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Effect of CTAB Templating on Mesoporous SiO₂from Rice Husk on the Adsorption of Methylene Blue

Melisa Nur Kibtiah  -  Departement of chemistry, Indonesia
*Rahmad Nuryanto  -  Department of Chemistry, Universitas Diponegoro, Indonesia
Yayuk Astuti  -  Department of Chemistry, Universitas Diponegoro, Indonesia
Open Access Copyright 2026 Greensphere: Journal of Environmental Chemistry

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Abstract

Water contamination caused by dye-containing industrial effluents remains a significant
environmental concern, necessitating the development of efficient and sustainable treatment
technologies. This study investigated the effect of cetyltrimethylammonium bromide (CTAB) as a
structure-directing agent on the meso-structural properties and adsorption performance of rice
husk-derived mesoporous SiO2 toward methylene blue (MB). Mesoporous silica was synthesized
hydrothermally using sodium silicate extracted from rice husk, both in the absence and presence
of CTAB, yielding materials denoted as MS and MS-CTAB, respectively. Structural
characterization revealed that CTAB-assisted synthesis significantly enhanced the textural
properties of the material, resulting in a higher specific surface area (580.38 m2/g) compared to
MS (89.63 m2/g), along with improved pore uniformity and accessibility. These structural
improvements facilitated superior adsorption performance, with MS-CTAB achieving an MB
removal efficiency of 86.02 %, compared to 74.19 % for MS. Adsorption kinetics were better
described by the pseudo-second-order model, while equilibrium data were more accurately fitted
by the Langmuir isotherm model, with a maximum adsorption capacity of 63.29 mg/g. The
findings demonstrate that CTAB-assisted hydrothermal synthesis effectively improves the
mesostructural characteristics and adsorption efficiency of rice husk-derived SiO2, highlighting
its potential as a sustainable adsorbent for dye removal from aqueous media.

Keywords: Template; Adsorption; Silica; Mesoporous

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Language : EN
  1. N. Farooq, M. I. Khan, A. Shanableh, A. M. Qureshi, S. Jabeen, and A. U. Rehman, “Synthesis and characterization of clay graphene oxide iron oxide ( clay / GO / Fe 2 O 3 ) -nanocomposite for adsorptive removal of methylene blue dye from wastewater,” Inorg. Chem. Commun., vol. 145, p. 109956, 2022, doi: 10.1016/j.inoche.2022.109956
  2. P. K. Ngoc, T. K. Mac, H. T. Nguyen, D. T. Viet, T. D. Thanh, P. Van Vinh, B. T. Phan, A. T. Duong, and R. Das, “Journal of Science : Advanced Materials and Devices Excellent organic dye adsorption capacity and recyclability of hydrothermally synthesized a -Fe 2 O 3 nanoplates and nanorices,” J. Sci. Adv. Mater. Devices, vol. 6, pp. 245–253, 2021, doi: 10.1016/j.jsamd.2021.02.006
  3. R. Sun, Y. Wu, N. Han, L. Chen, Z. Chen, and H. Zhao, “Mesoporous Silica-Based Photocatalytic Materials for Solar Energy Storage and Utilization,” Carbon Energy, 2025, doi: 10.1002/cey2.70054
