References
- M. Goto, N. Hayashi, S. Goto, Adsorption and desorption of
phenol on anion-exchange resin and activated carbon, Environ.
Sci. Technol., 20 (1986) 463–467.
- J.P. Jadhav, S.S. Phugare, R.S. Dhanve, S.B. Jadhav, Rapid
biodegradation and decolorization of Direct Orange 39 (Orange
TGLL) by an isolated bacterium Pseudomonas aeruginosa strain
BCH, Biodegradation, 21 (2010) 453–463.
- R. Azargohar, A.K. Dalai, Production of activated carbon from
luscar char: experimental and modeling studies, Microporous
Mesoporous Mater., 85 (2005) 219–225.
- O.S. Bello, K.A. Adegoke, A.A. Olaniyan, H. Abdulazeez, Dye
adsorption using biomass wastes and natural adsorbents:
overview and future prospects, Desal. Water Treat., 53 (2013) 1–24.
- G. Crini, Non-conventional low-cost adsorbents for dye
removal: a review, Bioresour. Technol., 97 (2006) 1061–1085.
- R. Karthik, R. Muthezhilan, A.H. Jaffar, K. Ramalingam,
V. Rekha, Effective removal of Methylene Blue dye from water
using three different low-cost adsorbents, Desal. Water Treat.,
57 (2015) 10626–10631.
- M.A. Abdel-Khalek, M.K. Abdel Rahman, A.A. Francis,
Exploring the adsorption behavior of cationic and anionic
dyes on industrial waste shells of egg, J. Environ. Chem. Eng.,
5 (2017) 319–327.
- Y.S. Ho, T.H. Chiang, Y.M. Hsueh, Removal of basic dye from
aqueous solution using tree fern as a biosorbent, Process
Biochem., 40 (2005) 119–124.
- J. Liu, F. Chen, C. Li, L. Lu, C. Hu, Y. Wei, P. Raymer, Q. Huang,
Characterization and utilization of industrial microbial waste as
novel adsorbent to remove single and mixed dyes from water,
J. Cleaner Prod., 208 (2018) 552–562.
- W. Shi, H. Ren, X. Huang, M. Li, Y. Tang, F. Guo, Low cost
red mud modified graphitic carbon nitride for the removal of
organic pollutants in wastewater by the synergistic effect of
adsorption and photocatalysis, Sep. Purif. Technol., 237 (2020)
116477–116484.
- F. Pagnanelli, S. Mainelli, F. Veglio, L. Toro, Heavy metal
removal by olive pomace: biosorbent characterization and
equilibrium modeling, Chem. Eng. Sci., 58 (2003) 4709–4717.
- S.H. Gharaibeh, W.Y. Abu-el-sha’r, M.M. Al-Kofahi, Removal of
selected heavy metals from aqueous solutions using processed
solid residue of olive mill products, Water Res., 32 (1998)
498–502.
- Y. Nuhoğlu, E. Malkoç, Thermodynamic and kinetic studies
for environmentally friendly Ni(II) biosorption using waste
pomace of olive oil factory, Bioresour. Technol., 100 (2009)
2375–2380.
- V. Rizzi, F. D’Agostino, P. Fini, P. Semeraro, P. Cosma,
An interesting environmental friendly clean-up: the excellent
potential of olive pomace for disperse blue adsorption/
desorption from wastewater, Dyes Pigm., 140 (2017) 480–490.
- F. Pagnanelli, S. Mainelli, S. De Angelis, L. Toro, Biosorption
of protons and heavy metals onto olive pomace: modelling of
competition effects, Water Res., 39 (2005) 1639–1651.
- T. Akar, I. Tosun, Z. Kaynak, E. Ozkara, O. Yeni, E.N. Sahin,
S.T. Akar, An attractive agro-industrial by-product in
environmental clean-up: dye biosorption potential of untreated
olive pomace, J. Hazard. Mater., 166 (2009) 1217–1225.
- H. Bozkan, The Removal of Azo Dyes by Using Olive Waste
(Pomace) and Adsorption Method, MS Thesis, Selçuk
University, Konya, Turkey, 2012.
