References
- H. Zangeneh, A.A. Zinatizadeh, M. Habibi, M. Akia, M.H. Isa,
Photocatalytic oxidation of organic dyes and pollutants in
wastewater using different modified titanium dioxides: a
comparative review, J. Ind. Eng. Chem., 26 (2015) 1–36.
- L.G. da Silva, R. Ruggiero, P.D.M. Gontijo, R.B. Pinto, B. Royer,
E.C. Lima, T. Calvete, Adsorption of brilliant red 2BE dye from
water solutions by a chemically modified sugarcane bagasse
lignin, Chem. Eng. J., 168 (2011) 620–628.
- H. Zangeneh, M. Farhadian, A.A. Zinatizadeh, N (Urea)
and C-N (L-Asparagine) doped TiO2-CuO nanocomposites:
fabrication, characterization and photodegradation of direct red
16, J. Environ. Chem. Eng., 8 (2020) 103639.
- M. Aram, M. Farhadian, A.R. Solaimany Nazar, S. Tangestaninejad,
P. Eskandari, B.H. Jeon, Metronidazole and cephalexin
degradation by using of Urea/TiO2/ZnFe2O4/clinoptiloite catalyst
under visible-light irradiation and ozone injection, J. Mol. Liq.,
304 (2020) 112764.
- E. Rafiee, E. Noori, A.A. Zinatizadeh, H. Zanganeh, A new
visible driven nanocomposite including Ti-substituted polyoxometalate/TiO2: synthesis, characterization, photodegradation
of azo dye process optimization by RSM and specific removal
rate calculations, J. Mater. Sci.-Mater. Electron., 29 (2018)
20668–20679.
- C.-Y. Yen, Y.-F. Lin, C.-H. Hung, Y.-H. Tseng, C.-C.M. Ma,
M.-C. Chang, H. Shao, The effects of synthesis procedures on
the morphology and photocatalytic activity of multi-walled
carbon nanotubes/TiO2 nanocomposites, Nanotechnology,
19 (2008) 045604.
- C.-H. Wu, C.-Y. Ku, S.-T. Chen, Synergistic effects between TiO2
and carbon nanotubes (CNTs) in a TiO2/CNTs system under
visible light irradiation, Environ. Technol., 34 (2013) 2513–2519.
- P. Serp, M. Corrias, P. Kalck, Carbon nanotubes and nanofibers
in catalysis, Appl. Catal., A, 253 (2003) 337–358.
- Y. Yao, G. Li, S. Ciston, R.M. Lueptow, K.A. Gray, Photoreactive
TiO2/carbon nanotube composites: synthesis and reactivity,
Environ. Sci. Technol., 42 (2008) 4952–4957.
- D. Zhao, C.-F. Yang, Recent advances in the TiO2/CdS
nanocomposite used for photocatalytic hydrogen production
and quantum-dot-sensitized solar cells, Renewable Sustainable
Energy Rev., 54 (2016) 1048–1059.
- S. Kumar, S. Sharma, S. Sood, A. Umar, S.K. Kansal, Bismuth
sulfide (Bi2S3) nanotubes decorated TiO2 nanoparticles
heterojunction assembly for enhanced solar light driven
photocatalytic activity, Ceram. Int., 42 (2016) 17551–17557.
- X. Tan, X.L. Li, T. Yu, Y. Zhao, Preparation and photocatalytic
activity of BiOBr/TiO2 heterojunction nanocomposites, Trans.
Tianjin Univ., 22 (2016) 211–217.
- X.F. Chang, M.A. Gondal, A.A. Al-Saadi, M.A. Ali, H.F. Shen,
Q. Zhou, J. Zhang, M.P. Du, Y.S. Liu, G.B. Ji, Photodegradation
of Rhodamine B over unexcited semiconductor compounds of
BiOCl and BiOBr, J. Colloid Interface Sci., 377 (2012) 291–298.
- G.H. Jiang, X.H. Wang, Z.Z. Wei, X. Li, X.G. Xi, R.B. Hu,
B.L. Tang, R.J. Wang, S. Wang, T. Wang, W.X. Chen, Photocatalytic
properties of hierarchical structures based on Fe-doped
BiOBr hollow microspheres, J. Mater. Chem. A, 1 (2013)
2406–2410.
