References
- A. Fujishima, T. Rao, D. Tryk, P-doped titania xerogels as
efficient UV-visible photocatalysts, J. Photochem. Photobiol., C,
1 (2000) 1–21.
- J. Trawiński, R. Skibiński, Multivariate comparison of
photocatalytic properties of thirteen nanostructured metal
oxides for water purification, J. Environ. Sci. Health. Part A
Toxic/Hazard. Subst. Environ. Eng., 54 (2019) 851–864.
- D. Panchal, A. Sharma, S. Pal, Chapter 1 – Novel Photocatalytic
Techniques for Organic Dye Degradation in Water, M. Shah,
S. Dave, J. Das, Eds., Photocatalytic Degradation of Dyes:
Current Trends and Future Perspectives, Elsevier, Germany,
2021, pp. 1–22.
- A. Dahiya, B.K. Patel, Chapter 3 – Photocatalytic Degradation
of Organic Dyes Using Heterogeneous Catalysts, M. Shah,
S. Dave, J. Das, Eds., Photocatalytic Degradation of Dyes:
Current Trends and Future Perspectives, Elsevier, Germany,
2021, pp. 43–90.
- J. Singh, V. Verma, R. Kumar, R. Kumar, Influence of Mg2+-substitution on the optical band gap energy
of Cr2–xMgxO3
nanoparticles, Results Phys., 13 (2019) 102106, doi: 10.1016/j.rinp.2019.02.042.
- A.A. Salaeva, M.A. Salaev, O.V. Vodyankina, G.V. Mamontov,
Synergistic effect of Cu and Zn modifiers on the activity of
CrOx/Al2O3 catalysts in isobutane dehydrogenation, Appl.
Catal., A, 581 (2019) 82–90.
- G.A. El-Shobaky, A.I. Ahmed, H.M.A. Hassan, S.E. El-Shafey,
Effects of K2O–Li2O doping on surface and catalytic properties
of Fe2O3/Cr2O3 system, J. Alloys Compd., 509 (2011) 1314–1321.
- B.Y. Jibril, Propane oxidative dehydrogenation over chromium
oxide-based catalysts, Appl. Catal., A, 264 (2004) 193–202.
- B.-Y. Song, X.-F. Zhang, J. Huang, X.-L. Cheng, Z.-P. Deng,
Y.-M. Xu, L.-H. Huo, S. Gao, Porous Cr2O3 architecture
assembled by nano-sized cylinders/ellipsoids for enhanced
sensing to trace H2S gas, ACS Appl. Mater. Interfaces, 14 (2022)
22302–22312.
- C.L. Li, H.X. Zhao, T. Takahashi, M. Matsumur, Improvement
of corrosion resistance of materials coated with a Cr2O3/NiCr
dilayer using a sealing treatment, Mater. Sci. Eng., A, 308 (2001)
268–276.
- V.S. Jaswal, A.K. Arora, J. Singh, M. Kinger, V.D. Gupta,
Synthesis and characterization of chromium oxide
nanoparticles, Orient. J. Chem. An Int. Res. J. Pure Appl.
Chem., 30 (2014) 559–566.
- E.R. Shaaban, M.Y. Hassaan, M.G. Moustafa, A. Qasem,
G.A.M. Ali, E.S. Yousef, Investigation of structural and optical
properties of amorphous-crystalline phase transition of
As40S45Se15 thin films, Acta Phys. Pol. A, 136 (2019) 498–512.
- M.S. Muthu, P. Ajith, J. Agnes, R. Ramkumar, P. Raja, D. Prem
Anand, Synthesis, characterizations and antibacterial studies
of chromium trioxide nanoparticles, Int. J. Mod. Trends Sci.
Technol., 8 (2022) 252–258.
- R. Viswanatha, T.G. Venkatesh, C.C. Vidyasagar, Y. Arthoba
Nayaka, Y.J. Arch. Preparation and characterization of ZnO and
Mg-ZnO nanoparticle, Arch. Appl. Sci. Res., 4 (2012) 480–486.
- M. Rashad, M. Rüsing, G. Berth, K. Lischka, A. Pawlis,
CuO and Co3O4 nanoparticles: synthesis, characterizations,
and Raman spectroscopy, J. Nanomater., 2013 (2013) 82,
doi: 10.1155/2013/714853.
- N.M. Shaalan, M. Rashad, M.A. Abdel-Rahim, Repeatability
of indium oxide gas sensors for detecting methane at low
temperature, Mater. Sci. Semicond. Process., 56 (2016) 260–264.
