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Enhancement Photocatalytic Activity of Mn Doped Cds/Zno Nanocomposites for the Degradation of Methylene Blue Under Solar Light Irradiation Cover

Enhancement Photocatalytic Activity of Mn Doped Cds/Zno Nanocomposites for the Degradation of Methylene Blue Under Solar Light Irradiation

Open Access
|Jul 2022

References

  1. 1. Kazemi, H., Hakki, P., Shekari, A. Najafidoust, et al., Influence of Calcination Temperature and Operational Parameters on Fe-ZSM-5 Catalyst performance in Sonocatalytic Degradation of Phenol from wastewater, Journal of Water Environmental Nanotechnology, 6 (2), 150–163 (2021) 10.22090/JWENT.2021.02.005
  2. 2. Vallejo, W., Cantillo, A., Salazar, et al., Comparative Study of ZnO Thin Films Doped with Transition Metals (Cu and Co) for Methylene Blue Photodegradation under Visible Irradiation, Catalysts, 10, 528, 1-13(2020). https://doi.org/10.3390/catal1005052
  3. 3. Shen, Y.; Zhu, K.E.; He, D.et al., Tetracycline removal via adsorption and metal-free catalysis with 3D macroscopic N-doped porous carbon nanosheets: Nonradical mechanism and degradation pathway. J. Environ. Sci. (2022) 111, 351–366. https://doi.org/10.1016/j.jes.2021.04.01434949364
  4. 4. Prajapati, A.K.; Mondal, M.K. Development of CTAB modified ternary phase α-Fe2O3-Mn2O3-Mn3O4 nanocomposite as innovative super-adsorbent for Congo red dye adsorption, J. Environ. Chem. Eng. (2021) 9, 104827. DOI:10.1016/j.jece.2020.104827
  5. 5. Nas, M.S. et al., Synthesis, characterization, kinetics and adsorption properties of Pt-Co@GO nanoadsorbent for methylene blue removal in the aquatic mediums using ultrasonic process systems. J. Mol. Liq.. (2019), 296, 112100. https://doi.org/10.1016/j.molliq.2019.112100
  6. 6. Medhat, A.; et al., Efficiently activated carbons from corn cob for methylene blue adsorption. Appl. Surf. Sci. Adv. (2021), 3, 10003710.1016/j.apsadv.2020.100037
  7. 7. Zhao, R.; et al., Highly flexible magnesium silicate nanofibrous membranes for effective removal of methylene blue from aqueous solution. Chem. Eng. J. (2019) 359, 1603–1616. https://doi.org/10.1016/j.cej.2018.11.011
  8. 8. Liu, C.; et al., Synergetic degradation of methylene blue through photocatalysis and fenton reaction on two-dimensional molybdenite-fe. J. Environ. Sci. (2022) 111, 11–23 https://doi.org/10.1016/j.jes.2021.03.00134949341
  9. 9. Nada, A.A.; et al., Mesoporous ZnFe2O4@TiO2 nanofibers prepared by electrospinning coupled to PECVD as highly performing photocatalytic materials. J. Phys. Chem. C. (2017) 121 (44), 24669–24677. https://doi.org/10.1021/acs.jpcc.7b08567
  10. 10. Tantawy, H.R.; et al., Novel synthesis of bimetallic Ag–Cu nanocatalysts for rapid oxidative and reductive degradation of anionic and cationic dyes. Appl. Surf. Sci. Adv. (2021) 3, 100056. https://doi.org/10.1016/j.apsadv.2021.100056
  11. 11. El-Maghrabi, H.H.; Ali, H.R.; Younis, S.A. Construction of a new ternary α-MoO3–WO3/CdS solar nanophotocatalyst towards clean water and hydrogen production from artificial wastewater using optimal design methodology. RSC Adv. (2017) 7 (8), 4409–442. https://doi.org/10.1039/C6RA25146C
  12. 12. Samsami, S.; Mohamadi, M.; Sarrafzadeh, M.H.; et al., Recent advances in the treatment of dye-containing wastewater from textile industries: overview and perspectives. Proc. Saf. Environ. Prot. (2020) 143, 138–163. https://doi.org/10.1016/j.psep.2020.05.034
