References
- C. Liu, Y.Q. Guo, X.J. Wei, C. Wang, M.C. Qu, D.W. Schubert,
C.H. Zhang, An outstanding antichlorine and antibacterial
membrane with quaternary ammonium salts of alkenes via in
situ polymerization for textile wastewater treatment, Chem.
Eng. J., 384 (2020) 123306.
- T.W. Leal, L.A. Lourenço, A.S. Scheibe, U. Guelli, S.M.A. de
Souza, A.A.U. de Souza, Textile wastewater treatment using
low-cost adsorbent aiming the water reuse in dyeing process,
J. Environ. Chem. Eng., 6 (2018) 2705–2712.
- N. Takahashi, T. Kumagai, Removal of dissolved organic
carbon and color from dyeing wastewater by pre-ozonation
and subsequent biological treatment, Ozone Sci. Eng., 28 (2006)
199–205.
- J. Blanco, F. Torrades, M. de la Varga, J. García-Montaño, Fenton
and biological-Fenton coupled processes for textile wastewater
treatment and reuse, Desalination, 286 (2012) 394–399.
- C.R. Holkar, A.J. Jadhav, D.V. Pinjari, N.M. Mahamuni,
A.B. Pandit, A critical review on textile wastewater treatments:
possible approaches, J. Environ. Manage., 182 (2016) 351–366.
- A. Birgül, Use of Advanced Oxidation Processes in Textile
Industry Wastewater Treatment, Master Thesis, Uludağ
Üniversity Institute of Science, Bursa-Turkey, 2006, pp. 1–124.
- X.Y. Yang, B. Al-Duri, Application of branched pore diffusion
model in the adsorption of reactive dyes on activated carbon,
Chem. Eng. J., 83 (2001) 15–23.
- O. Türgay, G. Ersöz, Ş. Atalaya, J. Forss, U. Welander,
The treatment of azo dyes found in textile industry wastewater
by anaerobic biological method and chemical oxidation, Sep.
Purif. Technol., 79 (2011) 26–33.
- A. Sharma, Z. Syed, U. Brighu, A.B. Gupta, C. Ram, Adsorption
of textile wastewater on alkali-activated sand, J. Cleaner Prod.,
220 (2019) 23–32.
- M.R. Al-Mamun, S. Kader, M.S. Islam, M.Z.H. Khan,
Photocatalytic activity improvement and application of
UV-TiO2 photocatalysis in textile wastewater treatment: a
review, J. Environ. Chem. Eng., 7 (2019) 1032–1048.
- A. Alinsafi, F. Evenou, E.M. Abdulkarim, M.N. Pons, O. Zahraa,
A. Benhammou, A. Yaacoubi, A. Nejmeddine, Treatment of
textile industry wastewater by supported photocatalysis, Dyes
Pigm., 74 (2007) 439–445.
- S. Chakraborty, S. De, J.K. Basu, S. DasGupta, Treatment of a
textile effluent: application of a combination method involving
adsorption and nanofiltration, Desalination, 174 (2005) 73–85.
- S.K. Kansal, M. Singh, D. Sud, Studies on photodegradation
of two commercial dyes in aqueous phase using different
photocatalysts, J. Hazard. Mater., 141 (2007) 581–590.
- K. Paździor, J. Wrębiak, A. Klepacz-Smółka, M. Gmurek,
L. Bilińska, L. Kos, J. Sójka-Ledakowicz, S. Ledakowicz,
Influence of ozonation and biodegradation on toxicity of
industrial textile wastewater, J. Environ. Manage., 195 (2017)
166–173.
- J. Dotto, M.R. Fagundes-Klen, Performance of different
coagulants in the coagulation/flocculation process of textile
wastewater, J. Cleaner Prod., 208 (2019) 656–665.
- A. Buthiyappan, A.A.A. Raman, Energy intensified integrated
advanced oxidation technology for the treatment of recalcitrant
industrial wastewater, J. Cleaner Prod., 206 (2019) 1025–1040.
- S.G. Cetinkaya, M.H. Morcali, S. Akarsu, C.A. Ziba, M. Dolaz,
Comparison of classic Fenton with ultrasound Fenton processes
on industrial textile wastewater, Sustainable Environ. Res.,
28 (2018) 165–170.
- J. Khatri, P.V. Nidheesh, T.S.A. Singh, M.S. Kumar, Advanced
oxidation processes based on zero-valent aluminum for treating
textile wastewater, Chem. Eng. J., 348 (2018) 67–73.