  4. L. Anggraini, N. Sutisna, and R. Hernawan, “Rice Husk Ash Extraction Applied for Biosilica Reinforced Tire Tread Filler Compound,” Mater. Sci. Eng., vol. 1067, 2022
  5. P. Salgado, E. Aedo, and G. Vidal, “Green Synthesis of Fe2O3 Nanoparticles Using Eucalyptus globulus Leaf Extract on Pinus radiata Sawdust for Cationic Dye Adsorption,” Nanomaterials, vol. 14, 2024, doi: 10.3390/nano14221832
  6. N. Singhanatkaisi, T. Sirihengcharoen, T. Janyodha, P. Polnarai, K. Linthong, J. Tantirungrotechai, and Y. Tantirungrotechai, “Dye Adsorption Selectivity in Pristine and Aluminum-doped MCM-41 Mesoporous Silica : A Density Functional Theory Investigation,” Polyhedron, vol. 279, p. 117651, 2025, doi: 10.1016/j.poly.2025.117651
  7. K. D. Nguyen, V. K. Thai, A. B. Nguyen, P. H. Ho, and K. M. Luu, “Microporous and Mesoporous Materials 3D KIT-6 Silica: A Robust , Recyclable Adsorbent for the Removal of Organic Dyes from Water,” vol. 396, no. May, 2025, doi: 10.1016/j.micromeso.2025.113722
  8. J. Castillo, V. Vargas, D. Macero, A. Le Beulze, W. Ruiz, and B. Bouy, “One-step synthesis of SiO2 α− Fe2O3 / Fe3O4 composite nanoparticles with magnetic properties from rice husks,” Phys. B Phys. Condens. Matter, vol. 605, 2021, doi: 10.1016/j.physb.2020.412799
  9. M. Ulfa, D. Prasetyoko, W. Trisunaryanti, H. Bahruji, Z. A. Fadila, and N. A. Sholeha, “The effect of gelatin as pore expander in green synthesis mesoporous silica for methylene blue adsorption,” Sci. Rep., vol. 12, 2022, doi: 10.1038/s41598-022-19615-5
  10. H. Li, W. Wang, L. Wang, L. Chen, and C. Liu, “Framework Zr-enriched Hierarchical Zr-Si Zeolites Photocatalysts : Effects and Mechanism of CTAB Amount on Photocatalytic Performance,” J. Alloys Compd., vol. 1013, 2025, doi: 10.1016/j.jallcom.2025.178563
  11. S. Ahmed, “CTAB-assisted fabrication of hierarchical flower-like magnesium oxide adsorbent for enhanced removal performance towards phosphate,” J. Magnes. Alloy., vol. 11, 2023, doi: 10.1016/j.jma.2022.02.007
  12. S. Khanna, M. Kiruthika, S. Chidambaram, and M. Rathinam, “Preparation of Hierarchical Self-Assembled SiO2 / ZnO Composite by Low-Temperature Hydrothermal Approach for Enhanced Adsorption of 4-Nitrophenol and Dyes,” Mater. Sci. Eng. B, vol. 293, p. 116484, 2023, doi: 10.1016/j.mseb.2023.116484
  13. H. N. Hamad and S. Idrus, “Recent Developments in the Application of Bio-Waste-Derived Adsorbents for the Removal of Methylene Blue from Wastewater: A Review,” Polymers (Basel)., vol. 14, no. 783, 2022, doi: 10.3390/polym14040783
  14. D. Rahmadhani, K. Dwi, E. Frida, and A. Taufiq, “Antibacterial Properties of Textiles using Nanocomposite Chitosan and SiO2 from Rice Husk Ash as-Coating,” South African J. Chem. Eng., vol. 48, pp. 366–374, 2024, doi: 10.1016/j.sajce.2024.03.010
  15. C. Li, G. Zhang, L. Lin, T. Wu, S. Brunner, S. Galmarini, J. Bi, W. J. Malfait, S. Zhao, and K. Ostrikov, “Silica Aerogels: from Materials Research to Industrial Applications,” Int. Mater. Rev., vol. 68, no. 7, 2023