  13. 13. Balcha, A.; Yadav, O.P.; Dey, T. Photocatalytic degradation of methylene blue dye by zinc oxide nanoparticles obtained from precipitation and sol-gel methods. Environ. Sci. Pollut. Res. (2016) 23, 25485–2549310.1007/s11356-016-7750-627704379
  14. 14. Chen, X.; Wu, Z.; Liu, D.; et al., Preparation of ZnO photocatalyst for the efficient and rapid photocatalytic degradation of azo dyes. Nanoscale Res. Lett. (2017) 12 (143), 1–1010.1186/s11671-017-1904-4531993828235375
  15. 15. Fujishima, A.; Xintong, Z.; Tryk, D.A. TiO2 photocatalysis and related surface phenomena, Surf. Sci. Rep. (2008) 63 (12), 515–582. https://doi.org/10.1016/j.surfrep.2008.10.001
  16. 16. Su, B.; Zhong, M.; Han, L.; et al., Eco-friendly preparation of hierarchically selfassembly porous ZnO nanosheets for enhanced photocatalytic performance, Mater. Res. Bull. (2020) 124 110777–110781. https://doi.org/10.1016/j.materresbull.2020.110777
  17. 17. Serr‘a, A.; Pip, P.; Gomez, E.; et al., Efficient magnetic hybrid ZnO-based photocatalysts for visible-light-driven removal of toxic cyanobacteria blooms and cyanotoxins, Appl. Catal. B (2020) 268 118745. https://doi.org/10.1016/j.apcatb.2020.118745
  18. 18. Qiu, J.; Li, M.; Wan, Y. et al., One-pot fabrication of CdxZn1-xS/ZnO nanohybrid using mixed sulfur sources for photocatalysis, Mater. Res. Bull. (2020) 125 110776–110782. https://doi.org/10.1016/j.materresbull.2020.110776
  19. 19. Wang, L.; Muhammed, M. Synthesis of zinc oxide nanoparticles with controlled morphology. J. Mater. Chem. 1999, 9, 2871–2878
  20. 20. Bahnemann, D.W.; Kormann, C.; Hoffmann, M.R. Preparation and characterization of quantum size zinc oxide: A detailed spectroscopic study. J. Phys. Chem. 1987, 91, 3789–3798
  21. 21. Zhang, J.; Sun, L.D. Control of ZnO morphology via a simple solution route. Chem. Mater. 2002, 14, 4172–4177
  22. 22. Chen, W.; Caia, W.; Zhangb, L.; Wanga, G.; Zhanga, L. Sonochemical processes and formation of gold nanoparticles within pores of mesoporous silica. J. Colloid Interface Sci. 2001, 238, 291–295
  23. 23. Wojnarowicz, J.; Chudoba, T.; Lojkowski, W. A review of microwave synthesis of zinc oxide nanomaterials: Reactants, process parameters and morphologies. Nanomaterials 2020, 10, 108610.3390/nano10061086735322532486522
  24. 24. Ali, N. M., Kareem, A. A. Ionic conductivity enhancement for PVA/20wt.% CuSO4 gel polymer electrolyte by using glycerin Chalcogenide Lett. 19, 3, 2022, 217 – 22510.15251/CL.2022.193.217
  25. 25. Kareem, A. A., Rasheed, H. K., Nasir, E. M. Influence methods of preparation on the thermal stability of polyimide/silica dust. Polym. Bull. 2021 1-1010.1007/s00289-021-03830-7
  26. 26. Aseel A Kareem, Enhanced thermal and electrical properties of epoxy/carbon fiber–silicon carbide composites Adv. Compos. Lett. 29: 1–6 202010.1177/2633366X19894598
  27. 27. Li, Y.-Q.; Fu, S.-Y.; Mai, Y.-W. Preparation and characterization of transparent ZnO/epoxy nanocomposites with high-UV shielding efficiency. Polymer (2006) 47 (6), 2127–2132. https://doi.org/10.1016/j.polymer.2006.01.071
  28. 28. Thi, V.H.T.; Lee, B.-K. Great improvement on tetracycline removal using ZnO rod-activated carbon fiber composite prepared with a facile microwave method. J. Hard Mater. (2017) 324, 329–339. https://doi.org/10.1016/j.jhazmat.2016.10.06627810327
  29. 29. Akhundi, A.; Habibi-Yangjeh, A. Ternary magnetic g-C3N4/Fe3O4/AgI nanocomposites: novel recyclable photocatalysts with enhanced activity in degradation of different pollutants under visible light. Mater. Chem. Phys. (2016) 174, 59–69. https://doi.org/10.1016/j.matchemphys.2016.02.052
