256
Views
5
CrossRef citations to date
0
Altmetric
Extraction

Solid phase extraction and removal of 2,4-dichlorophenol from aqueous samples using magnetic graphene nanocomposite

, , &
Pages 1480-1489 | Received 20 Apr 2015, Accepted 10 Mar 2016, Published online: 18 May 2016

References

  • Streat, M.; Patrick, J.W.; Perez, M.J.C. (1995) Sorption of phenol and para-chlorophenol from water using conventional and novel activated carbons. Water Research, 29: 467–472.
  • Calace, N.; Nardi, E.; Petronio, B.M.; Pietroletti, M. (2002) Sorption of phenols by papermill sludges. Environmental Pollution, 118: 315–319.
  • Aktaş, Ö.; Çeçen, F. (2007) Sorption, desorption and bioregeneration in the treatment of 2-chlorophenol with activated carbon. Journal of Hazardous Materials, 141: 769–777.
  • Peñalver, A.; Pocurull, E.; Borrull, F.; Marcé, R.M. (2002) Solid-phase microextraction coupled to high-performance liquid chromatography to determine phenolic compounds in water samples. Journal of Chromatography A, 953: 79–87.
  • Namasivayam, C.; Kavitha, D. (2003) Adsorptive removal of 2-chlorophenol by low-cost coir pith carbon. Journal of Hazardous Materials, 98: 257–274.
  • Sadanala, K.; Chung, B. (2013) Graphene nanoplatelets as a solid phase extraction sorbent for analysis of chlorophenols in water. Journal of the Korean Society for Applied Biological Chemistry, 56: 673–678.
  • Dąbrowski, A.; Podkościelny, P.; Hubicki, Z.; Barczak, M. (2005) Sorption of phenolic compounds by activated carbon—a critical review. Chemosphere, 58: 1049–1070.
  • Wada, M.; Kinoshita, S.; Itayama, Y.; Kuroda, N.; Nakashima, K. (1999) Sensitive high-performance liquid chromatographic determination with fluorescence detection of phenol and chlorophenols with 4-(4,5-diphenyl-1H-imidazol-2-yl)benzoyl chloride as a labeling reagent. Journal of Chromatography B: Biomedical Sciences and Applications, 721 (2): 179–186.
  • Zeng, S.; Gan, N.; Weideman-Mera, R.; Cao, Y.; Li, T.; Sang, W. (2013) Enrichment of polychlorinated biphenyl 28 from aqueous solutions using Fe3O4 grafted graphene oxide. Chemical Engineering Journal, 218: 108–115.
  • Shah, J.; Jan, M.R.; Jamil, S.; Haqa, A.U. (2014) Magnetic particles precipitated onto wheat husk for removal of methyl blue from aqueous solution. Toxicological & Environmental Chemistry, 96: 218–226.
  • Guo, J.; Wang, R.; Tjiu, W.W.; Pan, J.; Liu, T. (2012) Synthesis of Fe nanoparticles@graphene composites for environmental applications. Journal of Hazardous Materials, 225–226:63–73.
  • Han, Q.; Wang, Z.; Xia, J.; Chen, S.; Zhang, X.; Ding, M. (2012) Facile and tunable fabrication of Fe3O4/graphene oxide nanocomposites and their application in the magnetic solid-phase extraction of polycyclic aromatic hydrocarbons from environmental water samples. Talanta, 101: 388–395.
  • Meral, K.; Metin, O. (2014) Graphene oxide-magnetite nanocomposite as an efficient and magnetically separable adsorbent for methylene blue removal from aqueous solution. Turkish Journal of Chemistry, 38: 775–782.
  • Liu, Q.; Shi, J.; Zeng, L.; Wang, T.; Cai, Y.; Jiang, G. (2011) Evaluation of graphene as an advantageous adsorbent for solid-phase extraction with chlorophenols as model analytes. Journal of Chromatography A, 1218: 197–204.
  • Rao, R.A.K.; Singh, S.; Singh, B.R.; Khan, W.; Naqvi, A.H. (2014) Synthesis and characterization of surface modified graphene-zirconium oxide nanocomposite and its possible use for the removal of chlorophenol from aqueous solution. Journal of Environmental Chemical Engineering, 2: 199–210.
  • Wang, W.; Ma, R.; Wu, Q.; Wang, C.; Wang, Z. (2013) Fabrication of magnetic microsphere-confined graphene for the preconcentration of some phthalate esters from environmental water and soybean milk samples followed by their determination by HPLC. Talanta, 109: 133–140.
