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Research Article

Adsorption Removal of Azo Dye (Methylene Blue) From Wastewater Using Biomaterials with Kinetic Modeling

References

  • Amor, I. B., H. Hemmami, S. E. Laouini, A. G. Abdelaziz, and A. Barhoum. 2023. Influence of chitosan source and degree of deacetylation on antibacterial activity and adsorption of AZO dye from water. Biomass Conversion and Biorefinery 1–11. doi: 10.1007/s13399-023-03741-9.
  • Ben Amor, I., H. Hemmami, S. E. Laouini, S. Zeghoud, M. Benzina, S. Achour, A. Naseef, A. Alsalme, and A. Barhoum. 2023. Use of insect-derived chitosan for the removal of methylene blue dye from wastewater: Process optimization using a central composite design. Materials 16 (14):5049. doi: 10.3390/ma16145049.
  • Chen, Y. N., F. Chen, L. Li, C. Su, B. Song, H. Zhang, S. Guo, and F. Pan. 2024. Progress and prospects of Mg-based amorphous alloys in azo dye wastewater treatment. Journal of Magnesium and Alloys 12 (3):873–89. doi: 10.1016/j.jma.2024.02.010.
  • El-Aassar, M. R., T. M. Tamer, M. Y. El-Sayed, A. M. Omer, I. O. Althobaiti, M. E. Youssef, R. F. Alolaimi, E. F. El-Agammy, M. S. Alruwaili, and M. S. Mohy-Eldin. 2022. Development of azo dye immobilized poly (glycidyl methacrylate-co-methyl methacrylate) polymers composites as novel adsorbents for water treatment applications: Methylene blue-polymers composites. Polymers 14 (21):4672. doi: 10.3390/polym14214672.
  • Haque, M. M., M. A. Haque, M. K. Mosharaf, A. Rahman, M. S. Islam, K. Nahar, and A. H. Molla. 2023. Enhanced biofilm-mediated degradation of carcinogenic and mutagenic azo dye by novel bacteria isolated from tannery wastewater. Journal of Environmental Chemical Engineering 11 (5):110731. doi: 10.1016/j.jece.2023.110731.
  • Haris, M., M. W. Khan, J. Paz-Ferreiro, N. Mahmood, and N. Eshtiaghi. 2022. Synthesis of functional hydrochar from olive waste for simultaneous removal of azoand non-azo dyes from water. Chemical Engineering Journal Advances 9:100233. doi: 10.1016/j.ceja.2021.100233.
  • Maiti, P., H. Siddiqi, U. Kumari, A. Chatterjee, and B. C. Meikap. 2023. Adsorptive remediation of azo dye contaminated wastewater by ZnCl2 modified bio-adsorbent: Batch study and life cycle assessment. Powder Technology 415:118153. doi: 10.1016/j.powtec.2022.118153.
  • Mechnou, I., S. Meskini, D. El Ayar, L. Lebrun, and M. Hlaibi. 2022. Olive mill wastewater from a liquid biological waste to a carbon/oxocalcium composite for selective and efficient removal of methylene blue and paracetamol from aqueous solution. Bioresource Technology 365:128162. doi: 10.1016/j.biortech.2022.128162.
  • Mechnou, I., S. Meskini, I. Mourtah, L. Lebrun, and M. Hlaibi. 2023. Use of phosphorus-doped microporous carbon from olive mill wastewater for effective removal of crystal violet and methylene blue. Journal of Cleaner Production 393:136333. doi: 10.1016/j.jclepro.2023.136333.
  • Mohamed, F. M., M. R. El-Aassar, O. M. Ibrahim, A. Elsayed, M. F. Alrakshy, M. Abdel Rafea, and K. A. Omran. 2024. Effective removal of carcinogenic azo dye from water using zea mays-derived mesoporous activated carbon. ACS Omega 9 (11):13086–99. doi: 10.1021/acsomega.3c09494.
  • Moradi, O., A. Pudineh, and S. Sedaghat. 2022. Synthesis and characterization Agar/GO/ZnO NPs nanocomposite for removal of methylene blue and methyl orange as azo dyes from food industrial effluents. Food and Chemical Toxicology 169:113412. doi: 10.1016/j.fct.2022.113412.
  • Mussa, Z. H., L. R. Al-Ameer, F. F. Al-Qaim, I. F. Deyab, H. Kamyab, and S. Chelliapan. 2023. A comprehensive review on adsorption of methylene blue dye using leaf waste as a bio-sorbent: Isotherm adsorption, kinetics, and thermodynamics studies. Environmental Monitoring and Assessment 195 (8):940. doi: 10.1007/s10661-023-11432-1.
  • Musthofa, A. M. H., M. Syafila, and Q. Helmy. 2023. Effect of activated carbon particle size on methylene blue adsorption process in textile wastewater. Indonesian Journal of Chemistry 23 (2):461. doi: 10.22146/ijc.79784.