  30. 30. Zirak, M.; Moradlou, O.; Bayati, M. et al., On the growth and photocatalytic activity of the vertically aligned ZnO nanorods grafted by CdS shells, Appl. Surf. Sci. (2013) 273 391-398. https://doi.org/10.1016/j.apsusc.2013.02.050
  31. 31. Khanchandani, S.; Kundu, S.; Patra, A. et al., Shell Thickness Dependent Photocatalytic Properties of ZnO/CdS Core–Shell Nanorods, J. of Phys. Chem. C. (2012) 116, 23653-23662. https://doi.org/10.1021/jp3083419
  32. 32. Gao, P.; Liu, J.; Zhang, T. et al., Hierarchical TiO2/CdS “spindle-like” composite with high photodegradation and antibacterial capability under visible light irradiation, J. Hazard. Mater. (2012) 229–230, 209-216. DOI : 10.1016/j.jhazmat.2012.05.09922717065
  33. 33. Zirak, M.; Akhavan, O.; Moradlou, O. Vertically aligned ZnO@ CdS nanorod heterostructures for visible light photoinactivation of bacteria, J. Alloys Compd. (2014) 590, 507-513. https://doi.org/10.1016/j.jallcom.2013.12.158
  34. 34. Jana, T.; Pal, A.; Chatterjee, K. Self assembled flower like CdS–ZnO nanocomposite and its photo catalytic activity, J. Alloys Compd. (2014) 583, 510-515. https://doi.org/10.1016/j.jallcom.2013.08.184
  35. 35. Yeb, W.; Jianga, Y.; Liua, Q. et al., The preparation of visible light-driven ZnO/Ag2MoO4/Ag nanocomposites with effective photocatalytic and antibacterial activity, J. Alloys Compd. (2021) 891, 161898. https://doi.org/10.1016/j.jallcom.2021.161898
  36. 36. Kumaria, V.; Yadava, S.; Mittala, A. et al., Surface Plasmon response of Pd deposited ZnO/CuO nanostructures with enhanced photocatalytic efficacy towards the degradation of organic pollutants, Inorg. Chem. Commun. (2020) 121, 108241. https://doi.org/10.1016/j.inoche.2020.108241
  37. 37. Zhang, P.; Su, Q.; Han, L. et al., Facile fabrication of magnetic Ag/ZnO/Fe3O4 composite and the photocatalytic performance under simulated sunlight irradiation, Molecular Catal. (2021) 508 111606. https://doi.org/10.1016/j.mcat.2021.111606
  38. 38. Barman, J.; Das, A.; Banik, B. et al., Optimizing ZnO/CdS Nano Composite Controlled by Fe Doping Towards Efficiency in Water Treatment and Antimicrobial Activity, Curr. World Environ. (2021) 16(3). http://dx.doi.org/10.12944/CWE.16.3.610.12944/CWE.16.3.6
  39. 39. Nekooie, R.; Shamspur, T.; Mostafavi, A. Novel CuO/TiO2/PANI nanocomposite: Preparation and photocatalytic investigation for chlorpyrifos degradation in water under visible light irradiation, J. Photochem. Photobiol. A (2020)11303. https://doi.org/10.1016/j.jphotochem.2020.113038
  40. 40. Shafi, A.; Ahmad, N.; Sultana, S.; Sabir, S.; and Khan, M. Z. Ag2S-Sensitized NiO−ZnO Heterostructures with Enhanced Visible Light Photocatalytic Activity and Acetone Sensing Property, ACS Omega. (2019) 4, 12905−12918 https://doi.org/10.1021/acsomega.9b01261668203731460417
  41. 41. Mohsin J Muhammad A Q. Sammia S. Hashem O. Alsaabb and Salma A. Highly efficient visible light active Cu–ZnO/S-gC3N4 nanocomposites for efficient photocatalytic degradation of organic pollutants, RSC Adv., 2021, 11, 37254–3726710.1039/D1RA07203J
  42. 42. Tian, J. Liu, Q. Ge, C. Xing, Z. Asiri, A. M. Al-Youbi, A. O.; Sun, X., Ultrathin Graphitic Carbon Nitride Nanosheets: A Low-Cost, Green, and Highly Efficient Electrocatalyst Toward the Reduction of Hydrogen Peroxide and its Glucose Biosensing Application. Nanoscale 2013;5: 8921.10.1039/c3nr02031b23934305
  43. 43. Wang, W.; Zhang, D.; Ji, Z. et al., High efficiency photocatalytic degradation of indoor formaldehyde with silver-doped ZnO/g-C3N4 composite catalyst under the synergistic effect of silver plasma effect and heterojunction, Optic Mater. (2021) 111, 110721. https://doi.org/10.1016/j.optmat.2020.110721