- S. Dağdelen, B. Acemioğlu, E. Baran, O. Koçer, Removal
of Remazol Brilliant Blue R from aqueous solution by pirina
pretreated with nitric acid and commercial activated carbon,
Water Air Soil Pollut., 225 (2014) 1899–1913.
- O. Koçer, B. Acemioğlu, Adsorption of Basic Green 4 from
aqueous solution by olive pomace and commercial activated
carbon: process design, isotherm, kinetic and thermodynamic
studies, Desal. Water Treat., 57 (2015) 16653–16669.
- M.K. Oden, S. Şahinkaya, S. Küçükçongar, Colour removal with
adsorption process using pomace, Cumhuriyet Sci. J., 38 (2017)
215–219.
- W.S. Beaj, A.A. Omar, N.A. Ahmad, H.A. Alhinsheeri,
S.M. Abdulnabi, M.F. Sheemah, Adsorption of Methyl Orange
from Aqueous Solutions using Olive Pomace: A Kinetic and
Isotherm Study, The 3rd Annual Conference on Theories and
Applications of Basic and Biosciences, Misurata, Libya, 2019,
pp. 23–33.
- S. Brunaur, P.H. Emmett, E. Teller, Adsorption of gases in
multimolecular layers, J. Am. Chem. Soc., 60 (1938) 309–319.
- E.P. Barrett, L.G. Joyner, P.P. Halenda, The determination
of pore volume and area distributions in porous substances.
I. Computations from nitrogen isotherms, J. Am. Chem. Soc.,
73 (1951) 373–380.
- L.S. Balistrieri, J.W. Murray, The surface chemistry of goethite
(–FeOOH) in major ion seawater, Am. J. Sci., 281 (1981) 788–806.
- H. Chen, J. Zhao, G. Dai, Silkworm exuviae—a new nonconventional
and low-cost adsorbent for removal of methylene
blue from aqueous solutions, J. Hazard. Mater., 186 (2011)
1320–1327.
- Y. Zhang, M. Yang, X.M. Dou, H. He, D.S. Wang, Arsenate
adsorption on an Fe–Ce bimetal oxide adsorbent: role of surface
properties, Environ. Sci. Technol., 39 (2005) 7246–7253.
- D.P. Dutta, R. Venugopalan, S. Chopade, Manipulating carbon
nanotubes for efficient removal of both cationic and anionic
dyes from wastewater, ChemistrySelect, 2 (2017) 3878–3888.
- X. Han, W. Wang, X. Ma, Adsorption characteristics of
Methylene Blue onto low cost biomass material lotus leaf,
Chem. Eng. J., 171 (2011) 1–8.
- H. Bensalah, S.A. Younssi, M. Ouammou, A. Gurlo,
M.F. Bekheet, Azo dye adsorption on an industrial wastetransformed
hydroxyapatite adsorbent: kinetics, isotherms,
mechanism and regeneration studies, J. Environ. Chem. Eng.,
8 (2020) 103807–103816.
- N.M. Mohammad, A. Taghizadeh, M. Taghizadeh,
M.A.S. Baglou, Surface modified montmorillonite with cationic
surfactants: preparation, characterization, and dye adsorption
from aqueous solution, J. Environ. Chem. Eng., 7 (2019) 1–11.,
- M.M. Souza, T.N.S. Pereira, A.P. Viana, M.G. Pereira Junior,
A.T. do Amaral Júnior, H.C. Madureira, Flower receptivity
and fruit characteristics associated to time of pollination in the
yellow passion fruit Passiflora edulis Sims f. flavicarpa Degener
(Passifloraceae), Sci. Hortic., 101 (2008) 313–385.
- F. Pagnanelli, C.C. Viggi, M. Sara, L. Toro, Valorisation
of Olive Oil Solid Wastes for the Development of New
Biosorbents for Heavy Metals, 4th European Bioremediation
Conference, Chania, Crete, Greece, 2008.
- M. Mohammadi, A.J. Hassani, A.R. Mohamed, G.D. Najafpour,
Removal of Rhodamine B from aqueous solution using Palm
Shell-based Activated Carbon: adsorption and kinetic studies,
J. Chem. Eng. Data, 55 (2010) 5777–5785.
- V. Ponnusami, S. Vikram, S.N. Srivastava, Guava (Psidium
guajava) leaf powder: novel adsorbent for removal of methylene
blue from aqueous solutions, J. Hazard. Mater., 152 (2008)
276–286.
