217
Views
43
CrossRef citations to date
0
Altmetric
Articles

Removal of acid yellow-17 dye from aqueous solution using eco-friendly biosorbent

, , , , , & show all
Pages 4530-4545 | Received 16 Sep 2012, Accepted 03 Nov 2012, Published online: 11 Feb 2013

References

  • Naveh, Z., Steinberger, E.H., Chaim, S., and Rotmann, A., 1980. Photochemical air pollutants: a threat to mediterranean coniferous forest and upland ecosystems, Environ. Conserv. 7 (1980), pp. 301–309.
  • Meyer, I., Heinrich, J., and Lippold, U., 1999. Factors affecting lead, cadmium and arsenic levels in housedust in a smelter town in Eastern German, Environ. Res. 81 (1999), pp. 32–44.
  • Al-Quran. Surah Al-Anibya (The Prophets), Chapter 21, Verse 30. revealed at: Makka..
  • Ozacar, M., and Sengil, I.A., 2005. Adsorption of metal complex dyes from aqueous solutions by pine sawdust, Bioresour. Technol. 96 (2005), pp. 791–795.
  • Rodel, M., Velicogna, I., and Famiglietti, J., 2009. Satellite-based estimates of groundwater depletion in India, Nature 460 (2009), pp. 999–1003.
  • S. Foster, P. Chilton, Groundwater: the processes and global significance of aquifer degradation, Philos. Trans. Royal Soc. Biol. Sci. 358 (2003) 1957–1972..
  • Helmer, R., and Hespanhol, I., 1997. Water Pollution Control—A Guide to the use of Water Quality Management Principles. London: E & FN Spon; 1997.
  • J.J. Fried, Groundwater Pollution, Elsevier, Amsterdam, 1975..
  • Aguilar, J., Dorronsoro, C., Fernández, E., Fernández, J., García, I., Martín, F., and Simón, M., 2004. Soil pollution by a pyrite mine spill in Spain: evolution in time, Environ. Pollut. 132 (2004), pp. 395–401.
  • Zhang, X., Li, A., Jiang, Z., and Zhang, Q., 2006. Adsorption of dyes and phenol from water on resin adsorbents: effect of adsorbate size and pore size distribution, J. Hazard. Mater. 137 (2006), pp. 1115–1122.
  • Chiou, M., and Li, S., 2002. Equilibrium and kinetic modeling of adsorption of reactive dye on cross-linked chitosan beads, J. Hazard. Mater. 93 (2002), pp. 233–248.
  • Garg, V.K., Amita, M., Kumar, R., and Gupta, R., 2004. Basic dye (methylene blue) removal from simulated wastewater by adsorption using Indian Rosewood sawdust: a timber industry waste, Dyes Pigments 63 (2004), pp. 243–250.
  • Nigam, P., Armour, G., Banat, I.M., Singh, D., and Marchant, R., 2000. Physical removal of textile dyes from effluents and solid-state fermentation of dye-adsorbed agricultural residues, Bioresour. Technol. 72 (2000), pp. 219–226.
  • Mohan, N., Balasubramanian, N., and Basha, C.A., 2007. Electrochemical oxidation of textile wastewater and its reuse, J. Hazard. Mater. 147 (2007), pp. 644–651.
  • Slokar, Y.M., and Marechal, A.M.L., 1998. Methods of decoloration of textilewastewaters, Dyes Pigments 37 (1998), pp. 335–356.
  • McKay, G., Otterburn, M.S., and Aga, J.A., 1985. Fuller earth and fired clay as adsorbents for dyestuffs—equilibrium and rate studies, Water Air Soil Pollut. 24 (1985), pp. 307–322.
  • Pavan, F.A., Gushikem, Y., Mazzocato, A.C., Dias, S.L.P., and Lima, E.C., 2007. Statistical design of experiments as a tool for optimizing the batch conditions to methylene blue biosorption on yellow passion fruit and mandarin peels, Dyes Pigments 72 (2007), pp. 256–266.
  • Pierce, J., 1994. Colour in textile effluents—the origins of the problem, J. Soc. Dyers Colour 110 (1994), pp. 131–134.
  • Gupta, V.K., and Suhas, , 2009. Application of low-cost adsorbents for dye removal—a review, J. Environ. Manage. 90 (2009), pp. 2313–2342.
  • Fu, Y.Z., and Viraraghavan, T., 2001. Fungal decolorization of dye wastewaters: a review, Bioresour. Technol. 79 (2001), pp. 251–262.