  44. 44. Pranesh Shubha, J.; Adil, S. F.; Khan, M. et al., Facile Fabrication of a ZnO/Eu2O3/NiO-Based Ternary Heterostructure Nanophotocatalyst and Its Application for the Degradation of Methylene Blue, ACS Omega. (2021) 6, 3866−3874. https://doi.org/10.1021/acsomega.0c05670787686533585765
  45. 45. Toledo Camacho, S.Y.; Rey, A.; Hernández-Alonso, M.D. et al., Pd/TiO2-WO3 photocatalysts for hydrogen generation from water-methanol mixtures, Appl. Surf. Sci. (2018) 455, 570–58010.1016/j.apsusc.2018.05.122
  46. 46. Kumari, V.; Kumar, N.; Yadav, S. et al., Novel mixed metal oxide (ZnO.La2O3.CeO2) synthesized via hydrothermal and solution combustion process – a comparative study and their photocatalytic properties, Mater. Today: Proc. (2019) 19, 650–657. https://doi.org/10.1016/j.matpr.2019.07.748
  47. 47. Kumaria, V.; Yadava, S.; Mittala, A. Surface Plasmon response of Pd deposited ZnO/CuO nanostructures with enhanced photocatalytic efficacy towards the degradation of organic pollutants, Inorg. Chem. Commun. (2020) 121, 108241. https://doi.org/10.1016/j.inoche.2020.108241
  48. 48. Saravanakumar, K.; Karthik, R.; Chen, S.-M. et al., Construction of novel Pd/CeO2/g-C3N4 nanocomposites as efficient visible-light photocatalysts for hexavalent chromium detoxification, J. Colloid Interface Sci. (2017) 504, 514–526. DOI: 10.1016/j.jcis.2017.06.00328605715
  49. 49. Samsudin, M. F. R. et al. Exploring the role of electron-hole scavengers on optimizing the photocatalytic performance of BiVO4. Mater Today: Proc. (2018) 5(10, Part 2), 21703-9 DOI:10.1016/j.matpr.2018.07.022
  50. 50. Eskizeybek, V.; Sarı, F.; Gülce, H.; Gülce, A.; Avcı, A. Preparation of the new polyaniline/ZnO nanocomposite and its photocatalytic activity for degradation of methylene blue and malachite green dyes under UV and natural sun lights irradiations. Appl. Catal. B Environ. 2012, 119–120, 197–206. Compare10.1016/j.apcatb.2012.02.034
  51. 51. Muna A. Abu-Dalo, Saja A. Al-Rosan and Borhan A. Albiss Photocatalytic Degradation of Methylene Blue Using Polymeric Membranes Based on Cellulose Acetate Impregnated with ZnO Nanostructures Polymers 2021, 13, 345110.3390/polym13193451851255334641266
  52. 52. Biswal, H.J.; Yadav, A.; Vundavilli, P.R.; Gupta, A. High aspect ZnO nanorod growth over electrodeposited tubes for photocatalytic degradation of EtBr dye. RSC Adv. 2021, 11, 1623–1634.
  53. 53. Nadeem, M.S.; Munawar, T.; Mukhtar, F.; Rahman, M.N.U.; Riaz, M.; Iqbal, F. Enhancement in the photocatalytic and antimicrobial properties of ZnO nanoparticles by structural variations and energy bandgap tuning through Fe and Co co-doping. Ceram. Int. 2021, 47, 11109–11121.
  54. 54. Liu, W.; Cai, J.; Li, Z. Self-assembly of semiconductor nanoparticles/reduced graphene oxide (RGO) composite aerogels for enhanced photocatalytic performance and facile recycling in aqueous photocatalysis, ACS Sustain. Chem. Eng. (2015) 3, 277–282 https://doi.org/10.1021/sc5006473.
DOI: https://doi.org/10.2478/adms-2022-0006 | Journal eISSN: 2083-4799 | Journal ISSN: 1730-2439
Language: English
Page range: 28 - 48
Published on: Jul 12, 2022
In partnership with: Paradigm Publishing Services
Publication frequency: 4 issues per year

© 2022 Kaliyappan Sivaranjani, Santhanam Sivakumar, Jaganathan Dharmaraja, published by Gdansk University of Technology
This work is licensed under the Creative Commons Attribution-NonCommercial-NoDerivatives 3.0 License.