Sol-Jel Yöntemiyle Sentezlenen CeO2:0.1Er0.1Y Bileşiğinin Farklı Boyalar İle Fotokatalitik Aktivitelerinin İncelenmesi
Year 2023,
Volume: 6 Issue: 3, 2076 - 2085, 04.12.2023
Handan Özlü Torun
,
Soner Cakar
,
Rabia Kırkgeçit
,
Fatma Kılıç Dokan
Abstract
Bu çalışmada, güneş enerjisi yardımıyla CeO2 temelli fotokatalizör bileşiğinin farklı boyar madde üzerinde etkisi araştırıldı. Çalışmada endüstride sıkça kullanılan ve toksik etkiye sahip metilen mavisi ve malahit yeşilinin CeO2:0.1Er0.1Y bileşiği kullanılarak fotokatalitik bozunma davranışı incelendi. Fotokatalizör, sol-jel yöntemi kullanılarak Er ve Y elementlerinin CeO2 kristal yapısına birlikte katkılaması ile sentezlendi. Sentez sonrası kristal yapı tayininde x-ışını toz difraktometresi kullanıldı. Sentezlenen örnekler kübik kristal yapısına sahiptir. Fotokatalizör etkinliklerinin araştırılmasında süreye bağlı olarak boya giderimi UV-Vis spektrofotometre ile izlendi. Boya giderim mekanizmasının detaylı incelenmesi amacıyla FT-IR analizinden yararlanılmıştır. Sonuç olarak, CeO2:0.1Er0.1Y bileşiğinin optik bant enerji düzeyi 2.92 eV hesaplandı. Sentezlenen CeO2 tabanlı bileşiğin fotokatalitik verim sırasıyla malahit yeşili ve metilen mavisi için % 48 ve %37 olarak belirlendi.
References
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- Aseena, S., Abraham, N., & Babu, V. S. (2021). Morphological and optical studies of zinc doped cerium oxide nanoparticles prepared by single step co-precipitation method. Materials Today: Proceedings.
- Jack Clifton, I. I., & Leikin, J. B. (2003). Methylene blue. American journal of therapeutics, 10(4), 289-291.
- Fauzi, A. A., Jalil, A. A., Hassan, N. S., Aziz, F. F. A., Azami, M. S., Hussain, I., ... & Vo, D. V. (2022). A critical review on relationship of CeO2-based photocatalyst towards mechanistic degradation of organic pollutant. Chemosphere, 286, 131651.
- Koe, W. S., Lee, J. W., Chong, W. C., Pang, Y. L., & Sim, L. C. (2020). An overview of photocatalytic degradation: photocatalysts, mechanisms, and development of photocatalytic membrane. Environmental Science and Pollution Research, 27(3), 2522-2565.
- Kerli, S., Kavgacı, M., Soğuksu, A. K., & Avar, B. (2022). Photocatalytic Degradation of Methylene Blue, Rhodamine-B, and Malachite Green by Ag@ ZnO/TiO2. Brazilian Journal of Physics, 52(1), 1-11
- Liyanage, A. D., Perera, S. D., Tan, K., Chabal, Y., & Balkus Jr, K. J. (2014). Synthesis, characterization, and photocatalytic activity of Y-doped CeO2 nanorods. Acs Catalysis, 4(2), 577-584.
- Ma, R., Zhang, S., Wen, T., Gu, P., Li, L., Zhao, G., ... & Wang, X. (2019). A critical review on visible-light-response CeO2-based photocatalysts with enhanced photooxidation of organic pollutants. Catalysis today, 335, 20-30.
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- Miao, H., Huang, G. F., Liu, J. H., Zhou, B. X., Pan, A., Huang, W. Q., & Huang, G. F. (2016). Origin of enhanced photocatalytic activity of F-doped CeO2 nanocubes. Applied Surface Science, 370, 427-432.
- Rafatullah, M., Sulaiman, O., Hashim, R., & Ahmad, A. (2010). Adsorption of methylene blue on low-cost adsorbents: a review. Journal of hazardous materials, 177(1-3), 70-80.
