References

  1. K. Kumar, A. Chowdhury, Photocatalysts for the environmental sustainability of wastewater treatments, Mater. Sci. Eng., 1 (2020) 949–964.
  2. W.S. Koe, J.W. Lee, W.C. Chong, Y.L. Pang, L.C. Sim, An overview of photocatalytic degradation: photocatalysts, mechanisms, and development of photocatalytic membrane, Environ. Sci. Pollut. Res., 27 (2020) 2522–2565.
  3. X. Zhao, G. Zhang, Z. Zhang, TiO2-based catalysts for photocatalytic reduction of aqueous oxyanions:
    state-of-the-art and prospects, Environ. Int., 136 (2020) 1–17.
  4. M. Shaban, A.M. Ashraf, M.R. Abukhadra, TiO2 nanoribbons/carbon nanotubes composites with enhanced photocatalytic activity; fabrication, characterization, and application, Sci. Rep., 8 (2018) 781–798.
  5. M. Wongaree, S. Chiarakorn, S. Chuangchote, Photocatalytic improvement under visible light in TiO2 nanoparticles by carbon nanotube incorporation, J. Nanomater., (2015) 1–10.
  6. Y. Wang, C. Pan, W. Chu, A.K. Vipin, L. Sun, Environmental remediation applications of carbon nanotubes and graphene oxide: adsorption and catalysis, Nanomaterials, 9 (2019) 439–439.
  7. S. Dolatabadi, M. Fattahi, M. Nabati, Solid state dispersion and hydrothermal synthesis, characterization and evaluations of TiO2/ZnO nanostructures for degradation of rhodamine B, Desal. Water Treat., 231 (2021) 425–435.
  8. M. Wongaree, A. Bootwong, A performance study of CNT/TiO2/PVA loaded on the paper filter for benzene treatment from cigarette smoke, Mater. Sci. Forum., 990 (2020) 312–317.
  9. X. Tang, X. Yan, Dip-coating for fibrous materials: mechanism, methods, and applications, J. Sol-Gel Sci. Technol., 81 (2017) 378–404.
  10. M.D. Tyona, A theoretical study on spin coating technique, Adv. Mater. Sci. Eng., 2 (2013) 195–208.
  11. J.H. Kim, J.H. Lee, J.Y. Kim, S.S. Kim, Synthesis of aligned TiO2 nanofibers using electrospinning, Appl. Sci., 8 (2018) 309–319.
  12. A. Tayel, A.R. Ramadan, O.A.E. Seoud, Titanium dioxide/graphene and titanium dioxide/graphene oxide nanocomposites: synthesis, characterization, and photocatalytic applications for water decontamination, Catalysts, 8 (2018) 491–536.
  13. Y. Liu, X. Yuan, Y. Wang, Crystallization of nano-TiO2 films based on glass fiber fabric substrate and its impact on catalytic performance, Open Phys., 17 (2019) 345–351.
  14. P.J. Rivero, J.A. Garcia, I. Quintana, R. Rodriguez, Design of nanostructured functional coatings by using wet-chemistry methods, Coatings, 8 (2018) 76–111.
  15. H. Abral, A.M. Atmajaya, F.K. Hafizulhaq, D. Handayani, S.M. Sapuan, R.A. Ilyas, Effect of ultrasonication duration of polyvinyl alcohol (PVA) gel on characterizations of PVA film, J. Mater. Res. Technol., 9 (2020) 2477–2486.
  16. D.R. García, L.R. Rubio, L.P. Alvarez, S.L.H. Olmos, G.L.G. Ramírez, J.L.V. Vilela, Lignin-based hydrogels: synthesis and applications, Polymers, 12 (2020) 81–104.
  17. M.H. Abdellah, S.A. Nosier, A.H.E. Shazly, A.A. Mubarak, Photocatalytic decolourization of methylene blue using TiO2/UV system enhanced by air sparging, Alex. Eng. J., 57 (2018) 3727–3735.
  18. S. Ye, K. Ullah, L. Zhu, S.B. Jo, K.Y. Cho, W.C. Oh, Fabrication and performances of graphene/TiO2 composites derived from graphene and titanium(IV) alkoxide precursors, Asian J. Chem., 26 (2014) 1833–1838.
  19. S. Chandran, V. Ravichandran, S. Chandran, J. Chemmanda, B. Chandarshekar, Biosynthesis of PVA encapsulated silver nanoparticles, Appl. Res. Technol., 14 (2016) 319–324.
  20. S. Li, Z. Zhao, Y. Huang, J. Di, Y.A. Jia, H. Zheng, Hierarchically structured WO3-CNT@TiO2NS composite with the enhanced photocatalytic activity, J. Name., 3 (2013) 1–7.
  21. N.A. Betti, Thermogravimetric analysis on PVA/PVP blend under air atmosphere, Eng. Technol. J., 34 (2016) 2433–2441.
  22. L.A.A. Rodríguez, M. Pianassola, D.N. Travessa, Production of TiO2 coated multiwall carbon nanotubes by the sol-gel technique, Mater. Res., 20 (2017) 96–103.
  23. C. Yuan, C.H. Hung, C.H. Yuan, H.W. Li, Preparation and application of immobilized surfactant-modified
    PANi-CNT/TiO2 under visible-light irradiation, Materials, 10 (2017) 877–897.
  24. E. Galata, E.A. Georgakopoulou, M.E. Kassalia, N.P. Fermeli, E.A. Pavlatou, Development of smart composites based on doped-TiO2 nanoparticles with visible light anticancer properties, Materials, 12 (2019) 1–25.
  25. J. Sengupta, C. Jacob, The effect of Fe and Ni catalysts on the growth of multi-walled carbon nanotubes using chemical vapor deposition, J. Nanopart. Res., 12 (2010) 457–465.
  26. L. Fu, A.M. Yu, Carbon nanotubes based thin films: fabrication, characterization, and applications, Rev. Adv. Mater. Sci., 36 (2014) 40–61.
  27. C. Han, M.Q. Yang, B. Weng, Y.J. Xu, Improving the photocatalytic activity and anti-photo corrosion of semiconductor ZnO by coupling with versatile carbon, Chem. Phys., 16 (2014) 16891–16903.
  28. D.Y. Rahman, M. Rokhmat, E. Yuliza, E. Sustini, M. Abdullah, New design of potentially low-cost solar cells using TiO2/graphite composite as photon absorber, Int. J. Energy Environ. Eng., 7 (2016) 289–296.
  29. N.A.A. Qasem, R.B. Mansour, M.A. Habib, Enhancement of adsorption carbon capture capacity of 13X with optimal incorporation of carbon nanotubes, Int. J. Energy Environ. Eng., 8 (2017) 219–230.