Review: The Development of Polymer Use as Adsorbents in Industrial Wastewater Treatment Processes

Nessi Rahmadani (1) , Hadistya Suryadri (2) , Rosmawati Sipayung (3) , Aldillah Herlambang (4)
(1) Chemical Engineering Study Program, Faculty of Science and Technology, University of Jambi, Pondok Meja, Mestong, Muaro Jambi, Jambi 36361, Indonesia,
(2) Chemical Engineering Study Program, Faculty of Science and Technology, University of Jambi, Pondok Meja, Mestong, Muaro Jambi, Jambi 36361, Indonesia,
(3) Chemical Engineering Study Program, Faculty of Science and Technology, University of Jambi, Pondok Meja, Mestong, Muaro Jambi, Jambi 36361, Indonesia,
(4) Chemical Engineering Study Program, Faculty of Science and Technology, University of Jambi, Pondok Meja, Mestong, Muaro Jambi, Jambi 36361, Indonesia

Abstract

The utilization of polymers, both synthetic polymers and biopolymers, as adsorbents in industrial wastewater treatment has shown significant progress in recent years. Numerous studies have reported that natural polymers such as cellulose, chitosan, and alginate, as well as synthetic polymers including ion-exchange resins, porous polymeric materials, and polyaniline, exhibit high adsorption capacities toward a wide range of pollutants. These materials have been widely applied in the treatment of wastewater from various industrial sectors, including textile industries (dyes), heavy metals, pharmaceuticals, food and beverage processing, and petrochemical industries containing hydrocarbon compounds. Adsorption occurs through several mechanisms, including ion exchange, complexation or chelation by functional groups such as –NH₂, –COOH, and –OH, hydrogen bonding, as well as π–π interactions and electrostatic forces. Biopolymers offer advantages in terms of sustainability, biodegradability, and relatively low production costs, whereas synthetic polymers are superior in mechanical strength, thermal stability, and higher selectivity toward specific pollutants. Although many studies have reported very high pollutant removal efficiencies, often exceeding 90%, large-scale implementation still faces several challenges, particularly related to process scalability, selectivity toward complex mixtures of pollutants, regeneration capability, and the long-term stability of adsorbents for repeated use. This article comprehensively reviews the literature on the classification and application of polymers as adsorbents, the underlying adsorption mechanisms, their physicochemical properties, and their practical implementation in industrial wastewater treatment. In addition, the challenges encountered, potential solutions, and future development trends of polymer-based adsorbents are also discussed.

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References

Adeiga, O. I., & Pillay, K. (2024). Polyaniline decorated rooibos tea waste: An adsorbent for the removal of hexavalent chromium and its reuse as a photocatalyst for the degradation of tetracycline. Results in Engineering, 24, 102946. https://doi.org/10.1016/j.rineng.2024.102946

Ahmad, R., & Ejaz, M. O. (2023). Efficient adsorption of crystal violet (CV) dye onto benign chitosan-modified l-cysteine/bentonite (CS-Cys/Bent) bionanocomposite: Synthesis, characterization and experimental studies. Dyes and Pigments, 216, 111305. https://doi.org/10.1016/j.dyepig.2023.111305

Alam, A., Hassan, A., Sultana, Z., & Das, N. (2025). Natural polymer-based bioadsorbents for wastewater treatment. RSC Sustainability, 3(11), 5027–5050. https://doi.org/10.1039/D5SU00369E

Alkhaldi, H., Alharthi, S., Alharthi, S., AlGhamdi, H. A., AlZahrani, Y. M., Mahmoud, S. A., Amin, L. G., Al-Shaalan, N. H., Boraie, W. E., Attia, M. S., Al-Gahtany, S. A., Aldaleeli, N., Ghobashy, M. M., Sharshir, A. I., Madani, M., Darwesh, R., & Abaza, S. F. (2024). Sustainable polymeric adsorbents for adsorption-based water remediation and pathogen deactivation: a review. RSC Advances, 14(45), 33143–33190. https://doi.org/10.1039/D4RA05269B

Amiri, M. J., Raayatpisheh, M., Radi, M., & Amiri, S. (2023). Preparation and characterization of biopolymer-based adsorbents and their application for methylene blue removal from wastewater. Scientific Reports, 13(1), 17263. https://doi.org/10.1038/s41598-023-44613-6

Chandra, D., Molla, Md. T. H., Bashar, Md. A., Islam, Md. S., & Ahsan, Md. S. (2023). Chitosan-based nano-sorbents: synthesis, surface modification, characterisation and application in Cd (II), Co (II), Cu (II) and Pb (II) ions removal from wastewater. Scientific Reports, 13(1), 6050. https://doi.org/10.1038/s41598-023-32847-3