  16. K. Wijaya, M. F. Vebryana, N. Prasetyo, A. J. Saviola, W. D. Saputri, A. K. Amin, L. Hauli, and S. Gea, “NaHCO₃ -Assisted Synthesis of Ni-Promoted Sulfated Mesoporous Silica for the Hydrocracking of Used Cooking Oil into Biogasoline,” Bull. Chem. React. Eng. Catal., vol. 21, no. 1, pp. 149–167, 2026, doi: 10.9767/bcrec.20531
  17. S. (Plakhem) Tanjindaprateep, P. Kidkhunthod, P. Pattanasattayavong, and M. Ogawa, “Incorporation of iron(III) into nanoporous silica spheres Similan,” Colloids Surfaces A Physicochem. Eng. Asp., vol. 686, 2024
  18. T. Chepushtanova, A. Altmyshbayeva, Y. Merkibayev, K. Mamyrbayeva, Z. Yespenova, and B. Mishra, “Development of Technology for Processing Pyrite – Cobalt Concentrates to Obtain Pigments of the Composition Fe2O3,” Metals (Basel)., vol. 15, no. 886, 2025
  19. M. O. Yusuf, “Bond Characterization in Cementitious Material Binders Using Fourier-Transform Infrared Spectroscopy,” Appl. Sci., vol. 13, p. 3353, 2023
  20. T. Numpilai, N. Polsomboon, N. Dolsiririttigul, W. Limphirat, W. Donphai, A. Seubsai, M. Chareonpanich, and T. Witoon, “Unraveling Pore-dependent Metal – Support Interactions in CuO/SiO2 Catalysts for Low-temperature Reverse Water – Gas Shift Catalysis,” Mol. Catal., vol. 591, p. 115691, 2026, doi: 10.1016/j.mcat.2025.115691
  21. P. Haghighi, S. Alijani, A. Bazyari, and L. T. Thompson, “Visible light dye degradation over fluorinated mesoporous TiO2 − WO3 − Bi2O3/SiO2 nanocomposite photocatalyst-adsorbent using immersion well reactor,” J. Photochem. Photobiol. A Chem., vol. 426, 2022, doi: 10.1016/j.jphotochem.2022.113790
  22. D. Tran, N. Nguyen, T. H. Duong, A. M.-N. Lai, Q.-L. Nguyen, M.-T. Nguyen-Dinh, T. Nguyen, H.-D. P. Nguyen, and T.-P. T. Pham, “Enhanced CO2 Methanation Over SiO2 -Supported Catalysts with Embedded and Surface Ni Sites,” J. Energy Inst., vol. 125, p. 102466, 2026, doi: 10.1016/j.joei.2026.102466
  23. M. Tadic, D. Trpkov, L. Kopanja, S. Vojnovic, and M. Panjan, “Synthesis Conditions, Structure, Particle Shape Analysis, Cytotoxicity and Magnetic Properties,” J. Alloys Compd., vol. 792, pp. 599–609, 2019, doi: 10.1016/j.jallcom.2019.03.414
  24. S. Bonde, A. Potode, and B. Bhanvase, “Chemical Engineering and Processing - Process Intensification Intensified sonochemical co-precipitation of α -Fe2O3 Nanoparticles from Pickling Waste : Impact of Ultrasound and Air Flow on Particle Formation,” Chem. Eng. Process. - Process Intensif., vol. 221, p. 110710, 2026, doi: 10.1016/j.cep.2026.110710
  25. K. Hu, Y. Liu, Q. Zhang, Z. Song, M. A. Thaika, R. Li, E. Kuru, J. Shi, and H. Liu, “From Micropores to Macropores: Investigating Pore Characteristics of Longmaxi Shale in the Sichuan Basin,” Energy & Fuels, vol. 38, no. 5, 2024
  26. G. Calzaferri, S. H. Gallagher, S. Lustenberger, F. Walther, and D. Brühwiler, “Multiple Equilibria Description of Type H1 Hysteresis in Gas Sorption Isotherms of Mesoporous Materials,” Mater. Chem. Phys., vol. 296, 2023, doi: 10.1016/j.matchemphys.2022.127121
  27. E. Weidner, E. Karbassiyazdi, A. Altaee, T. Jesionowski, and F. Ciesielczyk, “Hybrid Metal Oxide/Biochar Materials for Wastewater Treatment Technology : A Review,” ACS OMEGA, vol. 7, 2022, doi: 10.1021/acsomega.2c02909
