Journal of Advanced Materials and Technologies

Journal of Advanced Materials and Technologies

Optimization of Nickel Ion Adsorption from Wastewater by Chitosan/Activated Bentonite Composite activated with hydrochloric acid: The Role of Iranian Bentonite Content and factors affecting absorption

Document Type : Original Reaearch Article

Authors
1 M.Sc. Student, School of Civil Engineering, Iran University of Science and Technology, Tehran, Iran.
2 Professor, School of Materials Science and Metallurgical Engineering, Iran University of Science and Technology, Tehran, Iran.
3 Assistant Professor, School of Civil Engineering, Iran University of Science and Technology, Tehran, Iran.
Abstract
Water contamination by heavy metal cations such as nickel, cobalt, and lead has become a significant environmental concern. To remove these pollutants from water to levels that allow industrial wastewater to be reused in industrial and agricultural applications, various methods, including adsorption using different adsorbents, have been employed. In this study, a chitosan/acid-activated bentonite composite adsorbent was prepared in the form of beads. A suspension containing chitosan and bentonite at different weight ratios was added dropwise into an alkaline medium containing NaOH and then allowed to stand for 24 h to facilitate the formation of beads with suitable size, shape, and apparent mechanical strength. The X-ray diffraction (XRD) pattern of the composite beads indicated an increase in the interlayer spacing of the montmorillonite layers. Brunauer–Emmett–Teller (BET) analysis showed that compositing chitosan with bentonite increased the specific surface area by 407% compared with chitosan beads alone. Fourier-transform infrared (FTIR) spectroscopy revealed the formation of a Ni(RNH₂)²⁺ complex between nickel cations and the amine groups of chitosan, evidenced by an absorption peak at a wavenumber of 1632 cm⁻¹. Nickel adsorption at an initial concentration of 80 ppm, pH 7–8, and a temperature of 25 °C, using composite beads with a chitosan-to-bentonite weight ratio of 2:1, achieved 93% removal, corresponding to an adsorption capacity of 18.6 mg/g. The results of the Langmuir and Freundlich isotherm studies for the activated chitosan/bentonite composite beads indicated that the experimental data were in good agreement with the Freundlich model.
Keywords
Subjects

1.      Chaudhry, Z. U. A., Arshad, N., & Qureshi, M. A. U. R.  (2026). Chitosan-based hydrogels: bentonite supported architectures explored for removal of cadmium(ii) from aqueous solution. RSC Advances, 16(16), 14216-14232. https://doi.org/10.1039/D6RA00503A  
 
2.      Aharipour, N., Nemati, A., & Malek Khachatourian, A. (2022). Green Synthesis of Silica Extracted from Rice Husk Ash. Advanced Ceramics Progress, 8(4), 15-20. https://doi.org/10.30501/acp.2022.363265.1103
        
3.      Ahmad, L. O., Permana, D., Wahab, Sabarwati, S., Ramadhan, L. O. A., & Rianse, U. (2015). Improved Chitosan Production from Tiger Shrimp Shell Waste (Penaeusmonodon) by Multistage Deacetylation Method and Effect of Bleaching. Adv. Environ. Geol. Sci. Eng38, 373-378. https://api.semanticscholar.org/CorpusID:171084048
        
4.      Al-Nuaim, M. A., Alwasiti, A. A., & Shnain, Z. Y. (2023). The photocatalytic process in the treatment of polluted water. Chemical papers, 77(2), 677-701. https://doi.org/10.1007/s11696-022-02468-7
        
5.      Aldhafeeri, T. (2026). Characterization of Saudi zeolite clinoptilolite-chitosan biopolymer composites for heavy metals adsorption from aqueous systems. Journal of King Saud University – Engineering Sciences, 38(1), 1. https://doi.org/10.1007/s44444-025-00086-8
        
6.        Alemu, D., Getachew, E., & Mondal, A. K. (2023). Study on the Physicochemical Properties of Chitosan and their Applications in the Biomedical Sector. International Journal of Polymer Science, 2023(1), 5025341. https://doi.org/10.1155/2023/5025341
 
7.      Balasubramanian, A. (2015). The World's Water University of Mysore, Mysore. https://www.researchgate.net/profile/A-Balasubramanian/publication/315123891_The_World's_Water/links/58cbced292851c31f6571007/The-Worlds-Water.pdf
 
8.      Berradi, A., Aziz, F., Achaby, M. E., Ouazzani, N., & Mandi, L. (2023). A comprehensive review of polysaccharide-based hydrogels as promising biomaterials. Polymers, 15(13), 2908. https://doi.org/10.3390/polym15132908
        
9.      Ibarra-Buscano, S., WAN, M., KAN, C., & DALIDA, M. (2009). Synthesis and Characterization of Chitosan-Montmorillionite Composite beads for Pb2+ and Cu2+ Adsorption. Proceedings of the APRC. SYNTHESIS-AND-CHARACTERIZATION-OF-CHITOSAN-MONTMORILLIONITE-COMPOSITE-BEADS-FOR-Pb-2-AND-Cu-2-ADSORPTION.pdf
  
