[1]
Ali, B., Mishra, A., & Mishra, A. (2022). Effects of dissolved oxygen concentration on freshwater fish: A review. International Journal of Fisheries and Aquatic Studies, 10(4), 113–127.
DOI: 10.22271/fish.2022.v10.i4b.2693
Google Scholar
[2]
Aljohani, A. (2023). Heavy metal toxicity in poultry: a comprehensive review. Frontiers in Veterinary Science, 1–12.
DOI: 10.3389/fvets.2023.1161354
Google Scholar
[3]
Carvalho, J., Milani, P., Consonni, J., Labuto, G., & Carrilho, E. (2020). Nanomodified sugarcane bagasse biosorbent: synthesis, characterization, and application for Cu(II) removal from aqueous medium. Environmental Science and Pollution Research, 28, 24744–24755.
DOI: 10.1007/s11356-020-11345-3
Google Scholar
[4]
Wang, B., Zhang, L., Lian, L., Zhang, X., & Qi, Y. (2025). Treatment of compound pollution in simulated livestock and poultry wastewater by algae-bacteria symbiosis system. Chemosphere.
DOI: 10.1016/j.chemosphere.2024.143927
Google Scholar
[5]
Kaur, J., Sengupta, P., & Mukhopadhyay, S. (2022). Critical review of bioadsorption on modified cellulose and removal of divalent heavy metals (Cd, Pb, and Cu). Industrial & Engineering Chemistry Research, 61(5), 1921–1954.
DOI: 10.1021/acs.iecr.1c04583
Google Scholar
[6]
Iwuozor, K., Adeniyi, A., Emenike, E., Ojeyemi, T., Egbemhenghe, A., Okorie, C., Ayoku, B.D. & Saliu, O. (2023). Prospects and challenges of utilizing sugarcane bagasse as a bio-coagulant precursor for water treatment. Biotechnology Reports, 39, 1–7.
DOI: 10.1016/j.btre.2023.e00805
Google Scholar
[7]
Nata, I., Irawan, C., Putra, M., Wijayanti, H., Dewi, Y., & Meliana, Y. (2022). A sustainable amine magnetic biocomposite based on rice husk–sugarcane bagasse fiber for lead and contaminant adsorption in aqueous solution. Magnetochemistry, 8(183), 1–16.
DOI: 10.3390/magnetochemistry8120183
Google Scholar
[8]
Rad, L., & Anbia, M. (2021). Zeolite-based composites for the adsorption of toxic matters from water: A review. Journal of Environmental Chemical Engineering, 9(5).
DOI: 10.1016/j.jece.2021.106088
Google Scholar
[9]
Ezeonuegbu, B., Machido, D., Whong, C., Japhet, W., Alexiou, A., Elazab, S., Qusty, N., Yaro C.A. & Batiha, G.-S. (2021). Agricultural waste of sugarcane bagasse as efficient adsorbent for lead and nickel removal from untreated wastewater: Biosorption, equilibrium isotherms, kinetics and desorption studies. Biotechnology Reports, 30, 1–10.
DOI: 10.1016/j.btre.2021.e00614
Google Scholar
[10]
Mubarak, A., Ilyas, R., Nordin, A., Ngadi, N., & Alkbir, M. (2024). Recent developments in sugarcane bagasse fibre-based adsorbent and their potential industrial applications: A review. International Journal of Biological Macromolecules, 277.
DOI: 10.1016/j.ijbiomac.2024.134165
Google Scholar
[11]
Mishra, R., Militky, J., & Venkataraman, M. (2019). Electrospun nanofibers. In R. Mishra & J. Militky (Eds.), Nanotechnology in Textiles (p.35–161). UK: Woodhead Publishing.
DOI: 10.1016/B978-0-08-102609-0.00002-X
Google Scholar
[12]
Kurusu, R., Lapointe, M., & Tufenkji, N. (2022). Sustainable iron-grafted cellulose fibers enable coagulant recycling and improve contaminant removal in water treatment. Chemical Engineering Journal, 430.
DOI: 10.1016/j.cej.2021.132927
Google Scholar
[13]
Li, X., Tabil, L., & Panigrahi, S. (2007). Chemical treatments of natural fiber for use in natural fiber-reinforced composites: A review. Journal of Environmental Polymer Degradation, 15(1), 25– 33.
