Dependence of the magnetite (Fe3O4) and silica (SiO2) nanostructured heterojunction for the photodegradation of tartrazine yellow dye

Marccus Victor Almeida Martins, Nathália Sayuri Tateno, Paulo Vitor Ribeiro Brito, Jocélia Pereira de Carvalho Oliveira

Article ID: 11589
Vol 8, Issue 1, 2025


Abstract


This work investigated the photocatalytic properties of polymorphic nanostructures based on silica (SiO2) and magnetite (Fe3O4) for the photodegradation of tartrazine yellow dye. In this sense, a fast, easy, and cheap synthesis route was proposed that used sugarcane bagasse biomass as a precursor material for silica. The Fourier transform infrared (FTIR) spectroscopy results showed a decrease in organic content due to the chemical treatment with NaOH solution. This was confirmed through the changes promoted in the bonds of chromophores belonging to lignin, cellulose, and hemicellulose. This treated biomass was calcined at 800 ℃, and FTIR and X-ray diffraction (XRD) also confirmed the biomass ash profile. The FTIR spectrum showed the formation of silica through stretching of the chemical bonds of the silicate group (Si-O-Si), which was confirmed by DXR with the predominance of peaks associated with the quartz phase. Scanning electron microscopy (SEM) and energy dispersive X-ray spectroscopy (EDS) confirmed the morphological and chemical changes due to the chemical and thermal treatments applied to this biomass. Using the coprecipitation method, we synthesized Fe3O4 nanoparticles (Np) in the presence of SiO2, generating the material Fe3O4/SiO2-Np. The result was the formation of nanostructures with cubic, spherical, and octahedral geometries with a size of 200 nm. The SEM images showed that the few heterojunctions formed in the mixed material increased the photocatalytic efficiency of the photodegradation of tartrazine yellow dye by more than two times. The degradation percentage reached 45% in 120 min of reaction time. This mixed material can effectively decontaminate effluents composed of organic pollutants containing azo groups.


Keywords


decontamination; organic pollutants; photocatalyze; sugarcane; magnetite nanoparticles; coprecipitation

Full Text:

PDF


References


1. Fernandes J, Ramísio PJ, Puga H. A Comprehensive Review on Various Phases of Wastewater Technologies: Trends and Future Perspectives. Eng. 2024; 5(4): 2633-2661. doi: 10.3390/eng5040138

2. Saim AK, Adu PCO, Amankwah RK, et al. Review of catalytic activities of biosynthesized metallic nanoparticles in wastewater treatment. Environmental Technology Reviews. 2021; 10(1): 111-130. doi: 10.1080/21622515.2021.1893831

3. Saravanan A, Deivayanai VC, Kumar PS, et al. A detailed review on advanced oxidation process in treatment of wastewater: Mechanism, challenges and future outlook. Chemosphere. 2022; 308: 136524. doi: 10.1016/j.chemosphere.2022.136524

4. Saeed M, Muneer M, Haq A ul, et al. Photocatalysis: an effective tool for photodegradation of dyes—a review. Environmental Science and Pollution Research. 2021; 29(1): 293-311. doi: 10.1007/s11356-021-16389-7

5. Qumar U, Hassan JZ, Bhatti RA, et al. Photocatalysis vs adsorption by metal oxide nanoparticles. Journal of Materials Science & Technology. 2022; 131: 122-166. doi: 10.1016/j.jmst.2022.05.020

6. Ibrahim NS, Leaw WL, Mohamad D, et al. A critical review of metal-doped TiO2 and its structure–physical properties–photocatalytic activity relationship in hydrogen production. International Journal of Hydrogen Energy. 2020; 45(53): 28553-28565. doi: 10.1016/j.ijhydene.2020.07.233

7. Medhi R, Marquez MD, Lee TR. Visible-Light-Active Doped Metal Oxide Nanoparticles: Review of their Synthesis, Properties, and Applications. ACS Applied Nano Materials. 2020; 3(7): 6156-6185. doi: 10.1021/acsanm.0c01035

8. Cao Y, Yuan G, Guo Y, et al. Facile synthesis of TiO2/g-C3N4 nanosheet heterojunctions for efficient photocatalytic degradation of tartrazine under simulated sunlight. Applied Surface Science. 2022; 600: 154169. doi: 10.1016/j.apsusc.2022.154169

9. Balu S, Venkatesvaran H, Wang CC, et al. Synthesis of Sulfonic Acid-Functionalized g-C3N4/BiOI Bifunctional Heterojunction for Enhanced Photocatalytic Removal of Tartrazine and PEC Oxygen Evolution Reaction. Inorganics. 2024; 12(9): 243. doi: 10.3390/inorganics12090243