10.    Dwivedi, C. P., Sahu, J., Mohanty, C., Moha n, B. R., & Meikap, B. (2008). Column performance of granular activated carbon packed bed for Pb (II) removal. Journal of hazardous materials, 156(1-3), 596-603. https://doi.org/10.1016/j.jhazmat.2007.12.097
        
11.    El-Baz, A. A. A., Hendy, I. A., Dohdoh, A. M., & Srour, M. I. (2020). Adsorption technique for pollutants removal; current new trends and future challenges–A Review. The Egyptian International Journal of Engineering Sciences and Technology, 32(Civil and Architectural Engineering), 1-24. https://doi.org/10.21608/eijest.2020.45536.1015
        
12.    Futalan, C., Kan, C.-C., Dalida, M., Hsien, K.-J., Pascua, C., & Wan, M.-W. (2011). Comparative and competitive adsorption of copper, lead, and nickel using chitosan immobilized on bentonite. Carbohydrate polymers, 83, 528-536. https://doi.org/10.1016/j.carbpol.2010.08.013
        
13.    Giannakas, A., & Pissanou, M. (2018). Chitosan/Bentonite Nanocomposites for Wastewater Treatment: A Review. SF J Nanochem Nanotechnol. 2018; 1(1), 1010. https://www.researchgate.net/profile/Aris-Giannakas/publication/329311716_ChitosanBentonite_Nanocomposites_for_Wastewater_Treatment_A_Review/links/5d64195b92851c619d780b25/Chitosan-Bentonite-Nanocomposites-for-Wastewater-Treatment-A-Review.pdf
        
14.    Gong, Y., Yu, Y., Kang, H., Chen, X., Liu, H., Zhang, Y.,…Song, H. (2019). Synthesis and Characterization of Graphene Oxide/Chitosan Composite Aerogels with High Mechanical Performance. Polymers, 11(5), 777. https://doi.org//10.3390/polym11050777
        
15.    Guibal, E. (2004). Interactions of metal ions with chitosan-based sorbents: a review. Separation and Purification Technology, 38(1), 43-74. https://doi.org/10.1016/j.seppur.2003.10.004
        
16.    Guo, X., Wu, Z., Lu, Z., Wang, Z., Li, S., Madhau, F.,…Huo, R. (2024). Preparation and Characterization of Chitosan-Modified Bentonite Hydrogels and Application for Tetracycline Adsorption from Aqueous Solution. Gels, 10(8), 503. https://www.mdpi.com/2310-2861/10/8/503
        
17.    Guo, X., Wu, Z., Wang, Z., Lin, F., Li, P., & Liu, J. (2023). Preparation of Chitosan-Modified Bentonite and Its Adsorption Performance on Tetracycline. ACS Omega, 8(22), 19455-19463. https://doi.org/10.1021/acsomega.3c00745
        
18.    Hodžić, N., Đozić, A., Šestan, I., & Alihodžić, H. (2020). Examination of Adsorption Abilities of Natural and Acid Activated Bentonite for Heavy Metals Removal from Aqueous Solutions. International Journal for Research in Applied Sciences and Biotechnology, 7(1). Available at SSRN:https://ssrn.com/abstract=3540997
        
19.    Jia, J., Liu, Y., & Sun, S. (2021). Preparation and characterization of chitosan/bentonite composites for Cr (VI) removal from aqueous solutions. Adsorption Science & Technology, 2021, 6681486. https://doi.org/10.1155/2021/6681486
               
20.    Kallman, E., Oyanedel-Craver, V., & Smith, J. (2011). Ceramic Filters Impregnated with Silver Nanoparticles for Point-of-Use Water Treatment in Rural Guatemala. Journal of Environmental Engineering, 137(6), 407-415. https://doi.org/10.1061/(ASCE)EE.1943-7870.0000330
        
21.    Khapre, M. A., Pandey, S., & Jugade, R. M. (2021). Glutaraldehyde-cross-linked chitosan–alginate composite for organic dyes removal from aqueous solutions. International Journal of Biological Macromolecules, 190, 862-875. https://doi.org/10.1016/j.ijbiomac.2021.09.026
        
22.    Liang, L., Cao, X., Pan, H., Sun, J., Luo, T., & Liu, X. (2026). Advanced chitosan-based hydrogels for efficient removal of Pb(II) from aqueous solutions: adsorption performance and mechanism insights. Environmental Sciences Europe, 38(1), 79. https://doi.org/10.1186/s12302-026-01342-7
        
23.    Majiya, H., Clegg, F., & Sammon, C. (2023). Bentonite-Chitosan composites or beads for lead (Pb) adsorption: Design, preparation, and characterisation. Applied Clay Science, 246, 107180. https://doi.org/10.1016/j.clay.2023.107180
        
24.    Moussout, H., Ahlafi, H., Aazza, M., & El Akili, C. (2018). Performances of local chitosan and its nanocomposite 5%Bentonite/Chitosan in the removal of chromium ions (Cr(VI)) from wastewater. International Journal of Biological Macromolecules, 108, 1063-1073. https://doi.org/ 10.1016/j.ijbiomac.2017.11.018
               
