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Article Dans Une Revue Journal of Colloid and Interface Science Année : 2012

Sorption of basic dyes onto granulated pillared clays: Thermodynamic and kinetic studies

Résumé

Effect of the granulation process onto the thermodynamic and kinetic sorption parameters of two basic dyes (Basic Yellow 28-BY 28 and Basic Green 4-BG 4) was evaluated in the present work. The charge surface properties of the surfactant-modified aluminium-pillared clay (CTAB Al-Mont-PILC) particles were not modified, and the isoelectric point remains constant after high shear wet granulation. The Gibbs free energy of both BY 28 and BG 4 sorption was negative and decreased with the granulation; the endothermic nature of the sorption process was confirmed by the positive values of DH . Adsorption kinetics of the two dyes, studied at pH 6 and 150 mg /L , follow the pseudo-first order kinetic model. The intraparticle diffusion model, proposed by Weber and Morris, was applied, and the intraparticle plots revealed three distinct sections representing external mass transfer, intraparticle diffusion and adsorption/desorption equilibrium. Diffusion coefficients, calculated from the Boyd kinetic equation, increased with the granulation and the particle size. Pseudo-first order kinetic constants, intraparticle diffusion rate constants and diffusion coefficients were determined for two other initial concentrations (50 and 100 mg/L ) and include in a statistical study to evaluate the impact of granulation and initial concentration on the kinetic parameters. Kruskal-Wallis tests, Spearman's rank order correlation and factor analysis revealed a correlation between (i) the diffusion coefficients and granulation, and between (ii) the intraparticle diffusion rate constants and initial concentration.

Dates et versions

hal-00933508 , version 1 (20-01-2014)

Identifiants

Citer

Benamar Cheknane, Fayza Zermane, Michel Baudu, Omar Bouras, Jean-Philippe Basly. Sorption of basic dyes onto granulated pillared clays: Thermodynamic and kinetic studies. Journal of Colloid and Interface Science, 2012, 381, pp.158-163. ⟨10.1016/j.jcis.2012.05.045⟩. ⟨hal-00933508⟩
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