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- Xu, B., Yang, H., Zhang, Q., Yuan, S., Xie, A., Zhang, M., & Ohno, T. (2020). Design and Synthesis of Sm, Y, La and Nd‐doped CeO2 with a broom‐like hierarchical structure: a photocatalyst with enhanced oxidation performance. ChemCatChem, 12(9), 2638-2646
Investigation of Photocatalytic Activities of CeO2:0.1Er0.1Y Compound Synthesized by Sol-Gel Method with Different Dyes
Year 2023,
Volume: 6 Issue: 3, 2076 - 2085, 04.12.2023
Handan Özlü Torun
,
Soner Cakar
,
Rabia Kırkgeçit
,
Fatma Kılıç Dokan
Abstract
In this study, the effect of CeO2-based photocatalyst compound on different dye was investigated with the solar energy. In the study, the photocatalytic degradation behavior of methylene blue and malahit green, which are frequently used in industry and have toxic effects, was investigated by using CeO2:0.1Er0.1Y compound. Photocatalyst was synthesized by doping Er and Y elements together to CeO2 crystal structure using sol-gel method. X-ray powder diffractometry was used to determine the crystal structure after synthesis. The synthesized samples have a cubic crystal structure. In the investigation of photocatalyst activities, dye removal was analysed with UV-Vis spectrophotometer. FT-IR analysis was used to examine the dye removal mechanism in detail. As a result, the optical band energy level of CeO2:0.1Er0.1Y was calculated as 2.92 eV. The photocatalytic efficiency of the synthesized CeO2-based compaund was determined as 48% and 37% for malehide green and methylene blue, respectively.
References
- Akpan, U. G., & Hameed, B. H. (2009). Parameters affecting the photocatalytic degradation of dyes using TiO2-based photocatalysts: a review. Journal of hazardous materials, 170(2-3), 520-529
- Aseena, S., Abraham, N., & Babu, V. S. (2021). Morphological and optical studies of zinc doped cerium oxide nanoparticles prepared by single step co-precipitation method. Materials Today: Proceedings.
- Jack Clifton, I. I., & Leikin, J. B. (2003). Methylene blue. American journal of therapeutics, 10(4), 289-291.
- Fauzi, A. A., Jalil, A. A., Hassan, N. S., Aziz, F. F. A., Azami, M. S., Hussain, I., ... & Vo, D. V. (2022). A critical review on relationship of CeO2-based photocatalyst towards mechanistic degradation of organic pollutant. Chemosphere, 286, 131651.
- Koe, W. S., Lee, J. W., Chong, W. C., Pang, Y. L., & Sim, L. C. (2020). An overview of photocatalytic degradation: photocatalysts, mechanisms, and development of photocatalytic membrane. Environmental Science and Pollution Research, 27(3), 2522-2565.
- Kerli, S., Kavgacı, M., Soğuksu, A. K., & Avar, B. (2022). Photocatalytic Degradation of Methylene Blue, Rhodamine-B, and Malachite Green by Ag@ ZnO/TiO2. Brazilian Journal of Physics, 52(1), 1-11
- Liyanage, A. D., Perera, S. D., Tan, K., Chabal, Y., & Balkus Jr, K. J. (2014). Synthesis, characterization, and photocatalytic activity of Y-doped CeO2 nanorods. Acs Catalysis, 4(2), 577-584.
- Ma, R., Zhang, S., Wen, T., Gu, P., Li, L., Zhao, G., ... & Wang, X. (2019). A critical review on visible-light-response CeO2-based photocatalysts with enhanced photooxidation of organic pollutants. Catalysis today, 335, 20-30.
- Mittal, A. (2006). Adsorption kinetics of removal of a toxic dye, Malachite Green, from wastewater by using hen feathers. Journal of hazardous materials, 133(1-3), 196-202.
- Magdalane, C. M., Kaviyarasu, K., Vijaya, J. J., Siddhardha, B., & Jeyaraj, B. (2017). Facile synthesis of heterostructured cerium oxide/yttrium oxide nanocomposite in UV light induced photocatalytic degradation and catalytic reduction: synergistic effect of antimicrobial studies. Journal of Photochemistry and Photobiology B: Biology, 173, 23-34.
- Miao, H., Huang, G. F., Liu, J. H., Zhou, B. X., Pan, A., Huang, W. Q., & Huang, G. F. (2016). Origin of enhanced photocatalytic activity of F-doped CeO2 nanocubes. Applied Surface Science, 370, 427-432.
- Rafatullah, M., Sulaiman, O., Hashim, R., & Ahmad, A. (2010). Adsorption of methylene blue on low-cost adsorbents: a review. Journal of hazardous materials, 177(1-3), 70-80.
- Veziroglu, S., Kuru, M., Ghori, M. Z., Dokan, F. K., Hinz, A. M., Strunskus, T., ... & Aktas, O. C. (2017). Ultra-fast degradation of methylene blue by Au/ZnO-CeO2 nano-hybrid catalyst. Materials Letters, 209, 486-491.
- Xu, B., Yang, H., Zhang, Q., Yuan, S., Xie, A., Zhang, M., & Ohno, T. (2020). Design and Synthesis of Sm, Y, La and Nd‐doped CeO2 with a broom‐like hierarchical structure: a photocatalyst with enhanced oxidation performance. ChemCatChem, 12(9), 2638-2646