References
- G. Crini, Non-conventional low-cost adsorbents for
dye removal: A review, Bioresour. Technol., 97 (2006) 1061–1085.
- H. Ghodbane, O. Hamdaoui, Degradation of acid blue 25 in
aqueous media using 1700 kHz ultrasonic irradiation: ultrasound/Fe(II) and ultrasound/H2O2 combinations, Ultrason.
Sonochem., 16 (2009) 593–598.
- W. Li, Q. Yue, P. Tu, Z. Ma, B. Gao, J. Li, X. Xu, Adsorption characteristics
of dyes in columns of activated carbon prepared
from paper mill sewage sludge, Chem. Eng. J., 178 (2011) 197–203.
- G. Ghanizadeh, G. Asgari, Adsorption kinetics and isotherm
of methylene blue and its removal from aqueous solution
using bone charcoal, React. Kinet. Mech. Cat., 102 (2011) 127–142.
- M. Visa, C. Bogatu, A. Duta, Simultaneous adsorption of dyes
and heavy metals from multicomponent solutions using fly
ash, Appl. Surf. Sci., 256 (2010) 5486–5491.
- M.A. Salleh, D.K. Mahmoud, W.A. Wan-Abdul-Karim, A. Idris,
Cationic and anionic dye adsorption by agricultural solid
wastes: A comprehensive review, Desalination, 280 (2011) 1–13.
- A. Gil, F.C.C. Assis, S. Albeniz, S.A. Korili, Removal of dyes
from wastewaters by adsorption on pillared clays, Chem. Eng.
J., 168 (2011) 1032–1040.
- M. Chiban, A. Soudani, F. Sinan, M. Persin, Single, binary and
multi-component adsorption of some anions and heavy metals
on environmentally friendly Carpobrotus edulis plant, Colloids
Surf. B., 82 (2011) 267–276.
- R. Tovar-Gómez, D.A. Rivera-Ramírez, V. Hernández-Montoya,
A. Bonilla-Petriciolet, C.J. Durán-Valle, M.A. Montes-Morán, Synergic adsorption in the simultaneous
removal of acid blue 25 and heavy metals from water using
Ca(PO3)2-modified carbon, J. Hazard. Mater., 199–200 (2012)
290–300.
- K. Badi, F.D. Ardejani, M.A. Saberi, N.Y. Limaee, S.Z. Shafaei,
Adsorption of Acid blue 25 dye on diatomite in aqueous solutions,
Indian J. Chem. Technol., 17 (2010) 7–16.
- M. Arami, N.Y. Limaee, N.M. Mahmoodi, Investigation on the
adsorption capability of egg shell membrane towards model
textile dyes, Chemosphere, 65 (2006) 1999–2008.
- S. Hyun-Jae, N. Bo-Mee, Removal of acid blue 25 from aqueous
solutions by organic clay, J. Biosci. Bioeng., 108 (2009) S75,
S95.
- L.S. Chan, W.H. Cheung, G. McKay, Adsorption of acid dyes
by bamboo derived activated carbon, Desalination, 218 (2007)
304–312.
- A. Kamari, W.S. Wan Ngah, M.Y. Chong, M.L. Cheah, Sorption
of acid dyes onto GLA and H2SO4 cross-linked chitosan beads,
Desalination, 249 (2009) 1180–1189.
- M. Khalfaoui, M.H.V. Baouab, R. Gauthier, A. Ben Lamine,
Acid dye adsorption onto cationized polyamide fibres. Modeling
and consequent interpretations of model parameter
behaviours, J. Colloid Interface Sci., 296 (2006) 419–427.
- S.E. Bailey, T.J. Olin, R.M. Bricka, D.D. Arian, A review or
potentially low-cost sorbents for heavy metals, Water Res., 33
(1999) 2469–2479.
- S.R. Shukla, R.S. Pai, Adsorption of Cu(II), Ni(II) and Zn(II) on
dye loaded groundnut shells and sawdust, Sep. Purif. Technol.,
43 (2005) 1–8.