  • Eren, E., and Afsin, B., 2007. Investigation of a basic dye adsorption from aqueous solution onto raw and pre-treated sepiolite surfaces, Dyes Pigmens 73 (2007), pp. 162–167.
  • R.H. Perry, D.W. Green, J.O. Maloney, Perry’s Chemical Engineers’ Handbook, seventh ed., McGraw-Hill, New York, NY, 1997..
  • Shi, B.Y., Li, G.H., Wang, D.S., Feng, C.H., and Tang, H.X., 2007. Removal of direct dyes by coagulation: the performance of preformed polymeric aluminum species, J. Hazard. Mater. 143 (2007), pp. 567–574.
  • Mishra, A., and Bajpai, M., 2006. The flocculation performance of Tamarindus mucilage in relation to removal of vat and direct dyes, Bioresour. Technol. 97 (2006), pp. 1055–1059.
  • Wang, S., 2008. A Comparative study of Fenton and Fenton-like reaction kinetics in decolourisation of wastewater, Dyes Pigments 76 (2008), pp. 714–720.
  • Kace, J.S., and Linford, H.B., 1975. Reduced cost flocculation of a textile dyeing wastewater, J. Water Pollut. Control Fed. 47 (1975), p. 1971.
  • Lee, J.W., Choi, S.P., Thiruvenkatachari, R., Shim, W.G., and Moon, H., 2006. Evaluation of the performance of adsorption and coagulation processes for the maximum removal of reactive dyes, Dyes Pigments 69 (2006), pp. 196–203.
  • Hai, F.I., Yamamoto, K., and Fukushi, K., 2007. Hybrid treatment systems for dye wastewater, Crit. Rev. Environ. Sci. Technol. 37 (2007), pp. 315–377.
  • Raghavacharya, C., 1997. Colour removal from industrial effluents a comparative review of available technologies, Chem. Eng. world. 32 (1997), pp. 53–54.
  • Gupta, V.K., Jain, R., and Varshney, S., 2007. Electrochemical removal of the hazardous dye reactofix red 3 BFN from industrial effluents, J. Colloid Interface Sci. 312 (2007), pp. 292–296.
  • Lin, S.H., and Peng, C.F., 1994. Treatment of textile wastewater by electrochemical method, Water Res. 28 (1994), pp. 277–282.
  • Lopes, A., Martins, S., Mora, A., Magrinho, M., and Gonçalves, I., 2004. Degradation of a textile dye C.I. direct red 80 by electrochemical processes, Port. Electrochim. Acta 22 (2004), pp. 279–294.
  • Barragan, B.E., Costa, C., and Marquez, M.C., 2007. Biodegradation of azo dyes by bacteria inoculated on solid media, Dyes Pigments 75 (2007), pp. 73–81.
  • Rai, H.S., Bhattacharyya, M.S., Singh, J., Bansal, T.K., Vats, P., and Banerjee, U.C., 2005. Removal of dyes from the effluent of textile and dyestuff manufacturing industry: a review of emerging techniques with reference to biological treat-ment, Crit. Rev. Environ. Sci. Technol. 35 (2005), pp. 219–238.
  • Bumpus, J.A., and Brock, B.J., 1988. Biodegradation of crystal violet by the white rot fungus Phanerochaete chrysosporium, Appl. Environ. Microbiol. 54 (1988), pp. 1143–1150.
  • M.D. LeVan, G. Carta, C.M. Yon, Perry’s Chemical Engineers’ Handbook, seventh ed. McGraw-Hill, New York, NY, 1997..
  • D.A. Clifford, Ion Exchange and Inorganic Adsorption. in: Letterman, R.D (Ed.), Water Quality and Treatment, fifth ed., McGraw-Hill, New York, NY, 1999..
  • Liu, C.H., Wu, J.S., Chiu, H.C., Suen, S.Y., and Chu, K.H., 2007. Removal of anionic reactive dyes from water using anion exchange membranes as adsorbers, Water Res. 41 (2007), pp. 1491–1500.
  • Raghu, S., and Basha, C.A., 2007. Chemical or electrochemical techniques, followed by ion exchange, for recycle of textile dye wastewater, J. Hazard. Mater. 149 (2007), pp. 324–330.
  • Wu, J.S., Liu, C.H., Chu, K.H., and Suen, S.Y., 2008. Removal of cationic dye methyl violet 2B from water by cation exchange membranes, J. Membr. Sci. 309 (2008), pp. 239–245.
  • Delval, F., Crini, G., Bertini, S., Filiatre, C., and Torri, G., 2005. Preparation, characterization and sorption properties of crosslinked starch-based exchangers, Carbohydr. Polym. 60 (2005), pp. 67–75.
