References

  1. A.P. Vieira, S.A. Santana, C.B. Bezerra, H.S. Silva, J.P. Chaves, J.P. de-Melo, F. da Silva, C. Airoldi, Kinetics and thermodynamics of textile dye adsorption from aqueous solutions using babassu coconut mesocarp, J. Hazard. Mater., 166 (2009) 1272–1278.
  2. H.B. Mansour, O. Boughzala, D. Dridi, D. Barillier, L. Chekir-Ghedira, R. Mosrati, Les colorants textiles sources de contamination de l’eau: criblage de la toxicité et des méthodes de traitement, Rev. Sci. Eau., 24 (2011) 209–238.
  3. M. Laabd, A. El Jaouhari, H. Chafai, A. Nouh, M. Bazzaoui, O.A. Albourine, Etude cinétique et thermodynamique de l’adsorption des colorants monoazoïques sur la polyaniline, J. Environ. Sci., 6 (2015) 1049–1059.
  4. A.M.S. Ngueabouo, R.F.T. Tagne, D.R.T. Tchuifon, C.G. Fotsop, A.K. Tamo, S.G. Anagho, Strategy for optimizing the synthesis and characterization of activated carbons obtained by chemical activation of coffee husk, Mater. Adv., 3 (2022) 8361–8374.
  5. C.M. Ncibi, B. Mahjoub, M. Seffen, Etude du processus de biosorption du chrome(VI) par une biomasse méditerranéenne: Posidonia oceanica (L) delile, J. Water Sci., 21 (2008) 441–449.
  6. G. Mckay, G. Ramprasad, P.P. Mowli, Equilibrium studies for the adsorption of dyestuffs from aqueous solutions by low-cost materials, Water Air Soil Pollut., 29 (1986) 273–283.
  7. T.D.R. Tchuifon, S.G. Anagho, J.M. Ketcha, G.N. Ndifor- Angwafor, J.N. Ndi, Kinetics and equilibrium studies of adsorption of phenol in aqueous solution onto activated carbon prepared from rice and coffee husks, Int. J. Eng. Technol. Res., 2 (2014) 166–173.
  8. A. Bopda, D.R.T. Tchuifon, G.N. Ndifor-Angwafor, G. Doungmo, S.G. Anagho, Non-linear equilibrium and kinetic study of the adsorption of 2,4-dinitrophenol from aqueous solution using activated carbon derived from a olives stones and cotton cake, Afr. J. Environ. Sci. Technol., 13 (2019) 366–379.
  9. M. Valix, W.H. Cheung, G. McKay, Preparation of activated carbon using low temperature carbonization and physical activation of high ash raw bagasse for acid dye adsorption, Chemosphere, 56 (2004) 493–501.
  10. G. Lescuyer, L. Boutinot, P. Goglio, S. Bassanaga, Analyse de la chaine de valeur cacao au Cameroun, Value chain analysis for development, 2020 (VCA4D CTR 2016/375–804).
  11. M.A. Bezerra, R.E. Santelli, E.P. Oliveira, L.S. Villar, L.A Escaleira, Response surface methodology (RSM) as a tool for optimization in analytical chemistry, Talanta, 76 (2008) 965–977.
  12. A.O. Araoye, O.S. Agboola, O.S. Bello, Insights into chemically modified cocoa pods for enhanced removal of an anti-malaria drug, Chem. Data Collect., 36 (2021) 100775, doi: 10.1016/j.cdc.2021.100775.
  13. O.S. Bello, M.A. Ahmad, Adsorptive removal of a synthetic textile dye using cocoa pod husks, Toxicol. Environ. Chem., 93 (2011) 1298–1308.
  14. O.S. Bello, T.T. Siang, M.A. Ahmad, Adsorption of Remazol Brilliant Violet-5R reactive dye from aqueous solution by cocoa pod husk-based activated carbon: kinetic, equilibrium and thermodynamic studies, Asia-Pac. J. Chem. Eng., 7 (2012) 378–388.