- D.C.S. Azevedo, J.C.S. Araujo, M. Bastos-Neto, A.E.B. Torres,
E.F. Jaguarible, C.L. Cavalcante, Microporous activated carbon
prepared from coconut shells using chemical activation with
zinc chloride, Microporous Mesoporous Mater., 100 (2007)
361–364.
- J.M. Dias, C.M. Alvim-Ferraz, M.F. Almeida, J. Rivera-Utrilla,
M. Sánchez-Polo, Waste materials for activated carbon preparation
and its use in aqueous-phase treatment: A review, J.
Environ. Manage., 85 (2007) 833–846.
- S. Mohan, G. Sreelaskshmi, Fixed column study for heavy
metal removal using phosphate treated rice husk, J. Hazard.
Mater., 153 (2008) 75–82.
- M.M. Dávila-Jiménez, M.P. Elizalde-González, V. Hernández-Montoya, Performance of mango seed adsorbentes in the
adsorption of anthrax quinine and azo acid dyes in single
and binary aqueous solutions, Bioresour. Technol., 100 (2009)
6199–6206.
- I. Ali, M. Asim, T.A. Khan. Low cost adsorbents for the removal
of organic pollutants from wastewater, J. Environ. Manage.,
113 (2012) 170–183.
- V.J.M. Nabais, P.J.M. Carrott, M.R. Carrott, S. Silvestre,
C.J. Durán-Valle, Adsorption of aqueous mercury(II) species
by commercial activated carbon fibres with and without
surface modification, Adsorpt. Sci. Technol., 25 (2007) 198–215.
- W. Shen, Z. Li, Y. Liu, Surface chemical functional groups
modification of porous carbon, Recent. Pat. Chem. Eng., 1
(2008) 27–40.
- H.T. Gomes, S.M. Miranda, M.J. Sampaio, A.M.T. Silva, J.L.
Faria, Activated carbons treated with sulphuric acid: Catalysts
for catalytic wet peroxide oxidation, Catal. Today., 151 (2010)
153–158.
- M. Matsumoto, T. Hashimoto, K. Murata, S. Goto, Surface
modificaction of carbon whiskers by oxidation treatment, Carbon,
32 (1994) 111–118.
- Ch.A. Tole, W.E. Marshall, M.M. Johns, Surface functional
groups on acid-activated nutshell carbons, Carbon, 37 (1999)
1207–1214.
- C. Moreno-Castilla, M.V. López-Ramón, F. Carrasco-Marín,
Change in surface chemistry of activated carbon by wet oxidation,
Carbon, 38 (2000) 1995–2001.
- J.R. Rangel-Méndez, M. Streat, Adsorption of cadmium by activated
carbon cloth: influence of surface oxidation and solution
pH, Water Res., 36 (2002) 1244–1252.
- N. Zhao, N. Wei, J. Li, Z. Qiao, J. Cui, F. He, Surface properties
of chemically modified activated carbons for adsorption rate
of Cr (VI), Chem. Eng. J., 115 (2005) 133–138.
- G.S. Szymański, Z. Karpiński, S. Biniak, A. Swiątkowski, The
effect of the gradual thermal decomposition of surface oxygen
species on the chemical and catalytic properties of oxidized
activated carbon, Carbon, 40 (2002) 2627–2639.
- W.M. Ashri Wan Daud, A. Hossein Houshammnd, Textural
Characteristics, surface chemistry and oxidation of activated
carbon, J. Nat. Gas Chem., 19 (2010) 267–279.
- J.H. Deng, X.R. Zhang, G.M. Zeng, J.L. Gong, Q.Y. Niu,
J. Liang, Simultaneous removal of Cd(II) and ionic dyes
from aqueous solution using magnetic graphene oxide
nanocomposite as an adsorbent, Chem. Eng. J., 226 (2013)
189–200.
- V. Hernández-Montoya, M.A. Pérez-Cruz, D.I. Mendoza-Castillo,
M.R. Moreno-Virgen, A. Bonilla Petriciolet, Competitive
adsorption of dyes and heavy metals on zeolitic structures, J.
Environ. Manage., 116 (2013) 213–221.
