##plugins.themes.bootstrap3.article.main##

Khoirun Nisa Mahmud Tan Hui Wen Zainul Akmar Zakaria

Abstract

Dye pollution in water system is of concern due to its carcinogenicity and its effect on aesthetic feature. One pollutant of interest is methylene blue (MB), which is a cationic dye widely used in industries. In this study, pyrolysis process was used to convert pineapple waste biomass (PWB) into useful adsorbents such as biochar (BC) and activated carbon (AC) to remove MB in water. BC was produced from pyrolysis of PWB (340 °C, 3 hours) whereas AC was prepared from pyrolysis of PWB (500 °C, 1 hour) impregnated with zinc chloride (ZnCl2). Prior to use, AC-PWB and BC-PWB were characterized for surface area, functional groups and surface morphology. Removal of MB was investigated by varying different parameters i.e. initial MB concentration and contact time, adsorbent dosage and temperature. Results obtained showed that AC-PWB has higher adsorption capacity than BC-PWB. The adsorption capacity and adsorption rate increased with increasing initial concentration of MB, adsorbent dosage and temperature until reached equilibrium condition. As a conclusion, PWB can be used as a useful raw material to produce cheap and environmentally friendly adsorbent to remove dye from solution.

Downloads

Download data is not yet available.

##plugins.themes.bootstrap3.article.details##

How to Cite
Mahmud, K. N., Wen, T. H., & Zakaria, Z. A. (2021). Activated carbon and biochar from pineapple waste biomass for the removal of methylene blue. Environmental and Toxicology Management, 1(1), 30–36. https://doi.org/10.33086/etm.v1i1.2036
Section
Articles
Pineapple biomass, Biochar, Activated carbon, ZnCl2 activation, Methylene blue

References

K. Jaji, N. Man, N.M. Nawi, 2018. Factors affecting pineapple market supply in Johor, Malaysia, International Food Research Journal, 25, 366-375.

M.F. Zainuddin, S. Rosnah, M.M. Noriznan, I. Dahlan, 2014. Effect of Moisture Content on Physical Properties of Animal Feed Pellets from Pineapple Plant Waste, Agriculture and Agricultural Science Procedia, 2, 224-230.

A. Upadhyay, J.P. Lama, S. Tawata, 2010. Utilization of pineapple waste: a review, Journal of Food Science and Technology Nepal, 6, 10-18.

O.K. Lun, T.B. Wai, L.S. Ling, 2014. Pineapple cannery waste as a potential substrate for microbial biotranformation to produce vanillic acid and vanillin, International Food Research Journal, 21, 953.

M. Tripathi, J.N. Sahu, P. Ganesan, 2016. Effect of process parameters on production of biochar from biomass waste through pyrolysis: A review, Renewable and Sustainable Energy Reviews, 55, 467-481.

D. Sharath, J. EZANA, Z. SHAMIL, 2017. Production of activated carbon from solid waste rice peel (husk) using chemical activation, Journal of Industrial Pollution Control, 33, 1132-1139.

K. Ahmida, M. Darmoon, F. Al-Tohami, M. Erhayem, M. Zidan, 2015. Effect of Physical and Chemical Preparation on Characteristics of Activated Carbon from Agriculture Solid Waste and their Potential Application, International Institute of Chemical, Biological Environmental Engineering June, 5-6.

N. Ameloot, S. De Neve, K. Jegajeevagan, G. Yildiz, D. Buchan, Y.N. Funkuin, W. Prins, L. Bouckaert, S. Sleutel, 2013. Shortterm CO2 and N2O emissions and microbial properties of biochar amended sandy loam soils, Soil Biol. Biochem., 57, 401-410.

G.A. Adebisi, Z.Z. Chowdhury, P.A. Alaba, 2017. Equilibrium, kinetic, and thermodynamic studies of lead ion and zinc ion adsorption from aqueous solution onto activated carbon prepared from palm oil mill effluent, Journal of Cleaner Production, 148, 958-968.

M.J. Ahmed, S.K. Theydan, 2012. Physical and chemical characteristics of activated carbon prepared by pyrolysis of chemically treated date stones and its ability to adsorb organics, Powder Technol., 229, 237-245.

N. Bordoloi, M.D. Dey, R. Mukhopadhyay, R. Kataki, 2017. ion !Adsorpof Methylene blue and Rhodamine B by using biochar derived from Pongamia glabra seed cover, Water Sci. Technol., 77, 638-646.

