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2017 | 26 | 5 |

Tytuł artykułu

Removal of actacid orange-RL dye using biocomposites: modeling studies

Warianty tytułu

Języki publikacji

EN

Abstrakty

EN
Textile industry wastewater plays an important role in environmental pollution. In the present study, the removal of actacid orange-RL (AO-RL) dye was carried out in batch mode with biocomposites. The optimum pH, biosorbent dose, equilibrium time, initial dye concentration, and temperature for maximum dye adsorption were recorded in the range of 3-6, 0.05 g, 60 min and 125-150 mg/L and 30ºC, respectively. Langmuir and Freundlich biosorption isotherms showed the satisfactorily fitness on equilibrium biosorption data, whereas the pseudo first-order and pseudo second-order both showed the satisfactorily fitness on biosorption kinetic data. The characterization of efficient biosorbents was carried out using FT-IR and SEM techniques, which revealed a significant change in biocomposite as a result of dye adsorption. Based on results, we can conclude that the biocomposite could be an efficient adsorbent for the adsorption of dyes from textile wastewater.

Słowa kluczowe

Wydawca

-

Rocznik

Tom

26

Numer

5

Opis fizyczny

p.2125-2134,fig.,ref.

Twórcy

autor
  • Department of Chemistry, Environmental and Material Chemistry Laboratory, University of Agriculture, Faisalabad 38040, Pakistan
autor
  • Department of Chemistry, Environmental and Material Chemistry Laboratory, University of Agriculture, Faisalabad 38040, Pakista
autor
  • Department of Applied Chemistry, Govt College University, Faisalabad, Pakistan
autor
  • Department of Chemistry, Environmental and Material Chemistry Laboratory, University of Agriculture, Faisalabad 38040, Pakistan
autor
  • Department of Biochemistry, University of Agriculture, Faisalabad 38040, Pakistan

