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The development of studies on layered double hydroxide (LDH) material as a photocatalyst for the degradation of dye pollutants continues to increase. LDH is an anionic clay, which is a natural or synthetic mixed metal hydroxide. Pristine LDH is written as M2+/M3+ LDH, (M is metal ion). This study prepared pristine Mg/Al LDH and Zn/Al LDH composited with metal oxide TiO2 and ZnO, respectively. Composite is denoted by M2+/M3+ -metal oxide. The coprecipitation method used was accompanied by calcination of the composite at a temperature 300 °C that was not high. The prepared composites were morphologically characterized by SEM. The materials that had been used until the fifth cycle of regeneration were characterized by XRD and FTIR which still indicated the presence of LDH-metal oxide composite structure. The materials degraded cationic dyes namely rhodamine-B (RhB) and methylene blue (MB). RhB degraded better than MB by pristine LDH and composites. The percent degradation of RhB for pristine Mg/Al LDH, composites Mg/Al-TiO2 and Mg/Al-ZnO were 53.1%, 59.8%, 62.8%, respectively. The percent RhB degradation for pristine Zn/Al LDH, composites Zn/Al-TiO2 and Zn/Al-ZnO were 51.4%, 58.5%, 58.9%, respectively. The percentage of degradation indicates that the LDH-metal oxide composite has succeeded in increasing the photodegradation catalytic ability and the regeneration ability of LDH pristine.
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Tom
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125--135
Opis fizyczny
Bibliogr. 31 poz., rys.
Twórcy
autor
- Department of Chemistry, Faculty of Mathematics and Natural Sciences, Universitas Sriwijaya, Jl. Palembang Prabumulih Km. 32 Ogan Ilir 30662, Indonesia
autor
- Research Center of Inorganic Materials and Coordination Complexes, Faculty of Mathematics and Natural Sciences, Universitas Sriwijaya, Jl. Palembang Prabumulih Km. 32 Ogan Ilir 30662, Indonesia
autor
- Research Center of Inorganic Materials and Coordination Complexes, Faculty of Mathematics and Natural Sciences, Universitas Sriwijaya, Jl. Palembang Prabumulih Km. 32 Ogan Ilir 30662, Indonesia
autor
- Research Center of Inorganic Materials and Coordination Complexes, Faculty of Mathematics and Natural Sciences, Universitas Sriwijaya, Jl. Palembang Prabumulih Km. 32 Ogan Ilir 30662, Indonesia
- Magister Programme Graduate School of Mathematics and Natural Sciences, Sriwijaya University, Jl. Padang Selasa No. 524 Ilir Barat 1, Palembang-South Sumatra, Indonesia
autor
- Department of Chemistry, Faculty of Mathematics and Natural Sciences, Universitas Sriwijaya, Jl. Palembang Prabumulih Km. 32 Ogan Ilir 30662, Indonesia
autor
- Research Center of Inorganic Materials and Coordination Complexes, Faculty of Mathematics and Natural Sciences, Universitas Sriwijaya, Jl. Palembang Prabumulih Km. 32 Ogan Ilir 30662, Indonesia
- Doctoral Program, Faculty of Mathematics and Natural Sciences, Universitas Sriwijaya, Jl. Padang Selasa No. 524 Ilir Barat 1, Palembang 30139, Indonesia
Bibliografia
- 1. Abderrazek, K., Najoua, F.S., Srasra, E. 2016. Synthesis and characterization of [Zn-Al] LDH: Study of the effect of calcination on the photocatalytic activity. Applied Clay Science, 119, 229–235.
- 2. Ai, Z., Liu, C., Zhang, Q., Qu, J., Li, Z., He, X. 2018. Adding ZnO and SiO2 to scatter the agglomeration of mechanochemically prepared Zn-Al. LDH precursor and promote its adsorption toward methyl orange. Journal of Alloys and Compounds, 763, 342–348.
- 3. An, X., Gao, C., Liao, J., Wu, X., Xie, X. 2015. Synthesis of mesoporous N-doped TiO2 /ZnAl-layered double oxides nanocomposite for efficient photodegradation of methyl orange. Materials Science in Semiconductor Processing, 34, 162–169.