DOI: 10.1007/s10924-006-0042-3
Google Scholar
[14]
Mosbah, M., Mechi, L., Khiari, R., & Moussaoui, Y. (2020). Current state of porous carbon for wastewater treatment. Processes, 8(12), 1–29.
DOI: 10.3390/pr8121651
Google Scholar
[15]
Pati, P. (2024). Nano silica-based adsorbents for removal of heavy metals and microbial contaminants from water. Vidhyayana – An International Multidisciplinary Peer-Reviewed E- Journal, 9(2), 907–914.
DOI: 10.58213/4fvwns18
Google Scholar
[16]
Simão, J., Carmona, V., Marconcini, J., & Mattoso, L. (2016). Effect of fiber treatment condition and coupling agent on the mechanical and thermal properties in highly filled composites of sugarcane bagasse fiber/PP. Materials Research, 19(4), 746–751.
DOI: 10.1590/1980-5373-MR-2015-0609
Google Scholar
[17]
Yang, X., Wan, Y., Zheng, Y., He, F., Yu, Z., Huang, J., Wang, H., Ok, Y.S., Jiang, Y. & Gao, B. (2019). Surface functional groups of carbon-based adsorbents and their roles in the removal of heavy metals from aqueous solutions: A critical review. Chemical Engineering Journal, 366, 608– 621.
DOI: 10.1016/j.cej.2019.02.119
Google Scholar
[18]
Sorour, M., Helmy, M., Mahrouky, A., & Ahmed, I. (2023). Using activated and nano silica as adsorbent materials for filtration of industrial wastewater. Food Technology Research Journal, 2(2), 68–72.
DOI: 10.21608/FTRJ.2023.329291
Google Scholar
[19]
Zhao, Y., Chen, M., Zhao, Z., & Yu, S. (2015). The antibiotic activity and mechanisms of sugarcane (Saccharum officinarum L.) bagasse extract against food-borne pathogens. Food Chemistry, 185, 112–118.
DOI: 10.1016/j.foodchem.2015.03.120
Google Scholar
[20]
Pineda, E., Ruiz, M., Guaya, D., Manrique, J., & Osorio, F. (2020). Elimination of total coliforms and Escherichia coli from water by means of filtration with natural clays and silica sand in developing countries. Environmental Geochemistry and Health, 43, 195–207.
DOI: 10.1007/s10653-020-00623-1
Google Scholar
[21]
Adila, H., Wisnu, W., Handayani, E. T., Fathin, H. R., & Rusdianto, A. S. (2023). Effectiveness of Sugarcane Bagasse Adsorbent Combined with Aquaponics System as an Innovation for Absorbing Contaminants in Sugar Industry Wastewater. International Journal on Food, Agriculture and Natural Resources, 4(4), 70-76.
DOI: 10.46676/ij-fanres.v4i4.234
Google Scholar
[22]
Irawan, C., Putra, M., Wijayanti, H., Juwita, R., Meliana, Y., & Nata, I. (2021). The amine functionalized sugarcane bagasse biocomposites as magnetically adsorbent for contaminants removal in aqueous solution. Molecules, 26(19), 5867.
DOI: 10.3390/molecules26195867
Google Scholar
[23]
Kale, V. (2016). Consequence of temperature, pH, turbidity and dissolved oxygen water quality parameters. International Advanced Research Journal in Science, Engineering and Technology, 3(8), 186–190.
Google Scholar
[24]
Nandan, S., Moorchilot, V., Asokan, A., Turabdzhanov, S., Mirzarakhmatov, U., Rakhimova, L., Aravindakumar, C.T., & Aravind, U. (2024). Coir based biofiltration system for enhanced removal of water pollutants. Next Sustainability, 4, 1-12.
DOI: 10.1016/j.nxsust.2024.100045
Google Scholar
[25]
Nikolov, A., Dobreva, L., Danova, S., Miteva-Staleva, J., Krumova, E., Rashev, V., & Vilhelmova-Ilieva, N. (2023). Natural and modified zeolite clinoptilolite with antimicrobial properties: a review. Acta Microbiologica Bulgarica, 39(2), 147–161.
