Vol. 29 No. 2 (2026) Cover Image
Vol. 29 No. 2 (2026)

Published: June 20, 2026

Pages: 353-363

Articles

Synthesis Eco-friendly Biochar from Spent Coffee for Using to Remove Acidic and Basic Dyes from Aqueous Media

Abstract

This study focuses on reuse of biowaste material locally available as spend coffee to synthesis high surface area biochar and evaluate its potential to remove dyes with acidic and basic in nature, as Acid Fuchsin and Methylene Blue dyes. The biochar was fabricated using chemical activation with various concentrating (20, 30, 50) vol. % of phosphoric acid (H3PO4). The pyrolysis process carried out in a tubular furnace under flow of nitrogen (N2) at 600°C for 3 hours. The final prepped biochar was analyzed using various techniques such as XRD, SEM, FTIR, TGA, EDX, N2-adsorption, BET, and pore volume (Vpore). Furthermore, batch adsorption experiments were conducted to remove Acid Fuchsin and Methylene Blue dyes from aqueous solutions under different variables of pH of solution (2-8), contact time (0-240) min, initial dye concentration (20-200) ppm, and weight of dosage (0.1-0.5) g/L. The results show that the best surface area and pore volume has been archived for the prepared biochar at 30% H3PO4 concentration were (1385.269 m2/g and 1.12 cm3/g) respectively. As well as, the maximum removal percentage was 92.5% for Fuchsin dye and 90% for Methylene Blue dye achieved at 180 minutes of adsorbing time, with maximum removal achieved with initial dye concentration of 20 ppm, 6.5 pH solution, and 0.3 g/L adsorbent. The study found that Freundlich isotherm and kinetic adsorption models fit well with the batch experimental data, which indicates homogenous distribution and limiting active sites with adsorption capacity (384.61) mg/g and (357.14) mg/g for Acid Fuchsin and Methylene Blue dyes, respectively. While, the pseudo-second-order kinetic model indicates a physic-sorption is the limiting step.

