Sustainable Removal of Methyl Orange from Wastewater Using Cyperus rotundus
A Low-cost Natural Adsorbent
DOI:
https://doi.org/10.14500/aro.12855Keywords:
Adsorption, Cyperus Rotundus, Methyl Orange, Natural adsorbent and wastewater treatmentAbstract
Synthetic dyes found in wastewater create substantial environmental hazards and health risks, which require effective and sustainable wastewater treatment methods. This study investigates the use of Cyperus Rotundus as a natural adsorbent to remove methyl orange in aqueous solutions under a batch system. A total of 71 experimental runs were conducted to examine the effects of initial dye concentration (5–100 ppm), pH (3–11), contact time (10–90 min), and temperature (25–45°C) on the adsorption process. The maximum removal efficiency of 97% was obtained at a dye concentration of 10 ppm, pH of 4, and contact time of 90. Isotherm analysis revealed that the Langmuir model can provide the best fit with a maximum adsorption capacity of 2.25 mg/g, and a coefficient of determination (R2 = 0.657) while kinetic data followed the pseudo-second-order model indicating that chemisorption is the dominant mechanism (R2 > 0.95). Thermodynamic analysis proved that this adsorption is both spontaneous (with a standard Gibbs free energy change ranging from ΔGo = - 4.76 to -5.69 kJ/mol) and endothermic (enthalpy change ΔH° = 9.10 kJ/mol). Scanning Electron Microscopy (SEM) and Fourier Transform Infrared Spectroscopy (FTIR) were used to confirm the presence of dye adsorbent interactions by testing structural and functional changes of the groups that occurred after adsorption. The results show that Cyperus Rotundus is a low-cost biosorbent in methyl orange removal and can serve as a sustainable wastewater treatment material.
Downloads
References
Abbas, H.A., Saleh Alsaade, K.A., and Yousif Almashhdan, H.A., 2019. Study the Effect of Cyperus rotundus Extracted as Mouthwash on the Corrosion of Dental Amalgam. In: IOP Conference Series: Materials Science and Engineering. Institute of Physics Publishing.
Adnan, F., and Thanasupsin, S.P., 2016. Kinetic studies using a linear regression analysis for a sorption phenomenon of 17a-methyltestosterone by Salvinia cucullata in an active plant reactor. Environmental Engineering Research, 21(4), pp.384-392.
Agarwala, R., and Mulky, L., 2023. Adsorption of dyes from wastewater: A comprehensive review. ChemBioEng Reviews, 10(3), pp.326-335.AL-Kazragi, M.A.U.R., AL-Heetimi, D.T.A., and Wilson, L.D., 2024.
Adsorption of methyl orange on low-cost adsorbent natural materials and modified natural materials: A review. International Journal of Phytoremediation, 26(5), pp.639-668.
Ali, D.A., Shawky, M.S., Elsawy, H.A., 2021. Kinetics, isotherm and optimum condition for the adsorption of methyl red dye using hydroxyapatite. International Journal of Advanced Trends in Computer Science and Engineering, 10(4), pp. 2745-2751.
Bharathi, K.S., Ramesh, S.P.T., 2013. Fixed-bed column studies on biosorption of crystal violet from aqueous solution by Citrullus lanatus rind and Cyperus rotundus. Applied Water Science, 3, pp. 673-687.
Bellaj, M., Regti, A., El Haddad, M., Gebrati, L., Aziz, F., Kurniawan, T.A., and Abourriche, A., 2026. Clay/biopolymer composite beads for adsorptive dye removal in batch and fixed-bed systems. Materials Chemistry and Physics, 352, p.131998.
Bezerra, J.J.L., Pinheiro, A.A.V., 2022. Traditional uses, phytochemistry and anticancer potential of Cyperus rotundusL. (Cyperaceae): A systematic review. South African Journal of Botany, 146, pp. 172-182.
Chakraborty, R., Asthana, A., Singh., A.K., Verma, R., Sankarasubramanian, S., Yadav, S., Carabineiro., S.A.C., and Susan, M.A.B.H., 2020. Chicken feathers derived materials for the removal of chromium from aqueous solutions: Kinetics, isotherms, thermodynamics and regeneration studies. Journal of Dispersion Science and Technology, 41(3), pp.446–460.
Dutta, S., Gupta, B., Srivastava, S.K., and Gupta, A.K., 2021. Recent advances on the removal of dyes from wastewater using various adsorbents: A critical review. Materials Advances, 2(14), pp.4497-4531.
Fadhil, O.H., and Eisa, M.Y., 2019. Removal of methyl orange from aqueous solutions by adsorption using corn leaves as adsorbent material. Journal of Engineering, 25(4), pp.55-69.
Flinn Scientific., 2014. Methyl Orange Safety Data Sheet (SDS). Flinn Scientific, United States.
Hambisa, A.A., Regasa, M.B., Ejigu, H.G., and Senbeto, C.B., 2023. Adsorption studies of methyl orange dye removal from aqueous solution using Anchote peel-based agricultural waste adsorbent. Applied Water Science, 13(1), p.24.
