Zinc–aluminum layered double hydroxide as a nano-sorbent for removal of Reactive Yellow 84 dye from textile wastewater effluents
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Abstract
In this research, the zinc–aluminum layered double hydroxide (Zn–Al LDH) was synthesized and structurally and morphologically characterized by X-ray diffraction, Fourier transform infrared spectroscopy, transmission electron microscopy and N2 adsorption–desorption techniques. The obtained nano-structured inorganic material was employed as an innovative nano-sorbent for separation of Reactive Yellow 84 (RY84) dye from aqueous solutions, which can be spectrophotometrically monitored at λ = 359 nm. The effect of several parameters such as type of interlayer anion in Zn–Al LDH structure, pH, sample flow rate, elution conditions, amount of nano-sorbent, sample volume and co-existing ions on the retention efficiency was investigated and optimized. The results showed that trace amounts of the RY84 could be retained using a column packed with 300 mg of the Zn–Al(NO3 −) LDH at pH 8 and stripped by 2.5 mL of 3.0 mol L−1 NaOH. Under the optimum experimental conditions, the limit of detection and the relative standard deviation were 0.04 μg mL−1 and 1.8 %, respectively. The calibration graph using the presented solid phase extraction system was linear in the range of 0.15–1.5 μg mL−1 with a correlation coefficient of 0.9982. The method was successfully applied to removal of RY84 from several textile wastewater effluents.
Keywords
Reactive Yellow 84 dye Zinc–aluminum layered double hydroxide Nano-sorbent Solid phase extraction Textile wastewater samplesNotes
Acknowledgments
The financial support from the Research Council of Azarbaijan Shahid Madani University (ASMU, Iran) is gratefully acknowledged.
References
- 1.L.E. Gaini, M. Lakraimi, E. Sebbar, A. Meghea, M. Bakasse, J. Hazard. Mater. 161, 627 (2009)CrossRefGoogle Scholar
- 2.M.M. Sahasrabudhe, G.R. Pathade, Arch. App. Sci. Res. 3, 403 (2011)Google Scholar
- 3.D. Chatterjee, V. Patnam, A. Sikdar, P. Joshi, R. Misra, N.N. Raob, J. Hazard. Mater. 156, 435 (2008)CrossRefGoogle Scholar
- 4.N. Barka, S. Qourzal, A. Assabbane, A. Nounah, Y. Ait-Ichou, Arab. J. Chem. 3, 279 (2010)CrossRefGoogle Scholar
- 5.H. Zollinger, Color Chemistry: Syntheses, Properties and Application of Organic Dyes and Pigments, 3rd edn. (Wiley, Weinheim, 2003), pp. 225–240Google Scholar
- 6.P.C. Vandevivere, R. Bianchi, W. Verstrete, J. Chem. Technol. Biotechnol. 72, 289 (1998)CrossRefGoogle Scholar
- 7.S. Papic, N. Koprivanac, A.L. Bozic, A. Metes, Dyes Pigm. 62, 293 (2004)CrossRefGoogle Scholar
- 8.B. Shi, G. Li, D. Wang, Ch. Feng, H. Tang, J. Hazard. Mater. 143, 567 (2007)CrossRefGoogle Scholar
- 9.J. Saien, M. Asgari, A.R. Soleymani, N. Taghavinia, Chem. Eng. J. 151, 295 (2009)CrossRefGoogle Scholar
- 10.S. Song, L. Xu, Z. He, H. Ying, J. Chen, X. Xiao, B. Yan, J. Hazard. Mater. 152, 1301 (2008)CrossRefGoogle Scholar
- 11.M. Anbia, A. Ghaffari, J. Iran. Chem. Soc. 8, S67 (2011)CrossRefGoogle Scholar