  28. Y. Niu, W. Yu, S. Yang, and Q. Wan, “Understanding the Relationship Between Pore Size, Surface Charge Density, and ­ Cu2+ Adsorption in Mesoporous Silica,” Sci. Rep., vol. 14, 2024, doi: 10.1038/s41598-024-64337-5
  29. N. Fu, H. Chen, R. Chen, S. Ding, and X. Ren, “Effect of Calcination Temperature on the Structure, Crystallinity, and Photocatalytic Activity of Core-Shell SiO2@TiO2 and Mesoporous Hollow TiO2 Composites,” Coatings, vol. 13, p. 852, 2023
  30. A. Samy, A. M. Ismail, and H. Ali, “Environmentally Friendly Mesoporous SiO2 with Mixed Fiber/Particle Morphology and Large Surface Area for Enhanced Dye Adsorption,” J. Mater. Sci., vol. 58, pp. 1586–1607, 2023, doi: 10.1007/s10853-022-08119-2
  31. R. Mulmeyda, R. R. Widakusuma, S. P. Chaerani, A. Purwanto, A. Rafsanjani, H. M. Zapar, and B. P. Ardhi, “Synthesis of α -Fe2O3 and α-Fe2O3/SiO2 Composite from Geothermal Waste by Sol-Gel Method and Their Characterization,” Chem. Mater., vol. 4, no. 1, pp. 24–33, 2025
  32. D. Chen, Z. Zeng, Y. Zeng, F. Zhang, and M. Wang, “Removal of Methylene Blue and Mechanism on Magnetic γ-Fe2O3/SiO2 Nanocomposite from Aqueous Solution,” Water Resour. Ind., vol. 15, pp. 1–13, 2016, doi: 10.1016/j.wri.2016.05.003
  33. M. Musah, Y. Azeh, J. T. Mathew, M. T. Umar, Z. Abdulhamid, and A. I. Muhammad, “Adsorption Kinetics and Isotherm Models : A Review,” Caliphate J. Sci. Technol., vol. 3121, 2022
  34. F. Du, D. Yang, T. Kang, Y. Ren, P. Hu, J. Song, F. Teng, and H. Fan, “SiO2/Ga2O3 Nanocomposite for Highly Efficient Selective Removal of Cationic Organic Pollutant via Synergistic Electrostatic Adsorption and Photocatalysis,” Sep. Purif. Technol., vol. 295, 2022, doi: 10.1016/j.seppur.2022.121221
  35. H. Gomaa, M. A. T. Hussein, M. M. Motawea, A. M. Aboraia, M. F. Cheira, M. T. Alotaibi, S. M. El-bahy, and H. M. Ali, “Colloids and Surfaces A : Physicochemical and Engineering Aspects A Hybrid Mesoporous CuO@barley Straw-derived SiO2 Nanocomposite for Adsorption and Photocatalytic Degradation of Methylene Blue from Real Wastewater,” Colloids Surfaces A Physicochem. Eng. Asp., vol. 644, 2022, doi: 10.1016/j.colsurfa.2022.128811
  36. S. Khanna, P. P. Gotipamul, K. Dilly, G. M. Kumar, S. Chidambaram, and M. Rathinam, “Rapid Selective Adsorption of Hazardous Dyes Using Charge Controlled NiO Layers Encapsulated SiO2 Core-Shell Nanostructures,” Ceram. Int., vol. 48, pp. 28969–28979, 2022, doi: 10.1016/j.ceramint.2022.04.169
  37. E. Molahosseini, H. Zare, M. Molaei, and F. Farahmandzadeh, “Synthesis of Fe3O4/AC/SiO2 Magnetic Nanocomposite and Application as a High Performance, Non-Toxic, and Cost-Efficient Nanocatalyst for Removal of Methylene Blue Dye from Water,” Vacuum, vol. 246, 2026, doi: 10.1016/j.vacuum.2025.115057
  38. M. Wang, Y. Jiao, N. Li, and Y. Su, “Synthesis of a SiO2-MgO Composite Material Derived from Yellow Phosphorus Slag with Excellent Malachite Green Adsorption Activity,” J. Alloys Compd., vol. 969, 2023

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