10. Ashiegbu DC, Potgieter HJ. ZnO-based heterojunction catalysts for the photocatalytic degradation of methyl orange dye. Heliyon. 2023; 9(10): e20674. doi: 10.1016/j.heliyon.2023.e20674

11. Shahzad K, Jamshaid M, Mustafa AEZMA, et al. Synergistic silver-titania nano-composites: Optimized hetero-junction for enhanced water decontamination. Desalination and Water Treatment. 2024; 320: 100696. doi: 10.1016/j.dwt.2024.100696

12. Thambiliyagodage C. Activity enhanced TiO2 nanomaterials for photodegradation of dyes—A review. Environmental Nanotechnology, Monitoring & Management. 2021; 16: 100592. doi: 10.1016/j.enmm.2021.100592

13. Liu S, Yu B, Wang S, et al. Preparation, surface functionalization and application of Fe3O4 magnetic nanoparticles. Advances in Colloid and Interface Science. 2020; 281: 102165. doi: 10.1016/j.cis.2020.102165

14. Lee J, Son N, Shin H, et al. An eco-efficient dual-function technology: Magnetically recoverable rGO-WO3/Fe3O4 ternary heterojunction catalytic system simultaneously performing malachite green photolysis and Cr(VI) reduction. Journal of Cleaner Production. 2024; 459: 142533. doi: 10.1016/j.jclepro.2024.142533

15. Liu M, Ye Y, Ye J, et al. Recent Advances of Magnetite (Fe3O4)-Based Magnetic Materials in Catalytic Applications. Magnetochemistry. 2023; 9(4): 110. doi: 10.3390/magnetochemistry9040110

16. Martins M, Santos TM, Faria EA, et al. Synthesis, Characterization and Application of Magnetic Nanoparticles for the Photodegradation of Tartrazine Yellow Dye. Revista Virtual de Química. 2024; 16(5): 740-747. doi: 10.21577/1984-6835.20240038

17. Ponce J, Andrade JG da S, dos Santos LN, et al. Alkali pretreated sugarcane bagasse, rice husk and corn husk wastes as lignocellulosic biosorbents for dyes. Carbohydrate Polymer Technologies and Applications. 2021; 2: 100061. doi: 10.1016/j.carpta.2021.100061

18. Alarcón E, Hernández C, García G, et al. Changes in chemical and structural composition of sugarcane bagasse caused by alkaline pretreatments [Ca(OH)2 and NaOH] modify the amount of endoglucanase and β-glucosidase produced by Aspergillus niger in solid-state fermentation. Chemical Engineering Communications. 2021; 209(5): 594-606. doi: 10.1080/00986445.2021.1881777

19. Morán-Aguilar MG, Calderón-Santoyo M, de Souza Oliveira RP, et al. Deconstructing sugarcane bagasse lignocellulose by acid-based deep eutectic solvents to enhance enzymatic digestibility. Carbohydrate Polymers. 2022; 298: 120097. doi: 10.1016/j.carbpol.2022.120097

20. Rao S, Madhushree M, Bhat KS. Characteristics of surface modified sugarcane bagasse cellulose: application of esterification and oxidation reactions. Scientific Reports. 2024; 14(1). doi: 10.1038/s41598-024-75846-8

21. Zhou F, Li K, Hang F, et al. Efficient removal of methylene blue by activated hydrochar prepared by hydrothermal carbonization and NaOH activation of sugarcane bagasse and phosphoric acid. RSC Advances. 2022; 12(3): 1885-1896. doi: 10.1039/d1ra08325b

22. Melesse GT, Hone FG, Mekonnen MA. Extraction of Cellulose from Sugarcane Bagasse Optimization and Characterization. Advances in Materials Science and Engineering. 2022; 2022: 1-10. doi: 10.1155/2022/1712207

23. Prabhath N, Kumara BS, Vithanage V, et al. A Review on the Optimization of the Mechanical Properties of Sugarcane-Bagasse-Ash-Integrated Concretes. Journal of Composites Science. 2022; 6(10): 283. doi: 10.3390/jcs6100283

24. Zafeer Mohd K, Menezes RA, Venkatachalam H, et al. Sugarcane bagasse-based biochar and its potential applications: a review. Emergent Materials. 2023; 7(1): 133-161. doi: 10.1007/s42247-023-00603-y

25. Bortolotto Teixeira L, Guzi de Moraes E, Paolinelli Shinhe G, et al. Obtaining Biogenic Silica from Sugarcane Bagasse and Leaf Ash. Waste and Biomass Valorization. 2020; 12(6): 3205-3221. doi: 10.1007/s12649-020-01230-y

26. Seroka NS, Taziwa R, Khotseng L. Green Synthesis of Crystalline Silica from Sugarcane Bagasse Ash: Physico-Chemical Properties. Nanomaterials. 2022; 12(13): 2184. doi: 10.3390/nano12132184