M.J. Ahmed, S.K. Dhedan, 2012. Equilibrium isotherms and kinetics modeling of methylene blue adsorption on agricultural wastes-based activated carbons, Fluid Phase Equilib., 317, 9-

K.Y. Foo, B.H. Hameed, 2010. An overview of dye removal via activated carbon adsorption process, Desalination and Water Treatment, 19, 255-274.

M.N. Mahamad, M.A.A. Zaini, Z.A. Zakaria, 2015. Preparation and characterization of activated carbon from pineapple waste biomass for dye removal, Int. Biodeterior. Biodegrad., 102, 274-280.

P.S. Kumar, S. Ramalingam, K. Sathishkumar, 2011. Removal of methylene blue dye from aqueous solution by activated carbon prepared from cashew nut shell as a new low-cost adsorbent, Korean J. Chem. Eng., 28, 149-155.

S.-T. Ong, S.-T. Ha, P.-S. Keng, C.-K. Lee, Y.-T. Hung, Removal of dyes from wastewaters by low-cost adsorbents, in: Handbook of Environment and Waste Management, pp. 929-977.

B. Padhi, 2012. Pollution due to synthetic dyes toxicity carcinogenicity studies and emediation, International Journal of Environmental Sciences, 3, 940.

A. Orfanos, I. Manariotis, H.K. Karapanagioti, 2016. Sorption of Methylene Blue onto Food Industry Byproducts, in: Editor (Ed.)(Eds.) Book Sorption of Methylene Blue onto Food Industry Byproducts.

S.M. Ghoreishi, R. Haghighi, 2003. Chemical catalytic reaction and biological oxidation for treatment of non-biodegradable textile effluent, Chem. Eng. J., 95, 163-169.

R. Qadeer, 2007. Adsorption behavior of ruthenium ions on activated charcoal from nirtic acid medium, Colloids Surf. Physicochem. Eng. Aspects, 293, 217-223.

D. Pathania, S. Sharma, P. Singh, 2017. Removal of methylene blue by adsorption onto activated carbon developed from Ficus carica bast, Arabian Journal of Chemistry, 10, S1445-S1451.

R. Shan, Y. Shi, J. Gu, J. Bi, H. Yuan, B. Luo, Y. Chen, 2020. Aqueous Cr(VI) removal by biochar derived from waste mangosteen shells: Role of pyrolysis and modification on its absorption process, Journal of Environmental Chemical Engineering, 8, 103885.

M. Rafatullah, O. Sulaiman, R. Hashim, A. Ahmad, 2010. Adsorption of methylene blue on low-cost adsorbents: A review, J. Hazard. Mater., 177, 70-80.

L.Y. Leng, A.H.B. Mohd. Hanif, S. Abdul Wahid, 2014. Stability of Pineapple Leaf Residue Chars Generated by Controlled Combustion and by Field Burning in Tropical Peat, CLEAN – Soil, Air, Water, 42, 648-656

Ü. Geçgel, B. Kocabıyık, O. Üner, 2015. Adsorptive Removal of Methylene Blue from Aqueous Solution by the Activated Carbon Obtained from the Fruit of Catalpa bignonioides, Water, Air, Soil Pollut., 226, 238.

M. Ghaedi, A.G. Nasab, S. Khodadoust, M. Rajabi, S. Azizian, 2014. Application of activated carbon as adsorbents for efficient removal of methylene blue: Kinetics and equilibrium study, Journal of Industrial and Engineering Chemistry, 20, 2317-2324.

M.A.A. Zaini, M. Zakaria, S.H. Mohd.-Setapar, M.A. Che-Yunus, 2013. Sludge-adsorbents from palm oil mill effluent for methylene blue removal, Journal of Environmental Chemical Engineering, 1, 1091-1098.

N. Nasuha, B.H. Hameed, A.T.M. Din, 2010. Rejected tea as a potential low-cost adsorbent for the removal of methylene blue, J. Hazard. Mater., 175, 126-132.

R.R. Krishni, K.Y. Foo, B.H. Hameed, 2014. Food cannery effluent, pineapple peel as an effective low-cost biosorbent for removing cationic dye from aqueous solutions, Desalination and Water Treatment, 52, 6096-6103.