Adsorption Evaluation of Food and Industrial Dyes on Nano copper oxide
محورهای موضوعی : Journal of Chemical Reactivity and SynthesisMohammad Hossein Farjam 1 , Mohammad Kazem Mohammadi 2 , Ali Mehraki 3
1 - Department of Chemistry, Firoozabad Branch, Islamic Azad University, Firoozabad, Iran
2 - Faculty of Science, Ahvaz Branch, Islamic Azad University, Ahvaz, Iran
3 - Department of Chemistry, Firoozabad Branch, Islamic Azad University, Firoozabad, Iran
کلید واژه: absorption, CuO nano particles, Erythrosine dye,
چکیده مقاله :
In This applicable research, investigating absorption of process ofErythrosine dye on Copper oxide Nano particles Adsorbent was studied. First, prepared dyeconcentrations of 6, 8 and 12 mg L-1 and then effects of parameters such as concentrations ofinitial dye, time and pH on dye absorption efficiency were investigated.The dyeconcentrations in different samples were measured via spectrophotometer (505.6 nm for dyeErythrosine wavelength).The results of absorption studies showed that Erythrosine absorption or removal rateswould increase with decreasing the primary dye concentration, increasing reaction time , anddecreasing pH on the basis of the results, copper oxide Nano particles can the absorbErythrosine dye appropriately and efficiency of the process is higher in acidic pH for dyeErythrosine. The maximum dye removal of 93.68 % could be achieved at initial pH 2 usingadsorbent dosage of 0.233gr in 50 ml (12 mg L-1 dye concentration) and agitation rate of 180rpm. Effect of different parameters as kinetic parameters, were calculated pseudo-First andsecond-order kinetic, the Langmuir and Freundlich models Isotherm for absorb of this dye onadsorbent. this results showed that second-order kinetic adherence possessing regressioncoefficient of R2 ≥ 0.999, absorption or removal of Erythrosine on Copper oxide nanoparticles and different parameters for investigating of process rate of absorption in to be thisexperience. Equilibrium data fitted well with the Langmuir model for dye with adsorbent.
[1] Gottlieb, A., C. Shaw, et al. (2003). "The toxicity of textile reactive azo dyes after
hydrolysis and decolourisation." Journal of Biotechnology 101 49–56.
[2] Birhanli, A. and M. Ozmen (2005). "Evaluation of the toxicity and teratogenity of six
commercial textile dyes using the frog embryo teratogenesis assay-xenopus." Drug and
Chemical Toxicology 28: 51–65.
[3] Sanghi, R. and B. Bhattacharya (2002). "Review on decolorisation of aqueous dye
solutions by low cost adsorbents." Coloration Technology 118: 256–269.
[4] Crini, G. (2006). "Non-conventional low-cost adsorbents for dye removal: a review."
Bioresource Technology 97: 1061–1085.
[5] Eren, Z. and F. N. Acar (2006). "Adsorption of reactive black 5 from an aqueous solution
equilibrium and kinetic studies." Desalination 194: 1–10.
[6] Vijayaraghavan, K. and Y. S. Yun (2008). "Biosorption of C.I. Reactive Black 5 from
aqueous solution using acid-treated biomass of brown seaweed Laminaria sp." Dyes and
Pigments 76: 726–732.
[7] Radha, K. V., I. Regupathi, et al. (2005). "Decolorization studies of synthetic dyes using
Phanerochaete chrysosporium and their kinetics." Process Biochem 40: 3337–3345.
[8] Sanghi, R. and B. Bhattacharya (2002). "Review on decolorisation of aqueous dye
solutions by low cost adsorbents." Coloration Technology 118: 256–269.
[9] Rai, H. S., M. S. Bhattacharyya, et al. (2005). "Removal of dyes from the effluent of
textile and dyestuff manufacturing industry: a review of emerging techniques with
reference to biological treatment." Critical Reviews in Environmental Science and
Technology 35: 219– 238.
[10] Robinson, T., B. Chandran, et al. (2001). "Removal ofdyes from a synthetic textile dye
effluent by biosorptionon apple pomace and wheat straw." Water Research 36: 2824–2830.
[11] Delee, W., C. O’Neill, et al. (1998). "Anaerobic treatment of textile effluents: a review."
Journal of Chemical Technology and Biotechnology 73 323–335.
[12] Zee, F. P. v. d. and S. Villaverde (2005). "Combined anaerobic–aerobic treatment of azo
dyes – a short review of bioreactor studies." Water Research 39: 1425–1440.
[13] Crini, G. (2006). "Non-conventional low-cost adsorbents for dye removal: a review."
Bioresource Technology 97: 1061–1085.
[14] Eren, Z. and F. N. Acar (2006). "Adsorption of reactive black 5 from an aqueous
solution equilibrium and kinetic studies." Desalination 194: 1–10.
[15] Mondal, S. (2008). "Methods of dye removal from dye house effluent – an overview."
Environmental Engineering Science 25 383–396.
[16] Pereira, M. F. R., S. F. Soares, et al. (2003). "Adsorption of dyes on activated carbons:
influence of surface chemical groups " Carbon 41: 811–821.
[17] Wang, S. B., Y. Boyjoo, et al. (2005). "Removal of dyes from aqueous solution using
fly ash and red mud." Water Research 39: 129–138.
[18] B.K. Singh, N.S. Rawat, J. Chem. Technol. Biot. 61 (1994) 307-317.
[19] A. Mittal, L.J. Kurup, J. Hazard. Mater. 146 (2007) 243-248.
[20] M. Al-Ghouti, M.A.M. Khraisheh, S.J. Allen, M.N. Ahmad, J. Environ. Manage. 69
(2003) 229-238.
[21] E.L. Cussler, Diffusion Mass Transfer in Fluid Systems, Cambridge University Press,
1997.
[22] M. Dogan, M. Alkan, J. Coll. Interf. Sci. 267 (2003) 32-41.
[23] I. Langmuir, J. Am. Chem. Soc. 40 (1918) 1361-1403.
[24] Y.C. Wong, Y.S. Szeto, W.H. Cheung, G. McKay, Process Biochem. 39 (2004) 695-
704.
[25] Z.G. Hu, J. Zhang, W.L. Chan, Y.S. Szeto, Polymer 47 (2006) 5838-5842.
[26] Y. Al-Degs, M.A.M. Khraisheh, S.J. Allen, M.N. Ahmad, G.M. Walker, Chem. Eng. J.
128 (2007) 163-167.
[27] P.K. Malik, J. Hazard. Mater. 113 (2004) 81-88.
[28] T.A. Kurniawan, G.Y.S. Chan, W.H. Lo, S. Babel, Sci. Total Environ. 366 (2006) 409-
426.