References
- H.B. Mansour, Y. Ayed-Ajmi, R. Mosrati, D. Corroler, D. Barillier,
L. Chekir-Ghedira, Acid violet 7 and its biodegradation
products induce chromosome aberrations, lipid peroxidation,
and cholinesterase inhibition in mouse bone marrow, Environ.
Sci. Pollut. Res., 17 (2010) 1371–1378.
- K. Elnagar, S. Sanad, A. Mohamed, A. Ramadan, Mechanical
properties and stability to light exposure for dyed Egyptian
cotton fabrics with natural and synthetic dyes, Polym. Plast.
Technol. Eng., 44 (2005) 1269–1279.
- T. Robinson, G. McMullan, R. Marchant, P. Nigam, Remediation
of dyes in textile effluent: a critical review on current treatment
technologies with a proposed alternative, Bioresour. Technol.,
77 (2001) 247–255.
- A.A. Kadam, A.A. Telke, S.S. Jagtap, S.P. Govindwar,
Decolorization of adsorbed textile dyes by developed
consortium of Pseudomonas sp. SUK1 and Aspergillus ochraceus
NCIM-1146 under solid state fermentation, J. Hazard. Mater.,
189 (2011) 486–494.
- M.A. Castro, V. Nogueira, I. Lopes, T. Rocha-Santos, R. Pereira,
Evaluation of the potential toxicity of effluents from the textile
industry before and after treatment, Appl. Sci., 9 (2019) 3804,
https://doi.org/10.3390/app9183804.
- A. Suresh, S. Sathish, G.N. Kumar, Electrocoagulation of azo
dye containing synthetic wastewater using monopolar iron
electrodes and the characterization of the sludge, Water Pract.
Technol., 14 (2019) 587–597.
- S.N. Malik, P.C. Ghosh, A.N. Vaidya, S.N. Mudliar, Catalytic
ozone pretreatment of complex textile effluent using Fe2+ and
zero valent iron nanoparticles, J. Hazard. Mater., 357 (2018)
363–375.
- M. Jiang, K. Ye, J. Deng, J. Lin, W. Ye, S. Zhao, B. van der
Bruggen, Conventional ultrafiltration as effective strategy for
dye/salt fractionation in textile wastewater treatment, Environ.
Sci. Technol., 52 (2018) 10698–10708.
- C.C. Azubuike, C.B. Chikere, G.C. Okpokwasili, Bioremediation
techniques-classification based on site of application:
principles, advantages, limitations and prospects, World J.
Microbiol. Biotechnol., 32 (2016) 180, https://doi.org/10.1007/
s11274-016-2137-x.
- A.A. Oyekanmi, A. Ahmad, K. Hossain, M. Rafatullah,
Adsorption of Rhodamine B dye from aqueous solution onto
acid treated banana peel: response surface methodology,
kinetics and isotherm studies, PLoS One, 14 (2019) e0216878,
https://doi.org/10.1371/journal.pone.0216878.
- Z. Kovacova, S. Demcak, M. Balintova, Removal of copper from
water solutions by adsorption on spruce sawdust, Proceedings,
16 (2019) 52, doi: 10.3390/proceedings2019016052.
- V. Prajaputra, Z. Abidin, W. Widiatmaka, Methylene blue
removal using developed material from volcanic ash soils, Int.
J. Sci. Technol. Res., 8 (2019) 706–709.
- Q. Zhang, Y. Zhang, J. Chen, Q. Liu, Hierarchical structure
kaolinite nanospheres with remarkably enhanced adsorption
properties for Methylene blue, Nanoscale Res. Lett., 14 (2019)
104, https://doi.org/10.1186/s11671-019-2934-x.
- S. Lubis, Sheilatin, V. Prajaputra, N.S. Sepia, Preparation and
characterization of titania/bentonite composite application
on the degradation of naphthol blue black dye, Res. J. Chem.
Environ., 22 (2018) 48–53.
- K. Jahangiri, N. Yousefi, S.K. Ghadiri, R. Fekri, A. Bagheri,
S.S. Talebi, Enhancement adsorption of hexavalent chromium
onto modified fly ash from aqueous solution; optimization;
isotherm, kinetic and thermodynamic study, J. Dispersion Sci.
Technol., 40 (2019) 1147–1158.
- M. Shafiee, M.A. Abedi, S. Abbasizadeh, R.K. Sheshdeh,
S.E. Mousavi, S. Shohani, Effect of zeolite hydroxyl active
site distribution on adsorption of Pb(II) and Ni(II) pollutants
from water system by polymeric nanofibers, Sep. Sci. Technol.,
55 (2019) 1–18.
- Y. Zheng, X. Li, P.K. Dutta, Exploitation of unique properties
of zeolites in the development of gas sensors, Sensors (Basel),
12 (2012) 5170–5194.
- S.M.J. Mirzaei, M. Heidarpour, S.H. Tabatabaei, P. Najafi,
S.E. Hashemi, Immobilization of leachate’s heavy metals using
soil-zeolite column, Int. J. Recyl. Org. Waste Agric., 2 (2013) 20,
https://doi.org/10.1186/2251-7715-2-20.
- N. Martín, P.N.R. Vennestrøm, J.R. Thøgersen, M. Moliner,
A. Corma, Fe-containing zeolites for NH3–SCR of NOx: effect
of structure, synthesis procedure, and chemical composition
on catalytic performance and stability, Chem. Eur. J., 23 (2017)
13404–13414.
