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230 REFERENCES Abedin, R.M.A. (2008). Decolorization and biodegradation of crystal violet and malachite green by Fusarium solani (martius) saccardo. A comparative study on biosorption of dyes by the dead fungal biomass. Am. Euras. J. Bot. 1:17–31. Acemioglu, B., Kertmen, M. and M.H. Alma (2010). Use of Aspergillus wentii for biosorption of methylene blue from aqueous solution. Afr. J. Biotechnol. 9: 874–881. Addour, L., Belhocine, D., Boudries, N., Comeau, Y., Pauss, A. and N. Mameri (1999). Zinc uptake by Streptomyces rimosus biomass using a packed bed column. J. Chem. Technol. Biotechnol. 74: 1089–1095. Ahmad, A. and B. Hameed (2009). Reduction of COD and color of dyeing effluent from a cotton textile mill by adsorption on to bamboo based activated carbon. J. Hazard. Mater. 172: 1538–1543. Ahmad, I., Zafar, S. and F. Ahmad (2005). Heavy metal biosorption potential of Aspergillus and Rhizopus sp. isolated from wastewater treated soil. J. Appl. Scie. Environ. Mngmt. 9: 123126. Akar, S.T., Akar, T. and A. Cabuk (2009a). Decolorization of a textile dye, Reactive Red 198 (RR198), by Aspergillus parasiticus fungal biosorbent. Brazil. J. Chem. Eng. 26: 399–405. Akar, S.T., Gorgulu, A., Kaynak, Z., Anilan, B. and T. Akar (2009b). Biosorption of Reactive Blue 49 dye under batch and continuous mode using a mixed biosorbent of macro–fungus Agaricus bisporus and Thuja orientalis cones. Chem. Eng. J. 148: 26–34. Akar, T. and M. Divriklioglu (2010). Biosorption applications of modified fungal biomass for decolorization of Reactive Red 2 contaminated solutions: Batch and dynamic flow mode studies. Biores. Technol. 101: 7271–7277. Akar, T. and S. Tunali (2005). Biosorption performance of Botrytis cinerea fungal by-products for removal of Cd(II) and Cu(II) ions from aqueous solutions. Miner. Eng. 18: 10991109. Akar, T., Anilan, B., Kaynak, Z., Gorgulu, A. and S.T. Akar (2008a). Batch and dynamic flow biosorption potential of Agaricus bisporus/ Thuja orientalis

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Page 1: References Final latest.rtf ashu sirshodhganga.inflibnet.ac.in/bitstream/10603/27488/11/11... · 2018-07-09 · 233 isolated from compost: role of laccases and peroxidases. J. Hazard

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REFERENCES

Abedin, R.M.A. (2008). Decolorization and biodegradation of crystal violet and malachite green by Fusarium solani (martius) saccardo. A comparative study on biosorption of dyes by the dead fungal biomass. Am. Euras. J. Bot. 1:17–31.

Acemioglu, B., Kertmen, M. and M.H. Alma (2010). Use of Aspergillus wentii for biosorption of methylene blue from aqueous solution. Afr. J. Biotechnol. 9: 874–881.

Addour, L., Belhocine, D., Boudries, N., Comeau, Y., Pauss, A. and N. Mameri (1999). Zinc uptake by Streptomyces rimosus biomass using a packed bed column. J. Chem. Technol. Biotechnol. 74: 1089–1095.

Ahmad, A. and B. Hameed (2009). Reduction of COD and color of dyeing effluent from a cotton textile mill by adsorption on to bamboo based activated carbon. J. Hazard. Mater. 172: 1538–1543.

Ahmad, I., Zafar, S. and F. Ahmad (2005). Heavy metal biosorption potential of Aspergillus and Rhizopus sp. isolated from wastewater treated soil. J. Appl. Scie. Environ. Mngmt. 9: 123–126.

Akar, S.T., Akar, T. and A. Cabuk (2009a). Decolorization of a textile dye, Reactive Red 198 (RR198), by Aspergillus parasiticus fungal biosorbent. Brazil. J. Chem. Eng. 26: 399–405.

Akar, S.T., Gorgulu, A., Kaynak, Z., Anilan, B. and T. Akar (2009b). Biosorption of Reactive Blue 49 dye under batch and continuous mode using a mixed biosorbent of macro–fungus Agaricus bisporus and Thuja orientalis cones. Chem. Eng. J. 148: 26–34.

Akar, T. and M. Divriklioglu (2010). Biosorption applications of modified fungal biomass for decolorization of Reactive Red 2 contaminated solutions: Batch and dynamic flow mode studies. Biores. Technol. 101: 7271–7277.

Akar, T. and S. Tunali (2005). Biosorption performance of Botrytis cinerea fungal by-products for removal of Cd(II) and Cu(II) ions from aqueous solutions. Miner. Eng. 18: 1099–1109.

Akar, T., Anilan, B., Kaynak, Z., Gorgulu, A. and S.T. Akar (2008a). Batch and dynamic flow biosorption potential of Agaricus bisporus/ Thuja orientalis

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