  15. B.M. Córdova, J.P.S. Cruz, T.V.O. Huamani-Palomino, R.G. Baena-Moncada, A.M. Baena-Moncada, Simultaneous adsorption of a ternary mixture of Brilliant green, Rhodamine B and Methyl orange as artificial wastewater onto biochar from cocoa pod husk waste. Quantification of dyes using the derivative spectrophotometry method, New J. Chem., 44 (2020) 8303–8316.
  16. O.A.A. Eletta, A.G. Adeniyi, J.O. Ighalo, D.V. Onifade, F.O. Ayandele, Valorisation of cocoa (Theobroma cacao) pod husk as precursors for the production of adsorbents for water treatment, Environ. Technol. Rev., 9 (2020) 20–36.
  17. Pua, F. Ling, M.S. Sajab, C.H. Chia, S. Zakaria, I.A. Rahman, M.S. Salit, Alkaline-treated cocoa pod husk as adsorbent for removing methylene blue from aqueous solutions, J. Environ. Chem. Eng., 1 (2013) 460–465.
  18. G. Rodríguez-Arellano, J. Barajas-Fernández, R. García-Alamilla, L.M. Lagunes-Gálvez, A.H. Lara-Rivera, P. García-Alamilla, Evaluation of cocoa beans shell powder as a bioadsorbent of Congo red dye aqueous solutions, Materials, 14 (2021) 2763, doi: 10.3390/ma14112763.
  19. N.A. Zainal, S. Ibrahim, B. Arifin, Preparation and application of zinc chloride-modified cocoa (Theobroma cacao) pod huskbased carbon for the removal of acid dyes, Mater. Sci. Forum, 889 (2017) 221–225.
  20. É.V. Nascimento, A.M. Garrido Pedrosa, M.J.B. Souza, Development of LaxCa1–xMnO3 materials for Bezaktiv blue removal in aqueous media, Water Sci. Technol., 83 (2021) 2793–2808.
  21. D.C. Montgomery, Design and Analysis of Experiments, 5th ed., John Wiley and Sons, New York, USA, 2001.
  22. R. Azargohar, A.K. Dalai, Production of activated carbon from Luscar char: experimental and modeling studies, Microporous Mesoporous Mater., 85 (2005) 219–225.
  23. A.L. Djoumbissie, D.R.T. Tchuifon, C.D. Atemkeng, I.H.T. Kuete, G. Doungmo, A.C.D. Tayo, S.G. Anagho, J. Ngoune, Kinetic and isotherm studies of the adsorption phenacetin onto two copper porous coordination compounds: non-linear regression analysis, J. Chem., 2022 (2022) 2828860, doi: 10.1155/2022/2828860.
  24. A.O. Dada, A.P. Olalekan, A.M. Olatunya, O. Dada, Langmuir, Temkin and Dubinin–Radushkevich isotherms studies of equilibrium sorption of Zn2+ unto phosphoric acid modified rice husk, IOSR J. Appl. Chem., 3 (2012) 38–45.
  25. M.I. Temkin, V. Pyzhev, Kinetics of ammonia synthesis on promoted iron catalyst, Acta Phys. Chim., 12 (1940) 327–356.
  26. S. Lagergren, About the theory of so-called absorption of soluble substances, Kungliga Svenska Vetenskapsakademiens Handlingar, 24 (1898)1–39.
  27. Y.S. Ho, G. McKay, Pseudo-second-order model for sorption process, Process Biochem., 34 (1999) 451–465.
  28. S.H. Chien, W.R. Clayton, Application of Elovich equation to the kinetics of phosphate release and sorption in soils, Soil Sci. Soc. Am. J., 44 (1980) 265–268.
  29. W.J. Weber, J.C. Morris, Kinetic of adsorption of carbon from solution, J. Sanit. Eng. Div., 89 (1963) 31–59.
  30. M.A. Jamaluddin, K. Ismail, M.A. Mohd Ishak, Z. Ab Ghani, M. Abdullah, M.T. Safian, S.S. Idris, S. Tahiruddin, M.F. Yunus, N.I.N. Mohd Hakimi, Microwave-assisted pyrolysis of palm kernel shell: optimization using response surface methodology (RSM), Renewable Energy, 55 (2013) 357–365.