Bibliografia

  • 1. QURESHI K., AHMAD M., BHATTI I., IQBAL M., KHAN A., Cytotoxicity reduction of wastewater treated by advanced oxidation process. Chem. Int. 1, 53, 2015.
  • 2. SAYED M., Efficient removal of phenol from aqueous solution by the pulsed high-voltage discharge process in the presence of H₂O₂. Chem. Int. 1, 81, 2015.
  • 3. SHINDY H., 2016. Basics in colors, dyes and pigments chemistry: A review. Chem. Int. 2, 29, 2016.
  • 4. SHINDY H., GOMA M., HARB N., Novel carbocyanine and bis carbocyanine dyes: synthesis, visible spectra studies, solvatochromism and halochromism. Chem. Int. 2, 222, 2016.
  • 5. STIRKE A., APETREI R.M., KIRSNYTE M., DEDELAITE L., BONDARENKA V., JASULAITIENE V., PUCETAITE M., SELSKIS A., CARAC G., BAHRIM. G. Synthesis of polypyrrole microspheres by Streptomyces spp. Polymer. 99, 84, 2016.
  • 6. BABARINDE A., OGUNDIPE K., SANGOSANYA K.T., AKINTOLA B.D., ELIZABETH HASSAN A.-O., Comparative study on the biosorption of Pb(II), Cd(II) and Zn(II) using Lemon grass (Cymbopogon citratus): kinetics, isotherms and thermodynamics. Chem. Int. 2, 89, 2016.
  • 7. BABARINDE A., ONYIAOCHA G.O., Equilibrium sorption of divalent metal ions onto groundnut (Arachis hypogaea) shell: kinetics, isotherm and thermodynamics. Chem. Int. 2, 37, 2016.
  • 8. IQBAL M., KHERA R.A., Adsorption of copper and lead in single and binary metal system onto Fumaria indica biomass. Chem. Int. 1, 157b, 2015.
  • 9. NOREEN S., BHATTI H.N., NAUSHEEN S., ZAHID M., ASIM. S. Biosorption of Drimarine Blue HF-RL using raw, pretreated, and immobilized peanut hulls. Desalin. Water Treat. 52, 7339, 2014.
  • 10. NOREEN S., BHATTI. H.N. Fitting of equilibrium and kinetic data for the removal of Novacron Orange P-2R by sugarcane bagasse. J. Ind. Eng. Chem. 20, 1684, 2014.
  • 11. ANSARI R., DEZHAMPANAH. H. Application of polyaniline/sawdust composite for removal of Acid Green 25 from aqueous solutions: Kinetics and thermodynamic studies. Eur. Chem. Bull. 2, 220, 2013.
  • 12. RASHID A., BHATTI H.N., IQBAL M., NOREEN S., Fungal biomass composite with bentonite efficiency for nickel and zinc adsorption: a mechanistic study. Ecol. Eng. 91, 459, 2016.
  • 13. Shoukat S., Bhatti H.N., Iqbal M., Noreen S. Mango stone biocomposite preparation and application for crystal violet adsorption: A mechanistic study. Micropor. Mesopor. Mater. 239, 180, 2017.
  • 14. ANSARI R. Application of polyaniline and its composites for adsorption/recovery of chromium (vi) from aqueous solutions. Acta Chim. Slov. 53, 88, 2006.
  • 15. PALANISAMY P.N., AGALYA A., SIVAKUMAR. P. Polymer composite - A potential biomaterial for the removal of reactive dye. Electron. J. Chem. 9, 1823, 2012.
  • 16. JANAKI V., OH B.T., SHANTHI K., LEE K.J., RAMASAMY A., KAMALA-KANNAN. S. Polyaniline/chitosan composite: An eco-friendly polymer for enhanced removal of dyes from aqueous solution. Synth. Met. 162, 974, 2012.
  • 17. KARTHIKEYAN M., KUMAR K.S., ELANGO. K. Batch sorption studies on the removal of fluoride ions from water using eco-friendly conducting polymer/bio-polymer composites. Desalination. 267, 49, 2011.
  • 18. JANAKI V., VIJAYARAGHAVAN K., OH B.T., LEE K. J., MUTHUCHELIAN K., RAMASAMY A., KAMALAKANNAN. S. Starch/polyaniline nanocomposite for enhanced removal of reactive dyes from synthetic effluent. Carbohyd. Poly. 90, 1437, 2012.
  • 19. ANSARI R., MOSAYEBZADEH Z. Removal of eosin y, an anionic dye, from aqueous solutions using conducting electroactive polymers. Iran. Poly. J. 19, 541, 2010.
  • 20. HEIBATI B., RODRIGUEZ-COUTO S., AL-GHOUTI M.A., ASIF M., TYAGI I., AGARWAL S., GUPTA V.K. Kinetics and thermodynamics of enhanced adsorption of the dye ar 18 using activated carbons prepared from walnut and poplar woods. J. Mol. Liq. 208, 99, 2015.
  • 21. BASERI J.R., PALANISAMY P.N., SIVAKUMA R.P. Application of polyanilinenano composite for the adsorption of acid dye from aqueous solutions. Electron. J. Chem. 9, 1266, 2012.
