution: a review.
Bioresource Technologies, 99: 6017–6027.
Veli, S., Öztürk, T. (2005). Kinetic modeling of adsorption of reactive azo dye on
powdered activated carbon and pumice”. Fresenius Environmental Bulletin, 14 (3):
212-218, 2005.
Muller, J. (2006). Étude du cycle biogéochimique du sélénium dans
l’environnement. Thèse de doctorat. Université de Nantes, France : 256p.
Naseem, R., Tahir, S.S. (2001). Removal of Pb
2+ from aqueous acid solutions using
bentonite as an adsorbent. Water Res, 35: 3982-3994.
Oguz, E. (2005). Adsorption characteristics and the kinetics of the Cr (VI) on the
Thuja oriantalis, Colloids Surf, 252: 121–128
Panday, K.K., Prasad, G., Singh, V.N. (1986). Use of Wollastonite for the
Treatment of Cu (II) Rich Effluents. Water Air Soil Pollution, 27: 287–296.
Perrot, O. (2011). Cours de thermodynamique. Département génie thermique et
énergie. I.U.T. Saint-Omer Dunkerque: 112p.
Ramesh, A., Lee, D.J., Wong, J.W. (2005). Thermodynamic parameters for
adsorption equilibrium of heavy metals and dyes from wastewater with low-cost
adsorbent. Journal of colloid and interface science, 291: 588-592.
Ramirez, D., Qi, S., Rood, M.J., Hay, KJ. (2005). Equilibrium and Heat of
Adsorption for Organic Vapors and Activated Carbons. Environmental Science &
Technology, vol. 39: 5864-5871.
Romero-Gonzalez, J., Peralta-Videa, J.R., Rodriguez, E., Ramirez, S.L.,
Gardeaorresdey, J.L. (2005) Determination of thermodynamic parameters of Cr
(VI) adsorption from aqueous solution onto Agave lechuguilla biomass. J. Chem.
Thermodyn, 37: 343–347.
Sekirifa, M.L., Hadj-Mohammed, M. (2005). Etude comparative de la capacité
adsorbante d’un charbon actif issu de noyaux de dattes et un charbon actif
commercial. Sciences et Technologies, B-N°23 : 55-59.
Slasli,A.M.(2002). Modélisation de l’adsorption par les charbons microporeux :
Approche théoriques et expérimentales. Thèse de doctorat de l’Université de
Neuchâtel. France : 156p.
Sud, D., Mahajan, G., Kaur, M.P. (2008). Agricultural waste material as potential
adsorbent for sequestering heavy metal ions from aqueous solution: a review.
Bioresource Technologies, 99: 6017–6027.
Veli, S., Öztürk, T. (2005). Kinetic modeling of adsorption of reactive azo dye on
powdered activated carbon and pumice”. Fresenius Environmental Bulletin, 14 (3):
212-218, 2005.