Ibrahim, A.K., Ahmed, S.H., and Abduljabbar, R.A., 2024. Adsorption of Congo red dye from aqueous solutions using an eco-friendly adsorbent derived from buckthorn fruits. Tikrit Journal of Engineering Sciences, 31(1), pp.182-192.
Kassa, A., Engida, A., and Endaye, M., 2025. Eco-friendly adsorbents for industrial dye removal: A comprehensive review of low-cost alternatives. Desalination and Water Treatment, 323, p.101362.
Kivrak, H., Saleh, D.I., Alpaslan, D., Çağlar, A., Selçuk, K., Dudu, T.E., and Aktas, N., 2022. Quantum size effect of cadmium-doped titanium dioxide photocatalysts towards methylene blue degradation and electrooxidation. International Journal of Environmental Science and Technology, 19(10), pp.9507-9518.
Kramer, G.R., Bruera, F.A., Zapata, P.D., and Ares, A.E., 2025. Aluminum oxide coatings as nanoadsorbents for the treatment of effluents colored with eriochrome black T. Coatings, 15(4), p.488.
Kuyucu, A.E., Selçuk, A., Önal, Y., Alacabey, İ., and Erol, K., 2025. Effective removal of dyes from aqueous systems by waste-derived carbon adsorbent: Physicochemical characterization and adsorption studies. Scientific Reports, 15(1), p.28835.
El Maguana, Y., Elhadiri, N., Benchanaa, M., and Chikri, R., 2020. Activated carbon for dyes removal: Modeling and understanding the adsorption process. Journal of Chemistry, 2020, p.2096834.
Malik, S., Janiad, S., and Ng, S.L., 2025. Polyhydroxyalkanoates for dye removal: From adsorption to biodegradation. In: Kalia, V.C., Ed. Polyhydroxyalkanoates: Sustainable Production and Biotechnological Applications II: Agriculture, Industry, and Environment. Springer Nature, Singapore, pp.207-224.
Mohamed, F.M., Alfalos, A.M., Alrakshy, M.F., Aborziza, M.A., Alfalous., K.A., Rafea, M.A., Zaki, M.E.A., El-Aassar, M.R., and Roshdy, M.A., 2026. Sustainable removal of azo dyes from real effluents using a biomass-derived composite. Scientific Reports, 16(1), p.2076.
Potgieter, J.H., Pardesi, C., and Pearson, S., 2021. A kinetic and thermodynamic investigation into the removal of methyl orange from wastewater utilizing fly ash in different process configurations. Environmental Geochemistry and Health, 43(7), pp.2539-2550.
Rahmoun, H.B., Boumediene, M., Ghenim, A.N., Da Silva, E.F., and Labrincha, J., 2025. Coupling coagulation-flocculation-sedimentation with adsorption on biosorbent (corncob) for the removal of textile dyes from aqueous solutions. Environments, 12(6), p.201.
Ramutshatsha-Makhwedzha, D., Mavhungu, A., Moropeng, M.L., and Mbaya, R., 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), p.e09930.
Shah, S.S., Sharma, T., Dar, B.A., and Bamezai, R.K., 2021. Adsorptive removal of methyl orange dye from aqueous solution using populous leaves: Insights from kinetics, thermodynamics and computational studies. Environmental Chemistry and Ecotoxicology, 3, pp.172-181.
Zhang, L.L., Zhang, L.F., Hu, Q.P., Hao, D.L., and Xu, J.G., 2017. Chemical composition, antibacterial activity of Cyperus Rotundus rhizomes essential oil against Staphylococcus aureus via membrane disruption and apoptosis pathway. Food Control, 80, pp.290-296.
Ziembowicz, S., and Kida, M., 2025. The optimization of advanced oxidation processes for the degradation of industrial pollutants. Sustainability, 17(5), p.1908.
Downloads
Published
How to Cite
Issue
Section
License
Copyright (c) 2026 Dunya I. Saleh, Ahmed A. Ahmed , Rawezh M. Mustafa, Bahra J. Swara, Ali Al-Wakeel, Dastan S. Abdul

This work is licensed under a Creative Commons Attribution-NonCommercial-ShareAlike 4.0 International License.
Authors who choose to publish their work with Aro agree to the following terms:
-
Authors retain the copyright to their work and grant the journal the right of first publication. The work is simultaneously licensed under a Creative Commons Attribution License [CC BY-NC-SA 4.0]. This license allows others to share the work with an acknowledgement of the work's authorship and initial publication in this journal.
-
Authors have the freedom to enter into separate agreements for the non-exclusive distribution of the journal's published version of the work. This includes options such as posting it to an institutional repository or publishing it in a book, as long as proper acknowledgement is given to its initial publication in this journal.
-
Authors are encouraged to share and post their work online, including in institutional repositories or on their personal websites, both prior to and during the submission process. This practice can lead to productive exchanges and increase the visibility and citation of the published work.
By agreeing to these terms, authors acknowledge the importance of open access and the benefits it brings to the scholarly community.
Accepted 2026-03-27
Published 2026-05-21







ARO Journal is a scientific, peer-reviewed, periodical, and diamond OAJ that has no APC or ASC.