  • 22. Sadaf S., Bhatti. H.N. Batch and fixed bed column studies for the removal of indosol yellow bg dye by peanut husk. J. Taiwan. Inst. Chem. Eng. 45, 541, 2014.
  • 23. AHMED S.M., EL-DIB F.I., EL-GENDY N.S., SAYED W.M., EL-KHODARY. M. A kinetic study for the removal of anionic sulphonated dye from aqueous solution using nano polyaniline and baker’s yeast. Arabian J. Chem. 9, S1721, 2012.
  • 24. TAHIR M.A., BHATTI H.N., IQBAL M. Solar red and brittle blue direct dyes adsorption onto eucalyptus angophoroides bark: Equilibrium, kinetics and thermodynamic studies. J. Environ. Chem. Eng. 4, 2431, 2016.
  • 25. BANIMAHD KEIVANI M., ZARE K., AGHAIE H., ANSARI. R. Removal of methylene blue dye by application of polyaniline nano composite from aqueous solutions. J. Phys. Theoret. Chem. 6, 63, 2009.
  • 26. TAYEBI H.A. Synthesis of polyaniline/nanosilica nanocomposite for removal of reactive orange 16 from aqueous solutions. Iran. J. Org. Chem. 8, 1737, 2016.
  • 27. FAYOUD N., TAHIRI S., ALAMI YOUNSSI S., ALBIZANE A., GALLART-MATEU D., CERVERA M., DE LA GUARDIA. M. Kinetic, isotherm and thermodynamic studies of the adsorption of methylene blue dye onto agrobased cellulosic materials. Desalin. Water Treat. 57, 16611, 2016.
  • 28. SADAF S., BHATTI H.N., ALI S., REHMAN. K.U. Removal of indosol turquoise FBL dye from aqueous solution by bagasse, a low cost agricultural waste: Batch and column study. Desalin. Water Treat. 52, 184, 2014.
  • 29. ESMAELI A., JOKAR M., KOUSHA M., DANESHVAR E., ZILOUEI H., KARIMI. K. Acidic dye wastewater treatment onto a marine macroalga, nizamuddina zanardini (phylum: Ochrophyta). Chem. Eng. J. 217, 329, 2013.
  • 30. ASGHER M., BHATTI. H.N. Removal of reactive blue 19 and reactive blue 49 textile dyes by citrus waste biomass from aqueous solution: Equilibrium and kinetic study. Can. J. Chem. Eng. 90, 412, 2012.
  • 31. AKAR T., OZCAN A.S., TUNALI S., OZCAN. A. Biosorption of a textile dye (acid blue 40) by cone biomass of thuja orientalis: Estimation of equilibrium, thermodynamic and kinetic parameters. Bioresour. Technol. 99, 3057, 2008.
  • 32. ABBAS A., MURTAZA S., SHAHID K., MUNIR M., AYUB R., AKBER. S. Comparative study of adsorptive removal of congo red and brilliant green dyes from water using peanut shell. Middle-East J. Sci. Res. 11, 828, 2012.
  • 33. HO Y., MCKAY G., WASE D., FORSTER C. Study of the sorption of divalent metal ions on to peat. Adsorpt. Sci. Technol. 18, 639, 2000.
  • 34. JAFARINEJAD S. Control and treatment of sulfur compounds specially sulfur oxides (SOx) emissions from the petroleum industry: a review. Chem. Int. 2, 242, 2016.
  • 35. JAMAL M.A., MUNEER M., IQBAL M. Photo-degradation of monoazo dye blue 13 using advanced oxidation process. Chem. Int. 1, 12, 2015.
  • 36. MAJOLAGBE A.O., ADEYI A.A., OSIBANJO O. Vulnerability assessment of groundwater pollution in the vicinity of an active dumpsite (Olusosun), Lagos, Nigeria. Chem. Int. 2, 232, 2016.
  • 37. NGOBIRI N., OKOROSAYE-ORUBITE K. Adsorption and corrosion inhibition characteristics of two medicinal molecules. Chem. Int. 3, 185, 2017.
  • 38. PETER U.C., CHINEDU U. Model prediction for constant area, variable pressure drop in orifice plate characteristics in flow system. Chem. Int. 2, 80, 2016.
  • 39. UKPAKA C. BTX Degradation: The concept of microbial integration. Chem. Int. 3, 8, 2016.
  • 40. UKPAKA C. Development of model for bioremediation of crude oil using moringa extract. Chem. Int. 2, 19, 2016.
  • 41. UKPAKA C. Empirical model approach for the evaluation of pH and conductivity on pollutant diffusion in soil environment. Chem. Int. 2, 267, 2016.
  • 42. UKPAKA C. Predictive model on the effect of restrictor on transfer function parameters on pneumatic control system. Chem. Int. 2, 128, 2016.

Typ dokumentu

Bibliografia

Identyfikatory

Identyfikator YADDA

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