27. Rasheed HA, Adeleke AA, Nzerem P, et al. Isolation, characterization and response surface method optimization of cellulose from hybridized agricultural wastes. Scientific Reports. 2024; 14(1). doi: 10.1038/s41598-024-65229-4

28. Churam T, Usubharatana P, Phungrassami H. Sustainable Production of Carboxymethyl Cellulose: A Biopolymer Alternative from Sugarcane (Saccharum officinarum L.) Leaves. Sustainability. 2024; 16(6): 2352. doi: 10.3390/su16062352

29. Gutierrez FV, Lima IS, De Falco A, et al. The effect of temperature on the synthesis of magnetite nanoparticles by the coprecipitation method. Heliyon. 2024; 10(4): e25781. doi: 10.1016/j.heliyon.2024.e25781

30. Khatun R, Mamun MSA, Islam S, et al. Phytochemical-Assisted Synthesis of Fe3O4 Nanoparticles and Evaluation of Their Catalytic Activity. Micromachines. 2022; 13(12): 2077. doi: 10.3390/mi13122077

31. Haryński Ł, Olejnik A, Grochowska K, et al. A facile method for Tauc exponent and corresponding electronic transitions determination in semiconductors directly from UV–Vis spectroscopy data. Optical Materials. 2022; 127: 112205. doi: 10.1016/j.optmat.2022.112205

32. Narzary S, Alamelu K, Raja V, et al. Visible light active, magnetically retrievable Fe3O4@SiO2@g-C3N4/TiO2 nanocomposite as efficient photocatalyst for removal of dye pollutants. Journal of Environmental Chemical Engineering. 2020; 8(5): 104373. doi: 10.1016/j.jece.2020.104373

33. Rukhsar M, Ahmad Z, Rauf A, et al. An Overview of Iron Oxide (Fe3O4) Nanoparticles: From Synthetic Strategies, Characterization to Antibacterial and Anticancer Applications. Crystals. 2022; 12(12): 1809. doi: 10.3390/cryst12121809

34. Kumar R, Sakthivel R, Behura R, et al. Synthesis of magnetite nanoparticles from mineral waste. Journal of Alloys and Compounds. 2015; 645: 398-404. doi: 10.1016/j.jallcom.2015.05.089

35. Hegazy AA, Haliem WA, Haliem RA, et al. Brief Overview about Tartrazine Effects on Health. European Chemical Bulletin. 2023; 12(1): 4698-4707.

36. Leulescu M, Rotaru A, Pălărie I, et al. Tartrazine: physical, thermal and biophysical properties of the most widely employed synthetic yellow food-colouring azo dye. Journal of Thermal Analysis and Calorimetry. 2018; 134(1): 209-231. doi: 10.1007/s10973-018-7663-3

37. Paiu M, Favier L, Lutic D, et al. Visible-Light Photocatalytic Degradation of Tartrazine Using ZnO Nanoparticles: Preliminary Phytotoxicity Investigations on Treated Solutions. Zenodo. 2024. doi: 10.5281/ZENODO.11145258

38. Bouarroudj T, Aoudjit L, Djahida L, et al. Photodegradation of tartrazine dye favored by natural sunlight on pure and (Ce, Ag) co-doped ZnO catalysts. Water Science and Technology. 2021; 83(9): 2118-2134. doi: 10.2166/wst.2021.106

39. Prasanna SB, Kumar GS, Sakthivel R, et al. Dual Z-scheme heterojunction Ce2Sn2O7/Ag3PO4/V@g-C3N4 for increased photocatalytic degradation of the food additive tartrazine, in the presence of persulfate: Kinetics, toxicity, and density functional theory studies. Environmental Pollution. 2024; 356: 124196. doi: 10.1016/j.envpol.2024.124196

40. Jabbar ZH, Ebrahim SE. Synthesis, characterization, and photocatalytic degradation activity of core/shell magnetic nanocomposites (Fe3O4@SiO2@Ag2WO4@Ag2S) under visible light irradiation. Optical Materials. 2021; 122: 111818. doi: 10.1016/j.optmat.2021.111818

41. Khoshnam M, Salimijazi H. Synthesis and characterization of magnetic-photocatalytic Fe3O4/SiO2/a-Fe2O3 nano core-shell. Surfaces and Interfaces. 2021; 26: 101322. doi: 10.1016/j.surfin.2021.101322




DOI: https://doi.org/10.24294/jpse11589

Refbacks

  • There are currently no refbacks.


Copyright (c) 2025 Author(s)

License URL: https://creativecommons.org/licenses/by/4.0/

This site is licensed under a Creative Commons Attribution 4.0 International License.