References

  1. Liu, Y., Chen, J., Duan, D., Zhang, Z., Liu, Ch., Cai, W., and Zheo, Z., “Environmental Impacts and Biological Technologies toward Sustainable Treatment of Textile Dyeing Wastewater: A Review, Sustainability” vol. 16(24), 10867, Dec.2024, https://doi.org/10.3390/su162410867 .
  2. Abhisek, K., Vhatkar, Sh., Mathew, H., Singh, P., and Oraon, R., “A critical review on the challenges and techno economic assessment of dyes removal technologies from waste water, "Discover Chemistry., vol.2 (41), Mar.2025, https://doi.org/10.1007/s44371-025-00111-4 .
  3. Ullah, S., Ahmad Shah, S., Altaf, M., Hossain, I., El Sayed, M., Kallel, M., El-Bahy, Z., Rehman, A., Najam, T., Nazir, M.,“Activated carbon derived from biomass for wastewater treatment: Synthesis, application and future challenges,” Journal of Analytical and Applied Pyrolysis.,vol.179, 106480,May.2024, https://doi.org/10.1016/j.jaap.2024.106480
  4. Aoua, F., Attia, A., Dammak, L., Ben Amar, R., and Deratani, A., “Activated Carbon Prepared from Waste Coffee Grounds: Characterization and Adsorption Properties of Dyes, Materials” 17(13), 3078,Jun.2024, https://doi.org/10.3390/ma17133078
  5. Reza, M., Yun, C., Afroze, S., Radenahmad, N., Bakar, M., Saidur, R., and Azad, A.,“Preparation of activated carbon from biomass and its’ applications in water and gas purification, a review,”Arab Journal of Basic and Applied Sciences., 27(1), 208–238,May.2020, https://doi.org/10.1080/25765299.2020.1766799
  6. Nishi, L., Ribeiro, A. C., Paraíso, C. M., Cusioli, D. A. G., Beltran, L. B., & Cusioli, L. F.,“Low-Cost Adsorbents for Water Treatment: A Sustainable Alternative for Pollutant Removal,” Processes., 13(12), 4088,Dec.2025, https://doi.org/10.3390/pr13124088
  7. Kouotou, D., Manga, H. N., and Baaziz, W., "Preparation and characterization of activated carbons from coffee grounds for the removal of pollutants". Journal of Environmental Management, vol. 301, 113840, Jan. 2022, https://doi.org/10.1016/j.jenvman.2021.113840
  8. Tran, T. H., Nguyen, H. N., and Le, T. H., "Spent coffee grounds-derived biochar for efficient removal of cationic dyes from aqueous solutions". Chemosphere, vol. 310, 136821, Jan.2023, https://doi.org/10.1016/j.chemosphere.2022.136821
  9. Al-Zahrani, A. A., Al-Dosari, M. A., and Khan, M. A., "Sustainable biomass-based adsorbents for wastewater treatment: A review of recent advancements". Environmental Nanotechnology, Monitoring & Management, vol. 21, 100895, Dec. 2024. https://doi.org/10.1016/j.enmm.2023.100895
  10. Nguyen, V. T., Nguyen, T. B., and Chen, C. W. (2024). Optimization of porosity in biochar derived from agricultural waste for enhanced dye adsorption. Journal of Cleaner Production, vol. 434, 140125, 2024. https://doi.org/10.1016/j.jclepro.2023.140125
  11. Benkhaya, S., M'rabbet, S., and El Harfi, A. “A Review on Classifications, Recent Synthesis and Applications of Textile Dyes,” Inorganic Chemistry Communications., vol. 115, 107891, May.2020, https://doi.org/10.1016/j.inoche.2020.107891
  12. Lellis, B., Fávaro-Polonio, C., Pamphile, J., and Polonio, J.,“Effects of textile dyes on health and the environment and bioremediation potential of living organisms,” Biotechnology Research and Innovation., 3(2) 275-290,2019, https://doi.org/10.1016/j.biori.2019.09.001
  13. Akbarnejad, S., Amooey, A., and Ghasemi, Sh.,“High effective adsorption of acid fuchsin dye using magnetic biodegradable polymer-based nano-composite from aqueous solutions,” Micro-chemical Journal, vol. 149 103966, Sep.2019, https://doi.org/10.1016/j.microc.2019.103966
  14. Kayani, K., Hamad, D., Mohammad, N., Mohammed, S., Ahmed, H., Salih, M., “Uses, toxicity, and removal of fuchsin dye from wastewater using low-cost adsorbents,” Desalination and Water Treatment., vol. 323, 101395,Jul.2025, https://doi.org/10.1016/j.dwt.2025.101395
  15. Renita, A., Kumar, P., and Jabasingh, S.,“Redemption of acid fuchsin dye from wastewater using de-oiled biomass: Kinetics and isotherm analysis,” Bioresource Technology Reports., vol. 7,100300,Sep.2019, https://doi.org/10.1016/j.biteb.2019.100300 .
  16. Vinitha, G., and Ramalingam, A.,“Nonlinear studies of Acid Fuchsin dye in liquid and solid media,” Spectrochimica Acta Part A: Molecular and Biomolecular Spectroscopy., vol. 69(4), pp. 1160–1164,Apr.2008, https://doi.org/10.1016/j.saa.2007.06.016
  17. Bollinger, J., Lima, E., Mouni, L., Salvestrini, S., and Tran, H.,“Molecular properties of methylene blue, a common probe in sorption and degradation studies: a review,” Environmental Chemistry Letters., vol. 23, 1403–1424, Jun. 2025.
  18. Parlayici, Ş., and Aslı Aras, A., “Synthesis of a novel green biopolymer based composites beads for removal of methylene blue from aquatic medium: isotherm, thermodynamic and kinetic investigation,” Polymer Bulletin., vol. 81, 6603–6640,Feb.2024, https://doi.org/10.1007/s00289-024-05164-6
  19. Krishna Murthy, T. P., Gowrishankar, B. S., Chandra Prabha, M. N., Kruthi, M., and Hari Krishna, R.,“ Studies on batch adsorptive removal of malachite green from synthetic wastewater using acid treated coffee husk: Equilibrium, kinetics and thermodynamic studies,” Microchemical Journal., vol. 146, 192-201,May.2019, https://doi.org/10.1016/j.microc.2018.12.067