25.    Muliwa, A. M., Leswifi, T. Y., Maity, A., Ochieng, A., & Onyango, M. S. (2018). Fixed-bed operation for manganese removal from water using chitosan/bentonite/MnO composite beads. Environmental Science and Pollution Research, 25(18), 18081-18095. https://doi.org/10.1007/s11356-018-1993-3
        
26.    Pirilä, M. (2015). Adsorption and photocatalysis in water treatment: active, abundant and inexpensive materials and methods. https://urn.fi/URN:ISBN:9789526207629
        
27.    Sotomayor, F., Cychosz, K., & Thommes, M. (2018). Characterization of Micro/Mesoporous Materials by Physisorption: Concepts and Case Studies. Acc. Mater. Surf. Res3(2), 34-50. https://www.hyomen.org/en/wp-content/uploads/papers/vol3_no2/sotomayor/sotomayor_40.pdf
28.    Teimouri, A., Nasab, S. G., Vahdatpoor, N., Habibollahi, S., Salavati, H., & Chermahini, A. N. (2016). Chitosan /Zeolite Y/Nano ZrO2 nanocomposite as an adsorbent for the removal of nitrate from the aqueous solution. International Journal of Biological Macromolecules, 93, 254-266. https://doi.org/10.1016/j.ijbiomac.2016.05.089
        
29.    Temiz, A. E., Ozyalcin, Z. O., Senberber Dumanli, F. T., Tugrul, N., Moroydor Derun, E., & Kipcak, A. S. (2026). The Adsorption Performance of Chitosan Derived from Waste Lobster Shells on Aluminum (Al3+), Nickel (Ni2+), and Lead (Pb2+). Water, Air, & Soil Pollution, 237(10), 618. https://doi.org/10.1007/s11270-026-09296-5
 
30.    Teofilović, V., Pavličević, J., Bera, O., Jovičić, M., Budinski-Simendić, J., Mészáros-Szécsényi, K., & Aroguz, A. (2014). Preparation and thermal properties of chitosan/bentonite composite beads. Hemijska industrija, 68(6), 653-659. https://doi.org/10.2298/HEMIND130905088T
        
31.    Tirtom, V. N., Dinçer, A., Becerik, S., Aydemir, T., & Çelik, A. (2012). Comparative adsorption of Ni(II) and Cd(II) ions on epichlorohydrin crosslinked chitosan–clay composite beads in aqueous solution. Chemical Engineering Journal, 197, 379-386. https://doi.org/10.1016/j.cej.2012.05.059
        
32.    Tsai, W.-C., Ibarra-Buscano, S., Kan, C.-C., Futalan, C. M., Dalida, M. L. P., & Wan, M.-W. (2016). Removal of copper, nickel, lead, and zinc using chitosan-coated montmorillonite beads in single- and multi-metal system. Desalination and Water Treatment, 57(21), 9799-9812. https://doi.org/10.1080/19443994.2015.1035676
        
33.    Wang, J., & Chen, C. (2014). Chitosan-based biosorbents: Modification and application for biosorption of heavy metals and radionuclides. Bioresource Technology, 160, 129-141. https://doi.org/10.1016/j.biortech.2013.12.110
        
34.    Wu, J. M., & Wang, Y. Y. (2003). Immobilized chitosan as a selective absorbent for the nickel removal in water sample. J Environ Sci (China), 15(5), 633-638.
35.    Zaimee, M. Z. A., Sarjadi, M. S., & Rahman, M. L. (2021). Heavy metals removal from water by efficient adsorbents. Water, 13(19), 2659. https://doi.org/10.3390/w13192659
36.    Zia, Q., Tabassum, M., Gong, R., & Li, J. (2019). A Review on Chitosan for the Removal of Heavy Metals Ions. Journal of Fiber Bioengineering and Informatics, 12(3), 103-128. https://doi.org/10.3993/jfbim00301
        
37.    Zubir, A., Normaya, E., Danial, W. H., Goh, P. S., Piah, M. B. M., Show, P. L.,…Ahmad, M. N. (2026). State-of-the-art modification, mechanistic insight and breakthrough curve analysis of chitosan scaffolds for sustainable heavy metal adsorbent. International Journal of Environmental Science and Technology, 23(3), 195. https://doi.org/10.1007/s13762-025-06963-8
        
38.    Sanjarnia, P., Nourmohammadi, J., Rezayan, A. H., & Moaadab, M. (2021). Fabrication and Characterization of silk fibroin scaffold containing ascorbic acid-loaded chitosan nanoparticles for bone regeneration applications. Journal of Advanced Materials and Technologies, 10(4), 25-36. https://doi.org/10.30501/jamt.2021.266866.1152
        
39.    Salehi, S., & Hosseinifard, M. (2020). Removal of phosphate from aqueous media by lanthanum modified nanochitosan. Journal of Advanced Materials and Technologies9(2), 9-18. https://doi.org/10.30501/jamt.2020.206415.1053
Volume 15, Issue 2
Summer 2026
Pages 1-19

  • Receive Date 26 April 2026
  • Revise Date 20 May 2026
  • Accept Date 18 July 2026