Adsorption methyl orange in aquatic solution using local palm stems from Laghouat region

M. Guermit, M. Djedid, A. Boudaoud, C. Ad, A. Soltani, M. Benalia

Abstract


Abstract:This study consists of evaluating the biosorption on a local material, palm stems from the Laghouat region. In order to optimize this process, several parameters such as: pH, contact time, initial dye concentration and ionic strength were also studied. Monitoring of the kinetics of direct absorption of methyl orange by palm stems and the isothermal study.

The results of the batch biosorption tests confirmed the ability of this material to adsorb the studied dye with an equilibrium time of 120 min at pH 4. The modeling shows that the biosorption of the elements considered takes place in a monolayer according to the Langmuir isotherm with a maximum adsorption quantity of methyl orange is estimated at 8.67 mg/g under the optimal conditions obtained.

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References


Hossain, M.Z. Water: the most precious resource of our life. Global Journal of Advanced Research 2 (2015) 1436-1445.

Mehtab, H.; Malik, M.F.; Javed, A.; Arshad, S.; Asif, N.; Zulfiqar, S.; Hanif, J. Water pollution and human health. Environmental Risk Assessment and Remediation 1 (2017) 2529-8046.

Khatri, N.; Tyagi, S. Influences of natural and anthropogenic factors on surface and groundwater quality in rural and urban areas. Journal of Frontiers in Life Science 8 (2014) 23-39.

AdesolaBabarinde, N.A.; OyebamijiBabalola, J.; AdebowaleSanni, R. Biosorption of lead ions from aqueous solution by maize leaf. International Journal of Physical Sciences 1 (2006) 23-26.

Ojedokun, A.T.; Bello, O.S. Sequestering heavy metals from wastewater using cow dung. Water Resources and Industry 13 (2016) 7-13.

Gajbhiye, T. Review on treatment of dyes in wastewater using organic coagulants. International Research Journal of Modernization in Engineering Technology and Science 2 (2020) 2582-5208.

Kayan, B.; Gözmen, B.; Demirel, M.; Gizir, A.M. Degradation of acid red 97 dye in aqueous medium using wet oxidation and electro-Fenton techniques. Journal of Hazardous Materials 177 (2010) 95-102.

Gheju, M.; Balcu, I. Removal of chromium from Cr(VI) polluted wastewaters by reduction with scrap iron and subsequent precipitation of resulted cations. Journal of Hazardous Materials 196 (2011) 131-138.

Religa, P.; Kowalik-Klimczak, A.; Gierycz, P. Study on the behavior of nanofiltration membranes using for chromium (III) recovery from salt mixture solution. Desalination 315 (2013) 115-123.

Wang, J.; Can, C.C. The current status of heavy metal pollution and treatment technology development in China. Environmental Technology Reviews 4 (2020) 1-15.

Sorouraddin, S.M.; Farajzadeh, M.A.; Okhravi, T. Cyclohexylamine as extraction solvent and chelating agent in extraction and preconcentration of some heavy metals in aqueous samples based on heat-induced homogeneous liquid-liquid extraction. Journal of Talanta 175 (2017) 1-574.

Femina, C.C.; Senthil, K.P.; Saravanan, A.; Saravanan, A.; Joshiba, J.G.; Mu, N. Efficient techniques for the removal of toxic heavy metals from aquatic environment. Journal of Environmental Chemical Engineering 5 (2017) 2083-3064.

Djellabi, R..;Ghorab, M.F. Photoreduction of toxic chromium using TiO2- immobilized under natural sunlight: effects of some hole scavengers and process parameters. Desalination and Water Treatment 53 (2014) 1900-1907.

Dhaliwal, S.S.; Taneja, J.S.P.K.; Mandal, A. Remediation techniques for removal of heavy metals from the soil contaminated through different sources. Environmental Science and pollution Research 27 (2020) 1319-1333.

Sulaymon, A.H.; Ebrahim, S.E.; Abdulla, S.M.; Al-Musawi, T.J. Desalination and water treatment 24 (2010) 344-352.

Thajeel, A.Z.; Raheem, M.M., Al-Faize. Production of activated carbon from local raw materials using physical and chemical preparation methods. Journal of Chemical and Pharmaceutical Research 5 (2013) 251-259.

Boudaoud, A.; Djedid, M..; Benalia, M..; Ad, C.; Bouzar, N.; Elmsellem, H. Removal of nickel (II) and cadmium (II) ions from wastewater by palm fibers. Scientific Study & Research, Chemistry & Chemical Engineering, Biotechnology, Food Industry 18 (2017) 391-406.

Yucel, T.T. Investigation of Some Parameters Affecting Methyl Orange Removal by Fusariumacuminatum. Journal of Brazilian Archives of Biology and Technology 61 (2018) 1678-4324.

Khelifi, O.; Mehrez, I.; Younsi, M.; Nacef, M.; Affoune, A.M. Methyl orange adsorption on biosorbent derived from mango seed kernels. Larhyss Journal 36 (2018) 145-156.

Kowanga, K.D.; Gatebe, E.; Godfrey OmareMauti, G.O.; Mauti, E.M. Kinetic, sorption isotherms, pseudo-first-order model and pseudosecond-order model studies of Cu(II) and Pb(II) using defatted Moringaoleifera seed powder. The Journal of Phytopharmacology 5 (2016) 2230-480X.

Domga, R.; Tcheka, C.; Anombogo, G.A.M.; Kobbe-Dama, N.; Tchatchueng, J.B.; Tchigo, A.; Tsafam, A. Batch equilibrium adsorption of methyl orange from aqueous solution Usinganimal activated carbon from gudali bones. International Journal of Innovation Sciences and Research 7 (2016) 798-805.

Langmuir, I. The adsorption of gases on plane surfaces of glass, mica and platinum.Journal of the American Chemical Society 40 (9) (1918) 1361-1403.

Freundlich, H.;Wilfried, H. The Adsorption of cis- and trans-Azobenzene. Journal of the American Chemical Society 61 (8) (1939) 2228-2230.

Saha, T.K.; Bhoumik, N.C.; Karmaker, S.; Ahmed, M.G.; Ichikawa, H.; Fukumori, Y. Adsorption of Methyl Orange onto Chitosan from Aqueous Solution. Journal of Water Resource and Protection 2 (2010) 898-906.

Barag, W.M.; Troush, A.A. Equilibrium and Kinetic Studies of Biosorption of Methyl Orange dye from Aqueous Solution onto DodonaeaAngustifolia (sand olive) Tree. University Bulletin 2 (2016) 1-22.

Iida, Y.; Kozuka, T.; Tuziuti, T.; Yasui, K. Sonochemically enhanced adsorption and degradation of methyl orange with activated aluminas. Ultrasonics 42 (2004) 635-639.

Sejie, F.P.; Nadiye-Tabbiruka, M.S.; Removal of Methyl Orange (MO) from Water by adsorption onto Modified Local Clay (Kaolinite). Physical Chemistry 6 (2016) 39-48.


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