- 12.N. Kamal Amin, J. Hazard. Mater. 165, 52 (2009)CrossRefGoogle Scholar
- 13.P. Gharbani, S.M. Tabatabaii, A. Mehrizad, Int. J. Environ. Sci. Technol. 5, 495 (2008)CrossRefGoogle Scholar
- 14.E. Yilmaz, S. Memon, M. Yilmaz, J. Hazard. Mater. 174, 592 (2010)CrossRefGoogle Scholar
- 15.A. Lopes, S. Martins, A. Morão, M. Magrinho, I. Gonçalves, Port. Electrochim. Acta 22, 279 (2004)CrossRefGoogle Scholar
- 16.Z. Kozáková, M. Nejezchleb, F. Krčma, I. Halamová, J. Čáslavský, J. Dolinová, Desalination 258, 93 (2010)CrossRefGoogle Scholar
- 17.M. Otero, F. Rozada, L.F. Calvo, A.I. Garcia, A. Moran, Biochem. Eng. J. 15, 59 (2003)CrossRefGoogle Scholar
- 18.A. Żwir-Ferenc, M. Biziuk, Pol. J. Environ. Stud. 15, 677 (2006)Google Scholar
- 19.E. Akceylan, M. Bahadir, M. Yilmaz, J. Hazard. Mater. 162, 960 (2009)CrossRefGoogle Scholar
- 20.C.W. Huck, G.K. Bonn, J. Chromatogr. A 885, 51 (2000)CrossRefGoogle Scholar
- 21.R.S. Blackburn, Environ. Sci. Technol. 38, 4905 (2004)CrossRefGoogle Scholar
- 22.H. Abdolmohammad-Zadeh, Z. Rezvani, G.H. Sadeghi, E. Zorufi, Anal. Chim. Acta 685, 212 (2011)CrossRefGoogle Scholar
- 23.H. Abdolmohammad-Zadeh, S. Kohansal, G.H. Sadeghi, Talanta 84, 368 (2011)CrossRefGoogle Scholar
- 24.H. Abdolmohammad-Zadeh, S. Kohansal, J. Braz. Chem. Soc. 23, 473 (2012)CrossRefGoogle Scholar
- 25.H. Abdolmohammad-Zadeh, K. Tavarid, Z. Talleb, Sci. World J. (2012). doi: 10.1100/2012/145482 Google Scholar
- 26.H. Abdolmohammad-Zadeh, G.H. Sadeghi, Talanta 94, 201 (2012)CrossRefGoogle Scholar
- 27.H. Abdolmohammad-Zadeh, Z. Talleb, Microchim. Acta 179, 25 (2012)CrossRefGoogle Scholar
- 28.K.W. Li, N. Kumada, Y. Yonesaki, T. Takei, N. Kinomura, H. Wang, Ch. Wang, Mater. Chem. Phys. 121, 223 (2010)CrossRefGoogle Scholar
- 29.T. Kameda, T. Yoshioka, T. Mitsuhashi, M. Uchida, A. Okuwaki, Water Res. 37, 4045 (2003)CrossRefGoogle Scholar
- 30.T. Kameda, T. Yoshioka, T. Hoshi, M. Uchida, A. Okuwaki, Sep. Purif. Technol. 42, 25 (2005)CrossRefGoogle Scholar
- 31.K.H. Goh, T.T. Lim, Z.L. Dong, Water Res. 42, 1343 (2008)CrossRefGoogle Scholar
- 32.H. Nakayama, K. Kuwano, M. Tsuhako, J. Phys. Chem. Solids 69, 1552 (2008)CrossRefGoogle Scholar
- 33.Z.P. Xu, J. Zhang, M.O. Adebajo, H. Zhang, C. Zhou, Appl. Clay Sci. 59, 139 (2011)CrossRefGoogle Scholar
- 34.S.-J. Ryu, H. Jung, J.-M. Ohd, J.-K. Lee, J.-H. Choy, J. Phys. Chem. Solids 71, 685 (2010)CrossRefGoogle Scholar
- 35.Z.P. Xu, P.S. Braterman, Appl. Clay Sci. 48, 235 (2010)CrossRefGoogle Scholar
- 36.J. Zhou, S. Yang, J. Yu, Z. Shu, J. Hazard. Mater. 192, 1114 (2011)CrossRefGoogle Scholar
- 37.W. Cai, J. Yu, S. Gu, M. Jaroniec, Cryst. Growth Des. 10, 3977 (2010)CrossRefGoogle Scholar
- 38.W. Cai, J. Yu, C. Anand, A. Vinu, M. Jaroniec, Chem. Mater. 23, 1147 (2011)CrossRefGoogle Scholar
- 39.J. Zhou, Y. Cheng, J. Yu, G. Liu, J. Mater. Chem. 21, 19353 (2011)CrossRefGoogle Scholar
- 40.J. Zhou, C. Tang, B. Cheng, J. Yu, M. Jaroniec, ACS Appl. Mater. Interfaces 4, 2174 (2012)CrossRefGoogle Scholar