- M. Rashad, N.M. Shaalan, A.M. Abd-Elnaiem, Degradation
enhancement of methylene blue on ZnO nanocombs synthesized
by thermal evaporation technique, Desal. Water Treat., 57 (2016)
26267–26273.
- N.M. Shaalan, D. Hamad, A. Aljaafari, A.Y. Abdel-Latief,
M.A. Abdel-Rahim,. Preparation and characterization of developed
CuxSn1–xO2 nanocomposite and its promising methane gas sensing
properties, Sensors, 19 (2019) 2257, doi: doi: 10.3390/s19102257.
- R.A. Zargar, K. Kumar, Z.M.M. Mahmoud, M. Shkir, S. AlFaify,
Optical characteristics of ZnO films under different thickness:
a MATLAB-based computer calculation for photovoltaic
applications, Physica B, 631 (2022) 413614, doi: 10.1016/j.physb.2021.413614.
- H.A. Al-Aoh, M. Jamil Maah, R. Yahya, M. Radzi Bin Abas,
A comparative investigation on adsorption performances
of activated carbon prepared from coconut husk fiber and
commercial activated carbon for Acid Red 27 dye, Asian J.
Chem., 25 (2013) 9582–9590.
- H. Zhu, R. Jiang, Y. Fu, Y. Guan, J. Yao, L. Xiao, G. Zeng, Effective
photocatalytic decolorization of methyl orange utilizing TiO2/ZnO/chitosan nanocomposite films under simulated solar
irradiation, Desalination, 286 (2012) 41–48.
- P. Zhang, X. Sun, J. Guo, Y. Wang, W. Zhang, W. Ning,
W. Li, C. Wei, X. Shi, S. Miao, Deep‐sea clays using as active
Fenton catalysts for self-propelled motors, J. Am. Ceram. Soc.,
105 (2022) 3797–3808.
- M. Rashad, T.A. Hamdalla, A.A.A. Darwish, S.M. Seleim,
High performance efficiency of water purification using Cr2O3
nanoparticles synthesized by thermal combustion technique,
Mater. Res. Express, 6 (2019) 065048.
- M.L. Curri, R. Comparelli, P.D. Cozzoli, G. Mascolo,
A. Agostiano, Colloidal oxide nanoparticles for the
photocatalytic degradation of organic dye, Mater. Sci. Eng.,
C, 23 (2003) 285–289.
- N.M. Shaalan, M. Rashad, O. Saber, A. Alshoaibi, C. Awada,
A comprehensive photocatalysis study of promising zirconia/laser-induced graphene nanocomposite for wastewater
treatment-based methylene blue pollution, Separations, 9 (2022)
185, doi: 10.3390/separations9080185.
- A. Fisal, W.M.A.W. Daud, M.A. Ahmad, R. Radzi, Using cocoa
(Theobroma cacao) shell-based activated carbon to remove
4-nitrophenol from aqueous solution: kinetics and equilibrium
studies, Chem. Eng. J., 178 (2011) 461–467.
- A.A.A. Darwish, M. Rashad, H.A. AL-Aoh, Methyl orange
adsorption comparison on nanoparticles: isotherm, kinetics,
and thermodynamic studies, Dyes Pigm., 160 (2019) 563–571.
- B.K. Shukla, S. Rawat, M.K. Gautam, H. Bhandari, S. Garg,
J. Singh, Photocatalytic degradation of Orange G dye by using
bismuth molybdate: photocatalysis optimization and modeling
via definitive screening designs, Molecules, 27 (2022) 2309,
doi: 10.3390/molecules27072309.
- M. Vinayagam, R. Saranya, V. Ramya, A. Sivasamy,
Photocatalytic degradation of Orange G dye using ZnO/biomass activated carbon nanocomposite, J. Environ. Chem.
Eng., 6 (2017) 3726–3734.
- A.A. Al-Beladi, S.A. Kosaa, R.A. Wahab, M.A. Salam, Removal
of Orange G dye from water using halloysite nanoclaysupported
ZnO nanoparticles, Desal. Water Treat., 196 (2020)
287–298.
- M.A.B. Samad, M.A. Hossain, T.S.A. Islam, W. Farha, Photodegradation
of Orange G as an environmental pollutant with
TiO2-ZnO composite material, Fine Chem. Eng., 3 (2021) 29–38.