References
- 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.
- 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.
- 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.
- 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.
- 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.
- 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.
- 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.
- 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.
- 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.
- 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).
- 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.
- 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.
- O.S. Bello, M.A. Ahmad, Adsorptive removal of a synthetic
textile dye using cocoa pod husks, Toxicol. Environ. Chem.,
93 (2011) 1298–1308.
- 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.
- 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.
- 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.
- 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.
- 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.
- 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.
- 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.
- D.C. Montgomery, Design and Analysis of Experiments,
5th ed., John Wiley and Sons, New York, USA, 2001.
- R. Azargohar, A.K. Dalai, Production of activated carbon from
Luscar char: experimental and modeling studies, Microporous
Mesoporous Mater., 85 (2005) 219–225.
- 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.
- 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.
- M.I. Temkin, V. Pyzhev, Kinetics of ammonia synthesis on
promoted iron catalyst, Acta Phys. Chim., 12 (1940) 327–356.
- S. Lagergren, About the theory of so-called absorption of
soluble substances, Kungliga Svenska Vetenskapsakademiens
Handlingar, 24 (1898)1–39.
- Y.S. Ho, G. McKay, Pseudo-second-order model for sorption
process, Process Biochem., 34 (1999) 451–465.
- 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.
- W.J. Weber, J.C. Morris, Kinetic of adsorption of carbon from
solution, J. Sanit. Eng. Div., 89 (1963) 31–59.
- 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.
- 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.
- J. Goupy, L. Creighton, Introduction aux plans d’expériences,
3e édition, Dunod, Paris, 2001, 336P.
- 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.
- 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.
- 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.
- 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.
- 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.
- 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.
- Y.S. Ho, Review of second-order models for adsorption
systems, J. Hazard. Mater., B, 136 (2006) 681–689.
- 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.
- 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.
- 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.
- 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.
- 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.
- 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.