- 4. Aoudjit, F., Cherifi, O., Halliche, D. 2018. Simultaneously efficient adsorption and photocatalytic egradation of sodium dodecyl sulfate surfactant by one-pot synthesized TiO2/layered double hydroxide materials. Separation Science and Technology (Philadelphia), 54(7), 1095–1105.
- 5. Bhuvaneswari, K., Palanisamy, G., Pazhanivel, T., Maiyalagan, T., Bharathi, G. 2019. Photodegradation Activity of Nitrogen-rich Graphitic Carbon Nitride Intercalated ZnO\Mg-Al Layered Double Hydroxide Ternary Nanocomposites on Methylene Blue Dye. ChemistrySelect, 4(11), 2982–2990.
- 6. Contreras-Ruiz, J.C., Martínez-Gallegos, M.S., Ordoñez-Regil, E. 2016. Surface fractal dimension of composites TiO2-hydrotalcite. Materials Characterization, 121, 17–22.
- 7. Contreras-Ruiz, J.C., Martínez-Gallegos, S., García-Rivas, J.L., Illescas, J., González-Juárez, J.C., Miranda, G.M., Regil, E.O. 2019. Influence of the textural parameters of LDH-TiO2 composites on phenol adsorption and photodegradation capacities. International Journal of Photoenergy, 1-11.
- 8. Djeda, R., Mailhot, G., Prevot, V. 2020. Porous layered double hydroxide/TiO2 photocatalysts for the photocatalytic degradation of orange II. ChemEngineering, 4(2), 1–15.
- 9. Elhalil, A., Abdennouri, M., Sadiq, M., Kadmi, Y., Favier, L., Barka, M. 2018. Synthesis of Ba doped ZnO-Al2O3 nanocomposite from layered double hydroxide structure and their photocatalytic activity for the degradation of caffeine. Journal of Applied Surfaces and Interfaces, 4(1-3), 9-16.
- 10. Hadnadjev-Kostic, M., Vulic, T., Marinkovic-Neducin, R., Lončarević, D., Dostanić, J., Markov, S., Jovanović, D. 2017. Photo-induced properties of photocatalysts: A study on the modified structural, optical and textural properties of TiO2–ZnAl layered double hydroxide based materials. Journal of Cleaner Production, 164, 1–18.
- 11. Hosseini, S.A., Akbari, M. 2016. ZnO/Mg-Al layered double hydroxides as a photocatalytic bleaching of methylene orange - A black box modeling by artificial neural network. Bulletin of Chemical Reaction Engineering & amp; Amp; Catalysis, 11(3), 299–315.
- 12. Jaerger, S., Nogueira, D.A. de R., Oliveira, D.S. de, Machado, M.V., Marangoni, R. 2021. Low-Density Polyethylene Nanocomposite Containing Zn/Ti Layered Double Hydroxide. Journal of Research Updates in Polymer Science, 10, 34–41.
- 13. Jo, W.K., Kim, Y.G., Tonda, S. 2018. Hierarchical flower-like NiAl-layered double hydroxide microspheres encapsulated with black Cu-doped TiO2 nanoparticles: Highly efficient visible-light-driven composite photocatalysts for environmental remediation. Journal of Hazardous Materials, 357, 19–29.
- 14. Khairnar, S.D., Shirsath, D.S., Patil, P.S., Shrivastava, V.S. 2020. Adsorptive and photocatalytic removal of carcinogenic methylene blue dye by SnO2 nanorods: an equilibrium, kinetic and thermodynamics exploration. SN Applied Sciences, 2(5), 1–12.
- 15. Khan, I., Saeed, K., Zekker, I., Zhang, B., Hendi, A. H., Ahmad, A., Ahmad, S., Zada, N., Ahmad, H., Shah, L. A., Shah, T., Khan, I. 2022. Review on Methylene Blue: Its Properties, Uses, Toxicity and Photodegradation. Water, 14(2), 242(1-30).
- 16. Lesbani, A., Siregar, P.M.S.B.N., Palapa, N.R., Taher, T., Riyanti, F. 2021. Adsorptive removal methylene-blue using Zn/Al LDH modified rice husk biochar. Polish Journal of Environmental Studies, 30(4), 3117–3124.