- N.B. Douissa, S. Dridi-Dhaouadi, M.M. Farouk, Study of antagonistic
effect in the simultaneous removal of two textile dyes
onto cellulose extracted from Posidonia oceanica using derivative
spectrophotometric method, J. Water Process Eng., 2 (2014)
1–9.
- P.J. Ross, Taguchi Techniques for Quality Engineering,
McGraw-Hill, New York, 1996.
- H.E. Reynel-Ávila, A. Bonilla-Petriciolet, G. de la Rosa, Competitive
sorption of Pb, Cd, and Ni on chicken feathers from
binary aqueous solutions, Int. J. Chem. React. Eng., 10 (2012)
1–25.
- I.A. Aguayo-Villarreal, A. Bonilla-Petriciolet, V. Hernández-Montoya, M.A. Montes-Morán, H.E. Reynel-Avila, Batch
and column studies of Zn2+ removal from aqueous solution
using chicken feathers as sorbents, Chem. Eng. J., 167 (2011)
67–76.
- V. Rakić, M. Rac, O. Krmar, A. Otman, A. Auroux, The adsorption
of pharmaceutically active compounds from aqueous
solutions onto activated carbons, J. Hazard. Mater., 282 (2015)
141–149.
- P.C.C. Faria, J.J.M. Órfao, M.F.R. Pereira, Adsorption of anionic
and cationic dyes on activated carbons with different surface
chemistries, Water Res., 38 (2004) 2043–2052.
- R. Tovar-Gómez, M.R. Moreno-Virgen, J. Moreno Pérez,
A. Bonilla Petriciolet, V. Hernández Montoya, C.J. Durán
Valle, Analysis of synergistic and antagonistic adsorption
of heavy metals and acid blue 25 on activated carbon
from ternary systems, Chem. Eng. Res. Design., 93 (2015)
755–772.
- M.T. Hernández-Eudave, A. Bonilla-Petriciolet, M.R. Moreno-Virgen, C.K. Rojas-Mayorga, R. Tovar-Gómez, Design
analysis of fixed-bed synergic adsorption of heavy metals
and acid blue 25 on activated carbon, Desal. Water Treat.,
(2015) 1–13.
- S.M. Rao, B.V.V. Reddy, S. Lakshmikanth, N.S. Ambika,
Re-use of fluoride contaminated bone char sludge in concrete,
J. Hazard. Mater., 166 (2009) 751–756.
- K.K.H. Choy, G. McKay, Sorption of cadmium, copper, and
zinc ions onto bone char using Crank diffusion model, Chemosphere.,
60 (2005) 1141–1150.
- M.C. Bennett, J.C. Abram, Adsorption from Solution on the
carbon and hydroxyapatite components of bone char, J. Colloid
Interface Sci., 23 (1957) 513–521.
- D.I. Mendoza-Castillo, A. Bonilla-Petriciolet, J. Jáuregui-Rincón, On the importance of surface chemistry and
composition of Bone char for the sorption of heavy metals
from aqueous solution, Desal. Water Treat., 54 (2015)
1651–1662.
- S. Dimović , I. Smičiklas, I. Pleaćas, D. Antonović, M. Mitrić,
Comparative study of differently treated animal bones for Co2+
removal, J. Hazard. Mater., 164 (2009) 279–287.
- S. Patel, J. Hanb, W. Qiua, W. Gao, Synthesis and characterization
of mesoporous bone char obtained by pyrolysis of animal
bones, for environmental application, J. Environ. Chem. Eng.,
3 (2015) 2368–2377.
- H.Y. Xu, L. Yang, P. Wang, Y. Liu, M.S. Peng, Kinetic
research on the sorption of aqueous lead by synthetic
carbonate hydroxyapatite, J. Environ. Manage., 86 (2008)
319–328.
- V. Hernández-Montoya, M.P. Elizalde-González, R. Trejo-Vázquez, Screening of commercial sorbents for removal of
fluoride in synthetic and groundwater, Environ. Technol., 28
(2007) 595–607.
- B. Smith, Infrared spectral interpretation: A systematic
approach, CRC Press LLC, Washington, 1999.