- N.L.M. Tri, P.Q. Thang, L.V. Tan, P.T. Huong, J. Kim,
N.M. Viet, N.M. Phuong, T.M.A. Tahtamouni, Removal of
phenolic compounds from wastewaters by using synthesized
Fe-nano zeolite, J. Water Process Eng., 33 (2020) 101070, https://doi.org/10.1016/j.jwpe.2019.101070.
- G.D. Pirngruber, P.K. Roy, R. Prins, On determining the
nuclearity of iron sites in Fe-ZSM-5—a critical evaluation,
Phys. Chem. Chem. Phys., 8 (2006) 3939–3950.
- R. Gonzalez-Olmos, F.-D. Kopinke, K. Mackenzie, A. Georgi,
Hydrophobic Fe-zeolites for removal of MTBE from water
by combination of adsorption and oxidation, Environ. Sci.
Technol., 47 (2013) 2353–2360.
- B. Ersoy, A. Sariisik, S. Dikmen, G. Sariisik, Characterisationof
acidic pumice and determination of its electrokinetic properties
in water, Powder Technol. 197 (2010) 129–135.
- M.R. Samarghandi, M. Zarrabi, A. Amrane, M.M. Soori,
M.N. Sepehr, Removal of acid black dye by pumice stone as a
low cost adsorbent: kinetic, thermodynamic and equilibrium
studies, Environ. Eng. Manage. J., 12 (2012) 2137–2147.
- M.R. Panuccio, A. Sorgonà, M. Rizzo, G. Cacco, Cadmium
adsorption on vermiculite, zeolite and pumice: batch
experimental studies, J. Environ. Manage., 90 (2009) 364–374.
- M.N. Sepehr, A. Amrane, K.A. Karimaian, M. Zarrabi,
H.R. Ghaffari, Potential of waste pumice and surface modified
pumice for hexavalent chromium removal: characterization,
equilibrium, thermodynamic and kinetic study, J. Taiwan Inst.
Chem. Eng., 45 (2014) 635–647.
- V. Prajaputra, Z. Abidin, Widiatmaka, D.T. Suryaningtyas,
H. Rizal, Characterization of Na-P1 zeolite synthesized from
pumice as low-cost materials and its ability for Methylene
blue adsorption, IOP Conf. Ser.: Earth Environ. Sci., 399 (2019)
012014.
- M. Shaban, M.R. Abukhadra, A.A.P. Khan, B.M. Jibali, Removal
of Congo red, Methylene blue and Cr(VI) ions from water
using natural serpentine, J. Taiwan Inst. Chem. Eng., 82 (2018)
102–116.
- X. Li, W. Yang, Q. Zou, Y. Zuo, Investigation on microstructure,
composition, and cytocompatibility of natural pumice for
potential biomedical application, Tissue Eng. Part C Methods,
16 (2009) 427–434.
- E.A. Hildebrando, C.G.B. Andrade, C.A.F. da Rocha Junior,
R. Angélica, F. Valenzuela-Díaz, R. Neves, Synthesis and
characterization of zeolite NaP using kaolin waste as a source
of silicon and aluminum, Mater. Res., 17 (2014) 174–179.
- A.I.M. Ismail, O.I. El-Shafey, M.H.A. Amr, M.S. El-Maghraby,
Pumice characteristics and their utilization on the synthesis
of mesoporous minerals and on the removal of heavy metals,
Int. Scholarly Res. Notices, 2014 (2014) 259379, https://doi.org/10.1155/2014/259379.
- G. Asgari, B. Roshani, G. Ghanizadeh, The investigation of
kinetic and isotherm of fluoride adsorption onto functionalize
pumice stone, J. Hazard. Mater., 217 (2012) 123–132.
- A. Günay, E. Arslankaya, İ. Tosun, Lead removal from aqueous
solution by natural and pretreated clinoptilolite: adsorption
equilibrium and kinetics, J. Hazard. Mater., 146 (2007) 362–371.
- A. Nimibofa, A. Ekubo, W. Donbebe, E. Dikio, Adsorption of
congo red by Ni/Al-CO3: equilibrium, thermodynamic and
kinetic studies, Orient. J. Chem., 31 (2015) 1307–1318.
- A.M.M. Vargas, A.L. Cazetta, M.H. Kunita, T.L. Silva,
V.C. Almeida, Adsorption of Methylene blue on activated
carbon produced from flamboyant pods (Delonix regia): study
of adsorption isotherms and kinetic models, Chem. Eng. J.,
168 (2011) 722–730.
- Q. Wang, S. Tian, P. Ning, Degradation mechanism of Methylene
blue in a heterogeneous Fenton-like reaction catalyzed by
ferrocene, Ind. Eng. Chem. Res., 53 (2014) 643–649.
- F. Jafari-zare, A. Habibi-yangjeh, Competitive adsorption
of Methylene blue and rhodamine B on natural zeolite:
thermodynamic and kinetic studies, Chin. J. Chem. Eng.,
28 (2010) 349–356.
- P. Janoš, H. Buchtová, M. Rýznarová, Sorption of dyes from
aqueous solutions onto fly ash, Water Res., 37 (2003) 4938–4944.
- C.D. Woolard, J. Strong, C.R. Erasmus, Evaluation of the use
of modified coal ash as a potential sorbent for organic waste
streams, Appl. Geochem., 17 (2002) 1159–1164.
- D. Ghosh, K.G. Bhattacharyya, Adsorption of Methylene blue
on kaolinite, Appl. Clay Sci., 20 (2002) 295–300.