- A. Roy, S. Chakraborty, S.P. Kundu, B. Adhikari,
S.B. Majumder, Adsorption of anionic-azo dye from aqueous
solution by lignocellulose-biomass jute fiber: equilibrium,
kinetics, and thermodynamics study, Ind. Eng. Chem. Res.,
51 (2012) 12095−12106.
- K.Diouri, A. Kherbeche, A. Chaqroune, Kinetics of Congo Red
dye adsorption onto marble powder sorbents, Int. J. Innovative
Res. Sci. Eng. Technol., 4 (2015) 267–274.
- D. Lin, B. Xing, Adsorption of phenolic compounds by carbon
nanotubes: role of aromaticity and substitution of hydroxyl
groups, Environ. Sci. Technol., 42 (2008) 7254–7259.
- A.K. Mishra, T. Arockiadoss, S. Ramaprabhu, Study of removal
of azo dye by functionalized multi-walled carbon nanotubes,
Chem. Eng. J., 162 (2010) 1026–1034.
- K. Boutemak, N. Taoualit, B. Cheknane, O. Laslouni, S. Djeddou,
K. Medaoud, I. Mazouni, S. Aoudj, Equilibrium, kinetic and
thermodynamic study of Green Malachite and Rhodamine-B
dyes sorption on olive pomace, Chem. Eng. Trans., 73 (2019)
277–282.
- H. Zeidan, M.E. Marti, Separation of formic acid from aqueous
solutions onto anion exchange resins: Equilibrium, kinetic, and
thermodynamic data, J. Chem. Eng. Data, 64 (2019) 2718−2727.
- S. Chen, J. Zhang, C. Zhang, Q. Yue, Y. Li, C. Li, Equilibrium
and kinetic studies of Methyl Orange and Methyl Violet
adsorption on activated carbon derived from phragmites
australis, Desalination, 252 (2010) 149–156.
- G. Annadurai, R.L. Juang, D.J. Lee, Use of cellulose-based
wastes for adsorption of dyes from aqueous solutions,
J. Hazard. Mater., 92 (2002) 263–274.
- F. Deniz, Dye removal by almond shell residues: studies on
biosorption performance and process design, Mater. Sci. Eng.,
C, 33 (2013) 2821–2826.
- C. Namasivayam, D. Kavitha, Removal of Congo red from
water by adsorption onto activated carbon prepared from coir
pith, an agricultural solid waste, Dyes Pigm., 54 (2002) 47–58.
- A. Aygun, S.Yenisoy-Karakas, I. Duman, Production of granular
activated carbon from fruit stones and nutshells and evaluation
of their physical, chemical and adsorption properties,
Microporous Mesoporous Mater., 66 (2003) 189–195.
- K.G. Bhattacharyya, A. Sharma, Azadirachta indica leaf powder
as an effective biosorbent for dyes: a case study with aqueous
Congo Red solutions, J. Environ. Manage., 71 (2004) 217–229.
- I.D. Mall, V.C. Srivastava, N.K. Agarwal, I.M. Mishra, Removal
of Congo Red from aqueous solution by bagasse fly ash and
activated carbon: kinetic study and equilibrium isotherm
analyses, Chemosphere, 61 (2005) 492–501.
- M.C. Reddy, Removal of direct dye from aqueous solution with
an adsorbent made from tamarind fruit shell, an agricultural
solid waste, J. Sci. Ind. Res., 65 (2006) 443–446.
- A. Tor, Y. Cengeloglu, Removal of Congo Red from aqueous
solution by adsorption onto acid activated red med, J. Hazard.
Mater., 138 (2006) 409–415.
- P.S. Kumar, S. Ramalingam, C. Senthamarai, M. Niranjanna,
P. Vijayalakshmi, S. Sivanesan, Adsorption of dye from aqueous
solution by cashew nut shell: Studies on equilibrium isotherm,
kinetics and thermodynamics of interactions, Desalination,
261 (2010) 52–60.
- M. Ghaedi, H. Tavallali, M. Sharifi, S.N. Kokhdan, A. Asghari,
Preparation of low cost activated carbon from Myrtus communis and pomegranate and their efficient application for removal of
Congo Red from aqueous solution, Spectrochim. Acta, Part A,
86 (2012) 107–114.