Chen, T., Liu, H., Gao, J., Hu, G., Zhao, Y., Tang, X., & Han, X. (2022). Efficient Removal of Methylene Blue by Bio-Based Sodium Alginate/Lignin Composite Hydrogel Beads. Polymers, 14(14), 2917. https://doi.org/10.3390/polym14142917

de Mello, J. R., Machado, T. S., Crestani, L., Alessandretti, I., Marchezi, G., Melara, F., Mignoni, M. L., & Piccin, J. S. (2022). Synthesis, characterization and application of new adsorbent composites based on sol-gel/chitosan for the removal of soluble substance in water. Heliyon, 8(5), e09444. https://doi.org/10.1016/j.heliyon.2022.e09444

Duhan, M., & Kaur, R. (2020). Nano-Structured Polyaniline as a Potential Adsorbent for Methylene Blue Dye Removal from Effluent. Journal of Composites Science, 5(1), 7. https://doi.org/10.3390/jcs5010007

Elfeghe, S., Sheng, Q., Mamudu, A., James, L. A., & Zhang, Y. (2022). Recovery of Lead (II) Ions from Aqueous Solutions Using G-26 and MTS9570 Resins with Sulfonic/Phosphonic Functional Groups. Minerals, 12(10), 1312. https://doi.org/10.3390/min12101312

Elzahar, M. M. H., & Bassyouni, M. (2023). Removal of direct dyes from wastewater using chitosan and polyacrylamide blends. Scientific Reports, 13(1), 15750. https://doi.org/10.1038/s41598-023-42960-y

Gupta, A., Sharma, V., Mishra, P. K., & Ekielski, A. (2022). A Review on Polyacrylonitrile as an Effective and Economic Constituent of Adsorbents for Wastewater Treatment. Molecules, 27(24), 8689. https://doi.org/10.3390/molecules27248689

Haleem, A., Shafiq, A., Chen, S.-Q., & Nazar, M. (2023). A Comprehensive Review on Adsorption, Photocatalytic and Chemical Degradation of Dyes and Nitro-Compounds over Different Kinds of Porous and Composite Materials. Molecules, 28(3), 1081. https://doi.org/10.3390/molecules28031081

Harimu, L., Wahyuni, S., Nasrudin, N., Baari, M. J., & Permana, D. (2022). Fabrication of Chitosan/Fe<sub>3</sub>O<sub>4</sub> Nanocomposite as Adsorbent for Reduction Methylene Blue Contents. Indonesian Journal of Chemistry, 22(3), 878. https://doi.org/10.22146/ijc.65430

Hsini, A., Naciri, Y., Bouziani, A., Aarab, N., Essekri, A., Imgharn, A., Laabd, M., Navío, J. A., Puga, F., Lakhmiri, R., & Albourine, A. (2021). Polyaniline coated tungsten trioxide as an effective adsorbent for the removal of orange G dye from aqueous media. RSC Advances, 11(50), 31272–31283. https://doi.org/10.1039/D1RA04135E

Hu, X., Li, Z., Ge, Y., Liu, S., & Shi, C. (2022). Enhanced π–π stacks of aromatic ring-rich polymer adsorbent for the rapid adsorption of organic dyes. Colloids and Surfaces A: Physicochemical and Engineering Aspects, 643, 128782. https://doi.org/10.1016/j.colsurfa.2022.128782

Hu, Z., Brewer, C. R., Pyrch, A. J., Wang, Z., Jamadgni, D. U., Krause, W. E., & Lucia, L. A. (2025). Adsorption Characteristics of Bacterial Cellulose Membranes Toward Methylene Blue Dye in Aqueous Environment. Gels, 11(9), 721. https://doi.org/10.3390/gels11090721

Kamal, K. H., Hassan, M. A., Kamel, S., & El-Sayed, N. S. (2024). Efficient removal of Cd2+ ions and methylene blue from aqueous solutions by polyanionic sodium alginate-derived hydrogel. Surfaces and Interfaces, 51, 104596. https://doi.org/10.1016/j.surfin.2024.104596

Khaliq, K., Raza Anjum, M. A., Shahida, S., Akhtar, R., Khan, A., Shafiq, M. A., Rafiq, I., Rehan, M., Qureshi, R. N., Iqbal, S., Yun, J.-I., & Saifullah, M. (2025). Development of sulfonated polystyrene resin-supported tungsten oxide for Pb2+ ion sequestration. RSC Advances, 15(18), 14158–14169. https://doi.org/10.1039/D5RA01017A