  • Pathirana, M. A., N. S. Dissanayake, N. D. Wanasekara, B. Mahltig, and G. K. Nandasiri. 2023. Chitosan-graphene oxide dip-coated polyacrylonitrile-ethylenediamine electrospun nanofiber membrane for removal of the dye stuffs methylene blue and congored. Nanomaterials 13 (3):498. doi: 10.3390/nano13030498.
  • Ramutshatsha-Makhwedzha, D., A. Mavhungu, M. L. Moropeng, and R. Mbaya. 2022. Activated carbon derived from waste orange and lemon peels for the adsorption of methyl orange and methylene blue dyes from wastewater. Heliyon 8 (8):e09930. doi: 10.1016/j.heliyon.2022.e09930.
  • Ravindiran, G., H. Sundaram, E. M. Rajendran, S. Ramasamy, A. Z. Nabil, and B. Ahmed. 2023. Removal of azo dyes from synthetic wastewater using biochar derived from sewage sludge to prevent groundwater contamination. Urban Climate 49:101502. doi: 10.1016/j.uclim.2023.101502.
  • Reçber, Z. B., H. Burhan, R. Bayat, M. S. Nas, M. H. Calimli, Ö. Demirbas, F., and Şen, and K. M. Hassan. 2022. Fabrication of activated carbon-supported modified with bimetallic-platin ruthenium nano sorbent for removal of azo dye from aqueous mediausing enhanced ultrasonic wave. Environmental Pollution (Barking, Essex: 1987)302:119033. doi: 10.1016/j.envpol.2022.119033.
  • Rind, I. K., A. Sarı, M. Tuzen, M. F. Lanjwani, and T. A. Saleh. 2023. Synthesis of graphene/silica composites and the analysis of its removal efficiency of methylene blue dye from water. Inorganic Chemistry Communications 158:111507. doi: 10.1016/j.inoche.2023.111507.
  • Taktak, F. F., and E. Özyaranlar. 2023. Adsorption mechanism of xanthan gum-based hydrogel adsorbent for the removal of cationic methylene blue from aqueous solutions. Journal of Macromolecular Science, Part B 62 (5):214–27. doi: 10.1080/00222348.2023.2210369.
  • Vaiano, V., and I. De Marco. 2023. Removal of azo dyes from wastewater through heterogeneous photocatalysis and supercritical water oxidation. Separations 10 (4):230. doi: 10.3390/separations10040230.
  • Wan, X., Z. Rong, K. Zhu, and Y. Wu. 2022. Chitosan-based dual network composite hydrogel for efficient adsorption of methylene blue dye. International Journal of Biological Macromolecules 222 (Pt A):725–35. doi: 10.1016/j.ijbiomac.2022.09.213.
  • Wang, L., G. Xue, T. Ye, J. Li, C. Liu, J. Liu, and P. Ma. 2023a. Zn-modified biochar preparation from solvent free in-situ pyrolysis and its removal of methylene blue. Diamond and Related Materials 140:110438. doi: 10.1016/j.diamond.2023.110438.
  • Wang, H., L. Yang, Y. Qin, Z. Chen, T. Wang, W. Sun, and C. Wang. 2023b. Highly effective removal of methylene blue from wastewater by modified hydroxyl groups materials: Adsorption performance and mechanisms. Colloids and Surfaces A: Physicochemical and Engineering Aspects 656:130290. doi: 10.1016/j.colsurfa.2022.130290.
  • Wang, X., A. Zhang, M. Chen, M. K. Seliem, M. Mobarak, Z. Diao, and Z. Li. 2023c. Adsorption of azo dyes and Naproxen by few-layer MXene immobilized with dialdehyde starch nanoparticles: Adsorption properties and statistical physics modeling. Chemical Engineering Journal 473:145385. doi: 10.1016/j.cej.2023.145385.
  • Wang, X., P. Zhang, F. Xu, B. Sun, G. Hong, and L. Bao. 2022. Adsorption of methylene blue on azo dye wastewater by molybdenum disulfide nanomaterials. Sustainability 14 (13):7585. doi: 10.3390/su14137585.
  • Wolski, R., A. Bazan-Wozniak, and R. Pietrzak. 2023. Adsorption of methyl red and methylene blue on carbon bioadsorbents obtained from biogas plant waste materials. Molecules (Basel, Switzerland)28 (18):6712. doi: 10.3390/molecules28186712.
  • Yao, L. W., F. S. A. Khan, N. M. Mubarak, R. R. Karri, M. Khalid, R. Walvekar, E. C. Abdullah, S. A. Mazari, A. Ahmad, and M. H. Dehghani. 2022. Insight into immobilization efficiency of Lipase enzyme as a biocatalyst on the graphene oxide for adsorption of Azo dyes from industrial wastewater effluent. Journal of Molecular Liquids 354:118849. doi: 10.1016/j.molliq.2022.118849.

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