- H.U. Farouk, A.A.A. Raman, W.M.A.W. Daud, TiO2 catalyst
deactivation in textile wastewater treatment: current challenges
and future advances, J. Ind. Eng. Chem., 33 (2016) 11–21.
- M.J.P. Brito, C.M. Veloso, L.S. Santos, R.C.F. Bonomo,
R.C.I. Fontan, Adsorption of the textile dye Dianix® royal blue
CC onto carbons obtained from yellow mombin fruit stones
and activated with KOH and H3PO4: kinetics, adsorption
equilibrium and thermodynamic studies, Powder Technol.,
339 (2018) 334–343.
- S. Wong, N.A.N. Yac’cob, N. Ngadi, O. Hassan, I.M. Inuwa,
From pollutant to solution of wastewater pollution: synthesis of
activated carbon from textile sludge for dye adsorption, Chin.
J. Chem. Eng., 26 (2018) 870–878.
- L. Bilińska, K. Blus, M. Gmurek, S. Ledakowicz, Coupling of
electrocoagulation and ozone treatment for textile wastewater
reuse, Chem. Eng. J., 358 (2019) 992–1001.
- Z.H. Xu, Z.H. Sun, Y.W. Zhou, W.F. Chen, T.Q. Zhang,
Y.X. Huang, D.F. Zhang, Insights into the pyrolysis behavior
and adsorption properties of activated carbon from waste cotton
textiles by FeCl3-activation, Colloids Surf., A, 582 (2019) 123934.
- J.Y. Liang, X.-A. Ning, J. Sun, J. Song, Y.X. Hong, H. Cai, An
integrated permanganate and ozone process for the treatment
of textile dyeing wastewater: efficiency and mechanism,
J. Cleaner Prod., 204 (2018) 12–19.
- BSI Standard Publication, Water Quality-Examination and
Determination of Color, European Standards, (ISO 7887:2011).
- APHA/AWWA/WEF, Standard Methods for the Examination
of Water and Wastewater, 23rd ed., American Public Health
Association/American Water Works Association/Water
Environment Federation, Washington, D.C., USA, 2017.
- T. Fazal, A. Razzaq, F. Javed, A. Hafeez, N. Rashid, U.S. Amjad,
M.S.U. Rehman, A. Faisal, F. Rehman, Integrating adsorption
and photocatalysis: a cost effective strategy for textile
wastewater treatment using hybrid biochar-TiO2 composite,
J. Hazard. Mater., 390 (2020) 12623.
- P.A. Parakis, N.P. Xekoukoulotakis, D. Mantzavinos, Treatment
of textile dyehouse wastewater by TiO2 photocatalysis, Water
Res., 40 (2006) 1276–1286.
- S. Devipriya, S. Yesodharan, Photocatalytic degradation of
pesticide contaminants in water, Sol. Energy Mater. Sol. Cells,
86 (2004) 309–348.
- M.M. El-Moselhy, Photo-Degradation of Acid Red 44 using Al
and Fe Modified Silicates Chemistry Department, Faculty of
Science, Al-Azhar University, Nasr City, Cairo, Egypt, 2009.
- K.S. Low, C.K. Lee, Quaternized rice husk as sorbent for reactive
dyes, Bioresour. Technol., 61 (1997) 121–125.
- M.O. Fatehah, H.A. Aziz, S. Stoll, Stability of ZnO nanoparticles
in solution, influence of pH, dissolution, aggregation and
disaggregation effects, J. Colloid Sci. Biotechnol., 3 (2014) 75–84.
- C. Curtis, D. Toghani, B. Wong, E. Nancea, Colloidal stability
as a determinant of nanoparticle behavior in the brain, Colloids
Surf., B, 170 (2018) 673–682.
- S.S. Silva, O. Chiavone-Filho, E.L.B. Neto, E.L. Foletto, Oil
removal from produced water by conjugation of flotation
and photo-Fenton processes, J. Environ. Manage., 147 (2015)
257–263.
- K. Rajeshwar, M.E. Osugi, W. Chanmanee, C.R. Chenthamarakshan,
M.V.B. Zanoni, P. Kajitvichyanukul, R. Krishnan-Ayer, Heterogeneous photocatalytic treatment of organic dyes
in air and aqueous media, J. Photochem. Photobiol., C, 9 (2008)
171–192.
- J.P. Simonin, On the comparison of pseudo-first-order and
pseudo-second-order rate laws in the modeling of adsorption
kinetics, Chem. Eng. J., 300 (2016) 254–263.
- M. Özacar, İ.A. Şengil, Two-stage batch sorber design using
second-order kinetic model for the sorption of metal complex
dyes onto pine sawdust, Biochem. Eng. J., 21 (2004) 39–45.