Khan, R., Haram, Z., Ahmad, W., Sohni, S., Xu, J., & Ilyas, M. (2024). Removal of hydrocarbon pollutants from refinery wastewater using N-hexadecylchitosan as an efficient adsorptive platform. Scientific Reports, 14(1), 17236. https://doi.org/10.1038/s41598-024-66429-8

Lau, K. S., Azmi, N. A. S., Chin, S. X., Zakaria, S., & Chia, C. H. (2023). Chitosan-Bead-Encapsulated Polystyrene Sulfonate for Adsorption of Methylene Blue and Regeneration Studies: Batch and Continuous Approaches. Polymers, 15(5), 1269. https://doi.org/10.3390/polym15051269

Liang, Q., Wu, X., Yan, Y., Kang, S., Liu, J., Shi, M., & Tong, G. (2025). Recent Design Principles and Construction Strategies of Polyaniline-Based Composites: Toward Electrochemical and Non-Electrochemical Adsorption Applications. Polymers, 17(23), 3151. https://doi.org/10.3390/polym17233151

Meetam, P., Phonlakan, K., Nijpanich, S., & Budsombat, S. (2024). Chitosan-grafted hydrogels for heavy metal ion adsorption and catalytic reduction of nitroaromatic pollutants and dyes. International Journal of Biological Macromolecules, 255, 128261. https://doi.org/10.1016/j.ijbiomac.2023.128261

Pagliaccia, B., Carretti, E., Severi, M., Berti, D., Lubello, C., & Lotti, T. (2022). Heavy metal biosorption by Extracellular Polymeric Substances (EPS) recovered from anammox granular sludge. Journal of Hazardous Materials, 424, 126661. https://doi.org/10.1016/j.jhazmat.2021.126661

Rahman, N. C. A., Danial, W. H., Ahmad Noorden, A. F., & Abdul Majid, Z. (2025). Highly porous cross-linked graphene nanoplatelets-polyvinyl alcohol (GNP/PVA) aerogel for the removal of Ciprofloxacin from water. Journal of Porous Materials, 32(6), 2211–2230. https://doi.org/10.1007/s10934-025-01845-3

Sahu, P., Patel, A. R., Pandey, A., Hait, M., & Patra, G. K. (2025). Assessment of heavy metal ion toxicity in wastewater: A comprehensive review. Inorganica Chimica Acta, 585, 122751. https://doi.org/10.1016/j.ica.2025.122751

Savigni, E., Girometti, E., Sisti, L., Benstoem, F., Pinelli, D., & Frascari, D. (2025). Development and Validation of Molecularly Imprinted Polymers with Bio-Based Monomers to Adsorb Carbamazepine from Wastewater. Molecules, 30(12), 2533. https://doi.org/10.3390/molecules30122533

Tandekar, S. A., Pande, M. A., Shekhawat, A., Fosso-Kankeu, E., Pandey, S., & Jugade, R. M. (2022). Fe(III)–Chitosan Microbeads for Adsorptive Removal of Cr(VI) and Phosphate Ions. Minerals, 12(7), 874. https://doi.org/10.3390/min12070874

Wang, W., Liu, X., Wang, X., Zong, L., Kang, Y., & Wang, A. (2021). Fast and Highly Efficient Adsorption Removal of Toxic Pb(II) by a Reusable Porous Semi-IPN Hydrogel Based on Alginate and Poly(Vinyl Alcohol). Frontiers in Chemistry, 9. https://doi.org/10.3389/fchem.2021.662482

Zhang, H., Li, G.-W., Feng, W., & Yao, Z.-Y. (2022). Cu(II) Adsorption from Aqueous Solution onto Poly(Acrylic Acid/Chestnut Shell Pigment) Hydrogel. Water, 14(21), 3500. https://doi.org/10.3390/w14213500

Zhao, B., Jiang, H., Lin, Z., Xu, S., Xie, J., & Zhang, A. (2019). Preparation of acrylamide/acrylic acid cellulose hydrogels for the adsorption of heavy metal ions. Carbohydrate Polymers, 224, 115022. https://doi.org/10.1016/j.carbpol.2019.115022

Authors

Nessi Rahmadani
nessirahmadanni@gmail.com (Primary Contact)
Hadistya Suryadri
Rosmawati Sipayung
Aldillah Herlambang
Rahmadani, N., Suryadri, H., Sipayung, R., & Herlambang, A. (2026). Review: The Development of Polymer Use as Adsorbents in Industrial Wastewater Treatment Processes . Jurnal Teknik Lingkungan, 32(1), 49–58. https://doi.org/10.5614/j.tl.2026.32.1.6

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