  20. Mahmoud, D. K., Salleh, M. A. M., Karim, W. A. W. A., Idris, A., and Abidin, Z. Z.,“Batch adsorption of basic dye using acid treated kenaf fibre char: Equilibrium, kinetic and thermodynamic studies,” Chemical Engineering Journal., vol. 181-182, 449–457,Feb.2012, https://doi.org/10.1016/j.cej.2011.11.116
  21. Ahmad, M. A., and Rahman, N. K.,“Equilibrium, kinetics and thermodynamic of Remazol Brilliant Orange 3R dye adsorption on coffee husk-based activated carbon,” Chemical Engineering Journal., vol. 170(1), 154 – 161,May.2011, https://doi.org/10.1016/j.cej.2011.03.045
  22. Chiang, C., Chen, J., and Lin, J.,“Preparation of pore-size tunable activated carbon derived from waste coffee grounds for high adsorption capacities of organic dyes,” Journal of Environmental Chemical Engineering., vol. 8(4), 103929,Aug.2020, https://doi.org/10.1016/j.jece.2020.103929
  23. Mhemed, H., Gallego, M., Largeau, J., Kordoghli, S., Zagrouba, F., and Tazerout, M.,“Gas adsorptive desulfurization of thiophene by spent coffee grounds-derived carbon optimized by response surface methodology: Isotherms and kinetics evaluation,” Journal of Environmental Chemical Engineering., vol. 8(5), 104036,Oct.2020, https://doi.org/10.1016/j.jece.2020.104036
  24. Nabeel, N., and Adulaziz, Y. “High surface area peat moss biochar and its potential for Chromium metal adsorption from aqueous solutions,” South African Journal of Chemical Engineering., vol. 46, 22_34,Oct.2023, https://doi.org/10.1016/j.sajce.2023.06.006
  25. Chien, H., Kuo, C., Kao, L., Lin, G., and Chen, P.,“Polysaccharidic spent coffee grounds for silver nanoparticle immobilization as a green and highly efficient biocide,” International Journal of Biological Macromolecules., vol. 140, 168-176,Nov.2019, https://doi.org/10.1016/j.ijbiomac.2019.08.131
  26. Li, X., Strezov, V., and Kan, T.,“Energy recovery potential analysis of spent coffee grounds pyrolysis products,” Journal of Analytical and Applied Pyrolysis., vol.110, 79–87,Nov.2014, https://doi.org/10.1016/j.jaap.2014.08.012
  27. Afroze, S. and Sen,T.K.,“A Review on Heavy Metal Ions and Dye Adsorption from Water by Agricultural Solid Waste Adsorbents,” Water, Air, and Soil Pollution., vol. 229, article number 225,Jun.2018, https://doi.org/10.1007/s11270-018-3869-z
  28. Mariana, M., Mulana, F., Yunardi, I., T. A., and Hafdiansyah, M.,“Activation and characterization of waste coffee grounds as bio-sorbent,” IOP Conference Series: Materials Science and Engineering., vol. 334, 012029,Mar.2018, https://doi.org/10.1088/1757-899x/334/1/012029
  29. Batista, G. A., Silva, M. L. M., Gomes, W. de P., Neves, I. C. O., Mól, P. C. G., Resende, J. V. de, and Soares, J. R.,“Preparation of mesoporous activated carbon from defective coffee beans for adsorption of fresh whey proteins,” Acta Scientiarum. Technology., vol. 42, 45914,Dec.2019, https://doi.org/10.4025/actascitechnol.v42i1.45914
  30. Ravindran, R., Desmond, C., Jaiswal, S., and Jaiswal, A. K.,“Optimisation of organosolv pretreatment for the extraction of polyphenols from spent coffee waste and subsequent recovery of fermentable sugars,” Bioresource Technology Reports., vol. 3, 7–14,Sep.2018, https://doi.org/10.1016/j.biteb.2018.05.009
  31. Mondal, S. and Majumder, S.K., “Honeycomb-like porous activated carbon for efficient copper (II) adsorption synthesized from natural source: Kinetic study and equilibrium isotherm analysis,” Journal of Environmental Chemical Engineering., 7(4), p. 103236,Aug.2019, https://doi.org/10.1016/j.jece.2019.103236
  32. Djilani, C., Zaghdoudi, R., Djazi, F., Bouchekima, B., Lallam, A., Modarressi, A., and Rogalski, M., “Adsorption of dyes on activated carbon prepared from apricot stones and commercial activated carbon,” Journal of the Taiwan Institute of Chemical Engineers., vol. 53, 112–121,Aug.2015, https://doi.org/10.1016/j.jtice.2015.02.025
  33. Yagub, M., Sen, T., Afroze, S., and Ang, H.,“Dye and its removal from aqueous solution by adsorption: A review,” Advances in Colloid and Interface Science., vol. 209, 172–184,Apr.2014, https://doi.org/10.1016/j.cis.2014.04.002
  34. Strebel, A., Behringer, M., Hilbig, H., Machner, A., and Helmreich, B.,“Anionic azo dyes and their removal from textile wastewater through adsorption by various adsorbents: a critical review,” Frontiers in environmental engineering., vol. 3.,Jan.2024,https://doi.org/10.3389/fenve.2024.1347981
  35. Wang, L. Zhang, J. and Wang, A.,“Fast removal of methylene blue from aqueous solution by adsorption onto chitosan-g-poly (acrylic acid) attapulgite composite,” Desalination., vol. 26 (1 – 3), 33–39,Jan.2011, https://doi.org/10.1016/j.desal.2010.07.065
  36. Zhang, C. L., Qiao, G.L., Zhoa, F., and Wang, Y.,“Thermodynamic and kinetic parameters of ciprofloxin adsorption onto modified coal fly ash from aqueous solution,” J. of Molecular Liquids., vol. 163 (1), 35-6,Sep. 2011, https://doi.org/10.1016/j.molliq.2011.07.005
  37. El-kady, A.A. Carleer, R. Yperman, J. and Farah, J. Y.,“Optimum Conditions for adsorption of Lindane by Activated carbon Derived from date stones,” World Applied Sciences Journal., vol. 27(2): 269-279,2013, https://doi.org/10.5829/idosi.wasj.2013.27.02.8197
  38. Alessandro C.M., Osvaldo P., André, L., Cazetta, K., Bedin, C., Diego, A.S., Yamazaki, F., and Gisele, F.G.,“Removal of tetracycline by NaOH - activated carbon produced from macadamia nut shells: Kinetic and equilibrium studies,” Chemical Engineering Journal., vol. 260, 291-299,Jan.2015, https://doi.org/10.1016/j.cej.2014.09.017