- M. Shang, W.Z. Wang, L. Zhang, Preparation of BiOBr lamellar
structure with high photocatalytic activity by CTAB as Br
source and template, J. Hazard. Mater., 167 (2009) 803–809.
- W.W. Lin, X. Wang, Y.H. Wang, J.Y. Zhang, Z. Lin, B.T. Zhang,
F. Huang, Synthesis and facet-dependent photocatalytic activity
of BiOBr single-crystalline nanosheets, Chem. Commun.,
53 (2017) 4861.
- D. Zhang, J. Li, Q.G. Wang, Q.S. Wu, High {001} facets
dominated BiOBr lamellas: facile hydrolysis preparation and
selective visible-light photocatalytic activity, J. Mater. Chem. A,
1 (2013) 8622–8629.
- Y.C. Feng, L. Li, J.W. Li, J.F. Wang, L. Liu, Synthesis of mesoporous
BiOBr 3D microspheres and their photodecomposition for
toluene, J. Hazard. Mater., 192 (2011) 538–544.
- J.L. Qiao, Q.Y. Wang, J.X. Ye, Y.K. Xiao, Enhancing
photoelectrochemical performance of TiO2 nanotube arrays
by CdS and Bi2S3 co-sensitization, J. Photochem. Photobiol., A,
319 (2016) 34–39.
- A. Witek-Krowiak, K. Chojnacka, D. Podstawczyk, A. Dawiec,
K. Pokomeda, Application of response surface methodology
and artificial neural network methods in modelling and
optimization of biosorption process, Bioresour. Technol.,
160 (2014) 150–160.
- M.J.K. Bashir, H.A. Aziz, M.S. Yusoff, M.N. Adlan, Application
of response surface methodology (RSM) for optimization
of ammoniacal nitrogen removal from semi-aerobic landfill
leachate using ion exchange resin, Desalination, 254 (2010)
154–161.
- H.Y. Xu, L.C. Wu, H. Zhao, L.G. Jin, S.Y. Qi, Synergic effect
between adsorption and photocatalysis of metal-free g-C3N4
derived from different precursors, PLoS one, 10 (2015) e0142616.
- E. Rafiee, E. Noori, A.A. Zinatizadeh, H. Zanganeh, Photocatalytic
degradation of phenol using a new developed
TiO2/graphene/heteropoly acid nanocomposite: synthesis,
characterization and process optimization, RSC Adv., 6 (2016)
96554–96562.
- S. Xiao, W. Zhu, P.J. Liu, F.F. Liu, W.R. Dai, D.Q. Zhang,
W. Chen, H.X. Li, CNTs threaded (001) exposed TiO2 with
high activity in photocatalytic NO oxidation, Nanoscale,
8 (2016) 2899–2907.
- S. Boumaza, B. Bellal, A. Boudjemaa, M. Trari, Photodegradation
of orange G by the hetero-junction x% Bi2S3/TiO2 under solar
light, J. Sol. Energy, 139 (2016) 444–451.
- X.-X. Wei, C. Haitao, G. Shaoqing, Z. Liangfu, W. Li,
Hybrid BiOBr–TiO2 nanocomposites with high visible light
photocatalytic activity for water treatment, J. Hazard. Mater.,
263 (2013) 650–658.
- P. Eskandari, M. Farhadian, A.R. Solaimany Nazar, B.-H. Jeon,
Adsorption and photodegradation efficiency of TiO2/Fe2O3/PAC and TiO2/Fe2O3/zeolite nanophotocatalysts for the removal
of cyanide, Ind. Eng. Chem. Res., 58 (2019) 2099–2112.
- E.N. El. Qada, S.J. Allen, G.M. Walker, Adsorption of methylene
blue onto activated carbon produced from steam activated
bituminous coal: a study of equilibrium adsorption isotherm,
Chem. Eng. J., 124 (2006) 103–110.
- J. Saien, M. Asgari, A.R. Soleymani, N. Taghavini, Photocatalytic
decomposition of direct red 16 and kinetics analysis in a conic
body packed bed reactor with nanostructure titania coated
Raschig rings, Chem. Eng. J., 151 (2009) 295–301.