[1]
S. Altenor, B. Carene, E. Emmanuel, J. Lambert, J. J. Ehrhardt, S. Gaspard, Adsorption studies of methylene blue and phenol onto vetiver roots activated carbon prepared by chemical activation, J. Hazard. Mater. (2009) 1029–1039.
DOI: 10.1016/j.jhazmat.2008.10.133
Google Scholar
[2]
I. Feddal, Z. Taleb, A, Ramdani , H. Herbache , S. Taleb, Discoloration of contaminated water by an industrial dye: Methylene Blue, by two Algerian bentonites, thermally activated, Algerian Journal of Environmental Science and Technology. (2019) 1141-1148.
Google Scholar
[3]
I. Feddal, A. Ramdani, S. Taleb, E.M. Gaigneaux, N. Batis & N. Ghaffour, Adsorption capacity of methylene blue, an organic pollutant, by montmorillonite clay, Desalination and Water Treatment. (2014)2654–2661.
DOI: 10.1080/19443994.2013.865566
Google Scholar
[4]
D.B. Siragi, I. Halidou, M.M. Mousbahou, A. MALAM, A. Zanguina, N. Ibrahim, Elimination du chrome par du charbon actif élaboré et caractérisé à partir de la coque du noyau de Balanites Aegyptiaca, Int. J. Biol. Chem. Sci. (2017) 3050-3065.
DOI: 10.4314/ijbcs.v11i6.39
Google Scholar
[5]
K. M. Kifuan, A. K. Kia Mayeko , P. N. Vesitultuta , B. I. Lopaka , G. E. Bakambo, B. M. Mavinga , J. M. Lunguy, Adsorption d'un colorant basique, Bleu de Méthylène, en solution aqueuse, sur un bioadsorbant issu de déchets agricoles de Cucumeropsis mannii Naudin, Int. J. Biol. Chem. Sci. (2018) 558-575.
DOI: 10.4314/ijbcs.v12i1.43
Google Scholar
[6]
S. Nadem, M. El Baghdad, J. Rais, A. Barakat, Evaluation de la contamination en métaux lourds des sédiments de l'estuaire de bou regreg (côte atlantique, maroc), J Mater Environ Sci. (2015) 3338-3345.
Google Scholar
[7]
C. Bilgic, « Investigation of the factors affecting organic cation adsorption on some silicate mineral », Journal of colloid and Interface Science. 281 (2005) 33-38.
DOI: 10.1016/j.jcis.2004.08.038
Google Scholar
[8]
G. Akcay, M. Akcay, K. Yurdakoc, The characterization of prepared Organo montmorillonite (DEDMAM) and sorption of phenoxy alkanoic acid herbicides from aqueous solution, J. Colloid and Interface Sci. 296 (2006) 428-433.
DOI: 10.1016/j.jcis.2005.09.014
Google Scholar
[9]
V.K. Gupta, R. jain, S.b.Vershney, V.K. Saini, Removal of Reactofix Navy Bleu 2 GFN from aqueous solution using adsorption technique, J. Colloid Interface. Sci. 307 (2007) 326-332.
DOI: 10.1016/j.jcis.2006.12.003
Google Scholar
[10]
A.D. Laurent, V. Whathelet, M. Bouhy, D. Jacquemin, E. Perpète, Simulation de la perception des couleurs de colorants organiques. Techniques de l'Ingénieur. AF 6810, (2010).
DOI: 10.51257/a-v1-af6810
Google Scholar
[11]
Dhananasekaran S, Palanivel R, Pappu S, Adsorption of Methylene Blue, Bromophenol Blue, and Coomassie Brilliant Blue by α-chitin nanoparticles. J. Adv. Res.7 (2016) 113-124.
DOI: 10.1016/j.jare.2015.03.003
Google Scholar
[12]
Jawad A H, Nsa M, Abdulhameed A S , Tunable Schiff's base-cross-linked chitosan composite for the removal of reactive red 120 dye: Adsorption and mechanism study. Inter. J. Bio. Macro. 142 (2019) 732-741.
DOI: 10.1016/j.ijbiomac.2019.10.014
Google Scholar
[13]
Kifuani K M, Mayeko A K, Noki P, lopaka B, Adsorption d'un colorant basique, Bleu de Méthylène, en solution aqueuse, sur un bioadsorbant issu des déchets agricoles de Cucumeropsis mannii Naudin. Int. J. Biol.Chem. Sci. 12 (2018) 558-575.
DOI: 10.4314/ijbcs.v12i1.43
Google Scholar
[14]
Lasheen M R, El Sherif I, Dina Sabry Y, Removal of heavy metals from aqueous solution by multiwalled carbon nanotubes: equilibrium, isotherms, and kinetics. Desal Water Treat. 13(2013) 3521-3530.
DOI: 10.1080/19443994.2013.873880
Google Scholar
[15]
Moraes J D D, Bertolinio S, Cuffini S, Ducart D F , Clay minerals: properties and application to dermocosmetic products and perspectives of natural raw materials for therpeutic purposes. Inter J pharma. 534 (2017) 213-219.
DOI: 10.1016/j.ijpharm.2017.10.031
Google Scholar
[16]
Nadem S, El Baghdad M, Rais J, Barakat A, Evaluation de la contamination en métaux lourds des sédiments de l'estuaire de bou regreg (côte atlantique, maroc). J. Mater. Environ Sci. 15 (2015) 3338-3345.
Google Scholar
[17]
Olaofe O, Olagboye S A, Akanji S P, Kinetic Studies of adsorption of heavy metals on clay. Inter J Chem. 3 (2014) 66-79.
Google Scholar
[18]
Qlihaa A, Dhmini S, Melrhaka F, Hajjaji N, Srhiri A, Caractérisation physico-chimique d'une argile Marocaine [Physico-chemical characterization of a morrocan clay]. J Mater Environ Sci. 5 (2016) 1741-1750.
Google Scholar
[19]
Sadki H, Ziat K, Saidi M , Adsorption of dye on activated local clay in aqueous solution. Mater. Envrion. Sci .5 (2014) 2060- (2065).
Google Scholar
[20]
Sayah N, Bakhti A, Fagel N, Adsorption study of chlorophenol red on calcined hydrotalcite. J.Water. Sci. 30 (2017) 103-112.
Google Scholar
[21]
Terayama H, Hitoshi H, Tsukamoto H, Matsumoto K, Umezu M Acetamiprid Accumulates in Different Amounts in murine Brain Regions. Inter J Environ Res Public Health. 13 (2016) 937-94.
DOI: 10.3390/ijerph13100937
Google Scholar
[22]
Tian Y, Wang Y, Sheng Z, Li T, Li X, A colorimetric detection method of pesticide acetamiprid by fine-tuning aptamer length. Anal Biochem. 513 (2016) 87-92.
DOI: 10.1016/j.ab.2016.09.004
Google Scholar
[23]
Zdenka B, Matej B , Erika B, Peter B, Kello M , Mechanochemical approach for the capping of mixed core CdS/ZnS nanocrystals: Elimination of cadmium toxicity. J.Colloid. Interface. Sci. 15 (2017) 486-497.
DOI: 10.1016/j.jcis.2016.09.033
Google Scholar