- 17. Li, D., Fan, L., Qi, M., Shen, Y., Liu, D., Li, S. 2018. Enhanced visible-light-driven photocatalytic activity of ZnAl layered double hydroxide by incorporation of Co2 +. Bulletin of Chemical Reaction Engineering & amp; Amp; Catalysis, 13(3), 502–511.
- 18. Muhammad, A.S., Garzali, F.A. 2019. Photodegradation of Rhodamine B using Cd-Al/C double layered hydroxide catalyst. Bayero Journal of Pure and Applied Sciences, 12(1), 24–30.
- 19. Nandiyanto, A.B.D., Oktiani, R., Ragadhita, R. 2019. How to read and interpret ftir spectroscope of organic material. Indonesian Journal of Science and Technology, 4(1), 97–118.
- 20. Ni, J., Xue, J., Shen, J., He, G., Chen, H. 2018. Fabrication of ZnAl mixed metal-oxides/RGO nanohybrid composites with enhanced photocatalytic activity under visible light. Applied Surface Science, 441, 599–606.
- 21. Rahmadan, J., Parhusip, V., Palapa, N.R., Taher, T., Mohadi, R., Lesbani, A. 2021. ZnAl-Humic Acid Composite as Adsorbent of Cadmium(II) From Aqueous Solution. Science and Technology Indonesia, 6(4), 247–255.
- 22. Singh, R., Ahlawat, O.P., Rajor, A. 2017. Decolourization of Textile Dyes by Ligninolytic Fungi Isolated from Spent Mushroom Substrate. Bulletin of Environment, Pharmacology and Life Sciences, 6(April), 53–66.
- 23. Sintakindi, A., Ankamwar, B. 2020. Uptake of Methylene Blue from Aqueous Solution by Naturally Grown Daedalea africana and Phellinus adamantinus Fungi. ACS Omega, 5(22), 12905–12914.
- 24. Song, B., Zeng, Z., Zeng, G., Gong, J., Xiao, R., Ye, S., Chen, M., Lai, C., Xu, P., Tang, X. 2019. Powerful combination of g-C3N4 and LDHs for enhanced photocatalytic performance: A review of strategy, synthesis, and applications. Advances in Colloid and Interface Science, 272, 1–17.
- 25. Teng, X., Li, J., Wang, Z., Wei, Z., Chen, C., Du, K., Zhao, C., Yang, G., Li, Y. 2020. Performance and mechanism of methylene blue degradation by an electrochemical process. RSC Advances, 10(41), 24712–24720.
- 26. Wu, J., Gong, Y., Fu, Q., Pan, C. 2019. NiFe-LDHZnO-NF composite for photo- degradation of Rhodamine B dye. MRS Advances, 357(May), 1–8.
- 27. Yan, R.Q., Liu, G.H., Wang, Q.F., Liu, W., Song, C.L. 2016. Fast Photodegradation of Malachite Green using Nano-ZnO on Ceramic MgAl Carbonate Layered Double Hydroxides Support. Chinese Journal of Chemical Physics, 29(2), 241–244.
- 28. Zhang, L., Xiong, Z., Li, L., Burt, R., Zhao, X.S. 2016. Uptake and degradation of Orange II by zinc aluminum layered double oxides. Journal of Colloid and Interface Science, 469, 224–230.
- 29. Zhao, G., Zou, J., Li, C., Yu, J., Jiang, X., Zheng, Y., Hu, W., Jiao, F. 2018. Enhanced photocatalytic degradation of rhodamine B, methylene blue and 4-nitrophenol under visible light irradiation using TiO2/MgZnAl layered double hydroxide. Journal of Materials Science: Materials in Electronics, 29(8), 7002–7014.
- 30. Zhou, J., Huang, Y., Xu, J., Chen, L., Yin, Q., Mao, Y., Lin, K., Zhou, Y., Hua, X., Wang, S. 2019. Rhodamine B Purity Certified Reference Material. IOP Conference Series: Earth and Environmental Science, 300(2).
- 31. Zhu, J., Zhu, Z., Zhang, H., Lu, H., Qiu, Y., Zhu, L., Küppers, S. 2016. Enhanced photocatalytic activity of Ce-doped Zn-Al multi-metal oxide composites derived from layered double hydroxide precursors. Journal of Colloid and Interface Science, 481, 144–157.
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Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-aca8554c-4d7a-4b39-bd31-0f77d6301c2b