  31. S. Sugashini, K.M.S. Begum, Optimization using central composite design (CCD) for the biosorption of Cr(IV) ions by cross linked chitosan carbonized rice husk (CCACR), Clean Technol. Environ. Policy, 15 (2013) 293–302.
  32. J. Goupy, L. Creighton, Introduction aux plans d’expériences, 3e édition, Dunod, Paris, 2001, 336P.
  33. J.N. Sahu, J. Achatya, B.C. Meikap, Optimization of production conditions for activated carbons from tamarind wood by zinc chloride using response surface methodology, Bioresour. Technol., 10 (2010) 1974–1982.
  34. S.G. Mafo, D.R. Tchuifon, C.S. Ngakou, C.G. Fotsop, P.A. Kouteu, G. Doungmo, G.N. Ndifor Angwafor, S.G. Anagho, Study of the degradation of Bezaktiv Brilliant Blue by the Fenton process using a prepared ferromagnetic activated carbon from rubber seed hull as heterogeneous catalyst, Desal. Water Treat., 287 (2023) 200–213.
  35. H. Deng, G. Zhang, X. Xu, G. Tao, J. Dai, Optimization of preparation of activated carbon from cotton stalk by microwave assisted phosphoric acid chemical activation, J. Hazard. Mater.,182 (2010) 217–224.
  36. A. Bopda, S.G.M. Mafo, J.N. Ndongmo, G.T. Kenda, C.G. Fotsop, I.-H.T. Kuete, C.S. Ngakou, D.R.T. Tchuifon, A.K. Tamo, G.N. Ndifor Angwafor, S.G. Anagho, Ferromagnetic biochar prepared from hydrothermally modified calcined mango seeds for Fenton-like degradation of indigo carmine, C-J. Carbon Res., 8 (2022) 81, doi: 10.3390/c8040081.
  37. A. Omri, M. Benzina, Characterization of activated carbon prepared from a new raw lignocellulosic material: Ziziphus spina-christi seeds, Tunisia J. Chem. Soc., 14 (2012) 175–183.
  38. Y. Sun, Q. Yue, B. Gao, L. Huang, X. Xu, Q. Li, Comparative study on characterization and adsorption properties of activated carbons with H3PO4 and H4P2O7 activation employing Cyperus alternifolus as precursor, Chem. Eng. J., 181–182 (2012) 790–797.
  39. Y.S. Ho, Review of second-order models for adsorption systems, J. Hazard. Mater., B, 136 (2006) 681–689.
  40. T.E. Khalif, H. Altaher, A.R. Reda, Adsorptive removal of Cu(II) ions by date pits: kinetic and equilibrium studies, Environ. Eng. Manage. J., 15 (2016) 2719–2732.
  41. I.H.T. Kuete, R.D.T. Tchuifon, A. Bopda, C.S. Ngakou, G.N.A. Nche, S.G. Anagho, Adsorption of indigo carmine onto chemically activated carbons derived from the Cameroonian agricultural waste garcinia cola nut shells and desorption studies, J. Chem., 2022 (2022) 1–19.
  42. M.D.G. De Luna, W. Murniati, Budianta, K.K.P. Rivera, R.O. Arazo, Removal of sodium diclofenac from aqueous solution by adsorbents derived from cocoa pod husks, J. Environ. Chem. Eng., 5 (2017) 1465–1474.
  43. N.V.O. Sousa, V.C. Tecia, S.B. Honorato, C.L. Gomes, F.C.F. Baros, S.M.A. Araujo, P.T.C. Freire, R.F. Nascimento, Coconut bagasse treated by thiourea ammonia solution for cadmium removal: kinetics and adsorption equilibrium, Biochem. Res., 7 (2012) 1504–1524.
  44. S.D.B. Maazou, H.I. Hima, M. Mousbahou, 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., 11 (2017) 3050–3065.
  45. D. Balarak, N.M. Zafariyan, C.A. Igwegbe, K.K. Onyechi, J.O. Ighalo, Adsorption of Acid blue 92 dye from aqueous solutions by single-walled carbon nanotubes: isothermal, kinetic, and thermodynamic studies, Environ. Processes, 8 (2021) 869–888.