DOI: 10.59393/amb23390207
Google Scholar
[26]
Jiang, N., Shang, R., Heijman, S., & Rietveld, L. (2020). Adsorption of triclosan, trichlorophenol and phenol by high-silica zeolites: Adsorption efficiencies and mechanisms. Separation and Purification Technology, 235, 1-9.
DOI: 10.1016/j.seppur.2019.116152
Google Scholar
[27]
Oyewale, A., Adesakin, T., & Aduwo, A. (2019). Environmental impact of heavy metals from poultry waste discharged into the Olosuru Stream, Ikire, Southwestern Nigeria. Journal of Health and Pollution, 9(22), 1–10.
DOI: 10.5696/2156-9614-9.22.190607
Google Scholar
[28]
Lemessa, G., Gabbiye, N., & Alemayehu, E. (2023). Waste to resource: utilization of waste bagasse as an alternative adsorbent to remove heavy metals from wastewaters in sub-Saharan Africa: A review. Water Practice and Technology, 1–15.
DOI: 10.2166/wpt.2023.011
Google Scholar
[29]
Meky, N., Salama, E., Soliman, M., Naeem, S., Ossman, M., & Elsayed, M. (2024). Synthesis of nano-silica oxide for heavy metal decontamination from aqueous solutions. Water Air Soil Pollution, 235(154).
DOI: 10.1007/s11270-024-06944-6
Google Scholar
[30]
Mazibuko, M., Onwubu, S., Mokhothu, T., Paul, V., & Mdluli, P. (2024). Unlocking heavy metal remediation potential: A review of cellulose–silica composites. Sustainability, 16(3265), 1–31.
DOI: 10.3390/su16083265
Google Scholar
[31]
Lang'at, E., Omolo, J., & Ongoma, P. (2024). Sugarcane Bagasse Based Adsorbents and their Adsorption Efficacy on Removal of Heavy Metals from Nakuru Industrial Wastewater: Optimization, Kinetic and Thermodynamic Aspects. Asian Journal of Applied Chemistry Research, 15(4), 276-293.
DOI: 10.9734/ajacr/2024/v15i4311
Google Scholar
[32]
Yogeshwaran, V., & Priya, A. (2021). Experimental studies on the removal of heavy metal ion concentration using sugarcane bagasse in batch adsorption process. Desalination and Water Treatment, 224, 256–272.
DOI: 10.5004/dwt.2021.27160
Google Scholar
[33]
Mokhtar, H., & Tajuddin, R. (2016). The effect of nanosilica extracted from sugarcane bagasse on formulation of flat sheet nanofiltration membrane. International Journal of Chemical Engineering and Applications, 7(5), 323–326.
DOI: 10.18178/ijcea.2016.7.5.598
Google Scholar
[34]
Nguyen, L., Kha, V.-P., & Thai, N. (2024). Sugarcane bagasse-derived biochar modified by alkali for enriching surface functional groups to effectively treat ammonium-contaminated water. Environmental Geochemistry and Health, 46(474).
DOI: 10.1007/s10653-024-02248-0
Google Scholar
[35]
Wasielewski, S., Rott, E., Minke, R., & Steinmetz, H. (2018). Evaluation of Different Clinoptilolite Zeolites as Adsorbent for Ammonium Removal from Highly Concentrated Synthetic Wastewater. Water, 10(584), 1-17.
DOI: 10.3390/w10050584
Google Scholar
[36]
Kumar Jha, V., & Hayashi, S. (2009). Modification on natural clinoptilolite zeolite for its NH4+ retention capacity. Journal of Hazardous Materials, 169, 29-35.
DOI: 10.1016/j.jhazmat.2009.03.052
Google Scholar
[37]
Keawkumay, C., Krukkratoke, P., Youngjan, S., Osakoo, N., Deekamwong, K., Khemthong, P., Phanthasri, J., Prayoonpokarach, S. & Wittayakun, J. (2024). Extraction of silica from sugarcane bagasse ash and its utilization in zeolite 4A synthesis for CO₂ adsorption. Royal Society of Chemistry, 14, 19472–19482.
DOI: 10.1039/D4RA02207F
Google Scholar