- S. Dawood, T.K. Sen, Removal of anionic dye Congo Red from
aqueous solution by raw pine and acid-treated pine cone
powder as adsorbent: equilibrium, thermodynamic, kinetics,
mechanism and process design, Water Res., 46 (2012) 1933–1946.
- M.C.S. Reddy, V. Nirmala, C. Ashwini, Bengal Gram Seed
Husk as an adsorbent for the removal 524 of dye from aqueous
solutions–Batch studies, Arabian J. Chem., 10 (2017) 2554–2566.
- S.Y. Lagergren, Zur theorie Der Sogenannten adsorption
geloster stoffe, Kungl. Svens. Vetenskapsakad., 24 (1898) 1–39.
- Y.S. Ho, G. Mckay, Pseudo-second-order model for sorption
processes, Process Biochem., 34 (1999) 451–465.
- S.Y. Elovich, O.G. Larinov, Theory of adsorption from solutions
of non-electrolytes on solid (I) equation adsorption from
solutions and the analysis of its simplest form, (II) verification
of the equation of adsorption isotherm from solutions, Izvestiya
Akademii Nauk. SSSR, Otdelenie Khimicheskikh Nauk, 2 (1962)
209–216.
- W.J. Weber, J.C. Morris, Water Pollution Symposium,
Proceedings of 1st International Conference on Water Pollution
Research, Vol. 2, Pergamon, Oxford, 1962, pp. 231–266.
- D. Kavitha, C. Namasivayam, Experimental and kinetic studies
on Methylene Blue adsorption by coir pith carbon, Bioresour.
Technol., 98 (2007) 14–21.
- A. Khaled, A.E. Nemr, A. El-Sikaily, O. Abdelwahab, Treatment
of artificial textile dye effluent containing Direct Yellow 12 by
orange peel carbon, Desalination, 238 (2009) 210–232.
- P. Murugan, S.T. Ramesh, V.M. Biju, Characterization,
morphology and stability assessment of low-cost industrial
by-product as an adsorbent for the removal of methylene blue
from aqueous solution, Sep. Sci. Technol., 55 (2020) 471–486.
- I. Langmuir, The constitution and fundamental properties of
solids and liquids, Part I. Solids, J. Am. Chem. Soc., 38 (1916)
2221–2295.
- K.K.H. Choy, J.F. Porter, G. McKay, Langmuir isotherm models
applied to the multicomponent sorption of acid dyes from
effluent onto activated carbon, J. Chem. Eng. Data, 45 (2000)
575–584.
- H. Zeidan, D. Ozdemir, N. Kose, E. Pehlivan, G. Ahmetli,
M.E. Marti, Separation of formic acid and acetic acid from
aqueous solutions using sugar beet processing fly ash:
characterization, kinetics, isotherms and thermodynamics,
Desal. Water Treat., 202 (2020) 283–294.
- H.M.F. Freundlich, Adsorption in solution, Z. Phys. Chem.,
57 (1906) 385–490.
- M. Temkin, V. Pyzhev, Kinetics of ammonia synthesis on
promoted iron catalysts, Acta Phys., 12 (1940) 217–222.
- K.K. Panday, G. Prasad, V.N. Singh, Use of wollastonite for
the treatment of Cu(II) rich effluents, Water Air Soil Pollut.,
27 (1986) 287–296.
- M.J. Jaycock, G.D. Parfitt, Chemistry of Interfaces, Ellis
Horwood Ltd., Chichester, 1981.
- C.E. Can, Separation of Itaconic Acid from Aqueous Phases
Using Anionic Resins, MS Thesis, Selçuk University, Konya,
Turkey, 2018.
- H. Kaur, A. Thakur, Adsorption of Congo Red dye from
aqueous solution onto ash of Cassia Fistula seeds: kinetic
and thermodynamic studies, Chem. Sci. Rev. Lett., 3 (2014)
159–169.
- F. Krika, O.F. Benlahbib, Removal of Methyl Orange from
aqueous solution via adsorption on cork as a natural and lowcost
adsorbent: equilibrium, kinetic and thermodynamic study
of removal process, Desal. Water Treat., 53 (2014) 3711–3723.