  • Bansal, R.C., and Goyal, M., 2005. Activated Carbon Adsorption. Boca Raton, FL: Taylor and Francis; 2005.
  • Cheremisinoff, N.P., 2002. Handbook of Water and Wastewater Treatment Technologies. Boston, MA: Butterworth-Heinemann; 2002.
  • Qadeer, R., 2007. Adsorption behavior of ruthenium ions on activated charcoal from nirtic acid medium, Colloids Surf. A: Physicochem. Eng. Aspects 293 (2007), pp. 217–223.
  • Gupta, G.S., and Shukla, S.P., 1996. An inexpensive adsorption technique for the treatment of carpet effluents by low cost materials, Adsorp. Sci. Technol. 13 (1996), pp. 15–26.
  • Espantaleon, A.G., Nieto, J.A., Fernandez, M., and Marsal, A., 2003. Use of activated clays in the removal of dyes and surfactants from tannery waste waters, Appl. Clay Sci. 24 (2003), pp. 105–110.
  • Choy, K.K.H., McKay, G., and Porter, J.F., 1999. Sorption of acid dyes from effluents using activated carbon, Resour. Conserv. Recycl. 27 (1999), pp. 57–71.
  • Ozcan, A.S., Erdem, B., and Ozcan, A., 2004. Adsorption of acid blue 193 from aqueous solutions onto Na bentonite and DTMA-bentonite, J. Colloid Interface Sci. 280 (2004), pp. 44–54.
  • Phan, T.N.T., Bacquet, M., and Morcellet, M., 2000. Synthesis and characterization of silica gels functionalized with monochlorotriazinyl beta-cyclodextrin and their sorption capacities towards organic compounds, J. Inclusion Phenom. Macrocyclic Chem. 38 (2000), pp. 345–359.
  • Choy, K.K.H., Porter, J.F., and McKay, G., 2000. Langmuir isotherm models applied to the multicomponent sorption of acid dyes from effluent onto activated carbon, J. Chem. Eng. Data 45 (2000), pp. 575–584.
  • Chandra, R., Yadav, S., Bharagava, R.N., and Murthy, R.C., 2008. Bacterial pretreatment enhances removal of heavy metals during treatment of post-methanated distillery effluent by Typha angustata L., J. Environ. Manage. 88 (2008), pp. 1016–1024.
  • Sheoran, A.S., 2006. A laboratory treatment study of acid mine water of wetlands with emergent macrophyte (T. angustata), Int. J. Mini. Reclamat. Environ. 20 (2006), pp. 209–222.
  • N. Nasuha, B.H. Hameed, T. Azam, M. Din, Rejected tea as a potential low-cost adsorbent for the removal of methylene blue, J. Hazard. Mater. 175 (2010) 126–132..
  • Freundlich, H.M.F., 1906. Uber die adsorption in losungen, J. Phys. Chem. 57 (1906), pp. 385–470.
  • Namasivayam, R.J.C., and Yamuna, R.T., 1994. Dye removal from wastewater by adsorption on “waste” Fe(III)/Cr(III) hydroxide, Waste Manage. 14 (1994), pp. 643–648.
  • Langmuir, I., 1918. The adsorption of gases on plane surface of glass, mica and platinum, J. Am. Chem. Soc. 40 (1918), pp. 1361–1403.
  • Temkin, M.J., and Pyzhev, V., 1940. Kinetics of ammonia synthesis on promoted iron catalysts, Acta Physiochim. URSS 12 (1940), pp. 217–222.
  • Lagergren, S., 1898. Zur theorie der sogenannten adsorption geloster stoffe [The theory of the so-called adsorption of dissolved materials], Vetenskapsakad. Handl. 24 (1898), pp. 1–39.
  • McKay, G., and Ho, Y.S., 1999. Pseudo-second order model for sorption processes, Process Biochem. 34 (1999), pp. 451–465.
  • Weber, W.J., and Morriss, J.C., 1963. Kinetics of adsorption on carbon from solution, J. Sanit. Eng. Div. Am. Soc. Civil Eng. 89 (1963), pp. 31–60.

Reprints and Corporate Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

To request a reprint or corporate permissions for this article, please click on the relevant link below:

Academic Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

Obtain permissions instantly via Rightslink by clicking on the button below:

If you are unable to obtain permissions via Rightslink, please complete and submit this Permissions form. For more information, please visit our Permissions help page.