  • Teo, P.S.; Lim, H.N.; Huang, N.M.; Chia, C.H.; Harrison, I. (2012) Room temperature in situ chemical synthesis of Fe3O4/graphene. Ceramics International, 38: 6411–6416.
  • Yao, Y.; Miao, S.; Yu, S.; Ma, L.P.; Sun, H.; Wang, S. (2012) Fabrication of Fe3O4/SiO2 core/shell nanoparticles attached to graphene oxide and its use as an adsorbent. Journal of Colloid and Interface Science, 379: 20–26.
  • Luo, Y.B.; Cheng, J.S.; Ma, Q.; Feng, Y.Q.; Li, J.H. (2011) Graphene-polymer composite: extraction of polycyclic aromatic hydrocarbons from water samples by stir rod sorptive extraction. Analytical Methods, 3: 92–88.
  • Wang, C.; Feng, C.; Gao, Y.; Ma, X.; Wu, Q.; Wang, Z. (2011) Preparation of a graphene-based magnetic nanocomposite for the removal of an organic dye from aqueous solution. Chemical Engineering Journal, 173: 92–97.
  • Li, N.; Chen, J.; Shi, Y.-P. (2015) Magnetic graphene solid phase extraction for the determination of carbamate pesticides in tomatoes coupled with high performance liquid chromatography. Talanta, 141: 212–219.
  • Wu, Q.; Zhao, G.; Feng, C.; Wang, C.; Wang, Z. (2011) Preparation of a graphene-based magnetic nanocomposite for the extraction of carbamate pesticides from environmental water samples. Journal of Chromatography A, 1218: 7936–7942.
  • Tang, Y.; Guo, H.; Xiao, L.; Yu, S.; Gao, N.; Wang, Y. (2013) Synthesis of reduced graphene oxide/magnetic composite and investigation of their adsorptive performance of fluoroquinolone. Colloids and Surfaces A, 424: 74–80.
  • Luo, Y.-B.; Shi, Z.-G.; Gao, Q.; Feng, Y.-Q. (2011) Magnetic retrieval of graphene: Extraction of sulfonamide antibiotics from environmental water samples. Journal of Chromatography A, 1218: 1353–1358.
  • Hummer, W.S.; Offeman, R.E. (1958) Functionalized graphene and graphene oxide: materials synthesis and electronic applications. Journal of the American Chemical Society, 80: 1339–1339.
  • Ray, S.C.; Saha, A.; Basiruddin, S.K.; Roy, S.S.; Jana, N.R. (2011) Polyacrylate-coated graphene-oxide and graphene solution via chemical route for various biological application. Diamond and Related Materials, 20: 449–453.
  • Li, L.; Fan, L.; Sun, M.; Qiu, H.; Li, X.; Duan, H.; Luo, C. (2013) Adsorbent for chromium removal based on graphene oxide functionalized with magnetic cyclodextrin–chitosan. Colloids and Surfaces B: Biointerfaces, 107: 76–83.
  • Rattana, C.S.; Witit-anun, N.; Nuntawong, N.; Chindaudom, P.; Oaew, S.; Kedkeawd, C.; Limsuwan, P. (2012) Preparation and characterization of graphene oxide nanosheets. Procedia Engineering, 32: 759–764.
  • Hartono, T,; Wang, S.; Ma, Q.; Zhu, Z. (2009) Layer structured graphite oxide as a novel adsorbent for humic acid removal from aqueous solution. Journal of Colloid and Interface Science, 333: 114–119.
  • Paul, H.; Mohanta, D. (2011) Hydrazine reduced exfoliated graphene/graphene oxide layers and magnetoconductance measurements of Ge-supported graphene layers. Applied Physics A, 103: 395–402.
  • Shah, J.; Jan, M.R.; Haq, A.U.; Zeeshan, M. (2015) Equilibrium, kinetic and thermodynamic studies for sorption of Ni (II) from aqueous solution using formaldehyde treated waste tea leaves. Journal of Saudi Chemical Society, 19: 301–310.
  • Shah, J.; Jan, M.R.; Haq, A.U.; Khan, Y. (2013) Removal of Rhodamine B from aqueous solutions and wastewater by walnut shells: kinetics, equilibrium and thermodynamics studies. Frontiers of Chemical Science and Engineering, 7: 428–436.
  • Shah, J.; Jan, M.R.; Haq, A.U. (2014) Removal of lead from aqueous media using carbonized and acid treated orange peel. Tenside Surfactants Detergents, 51: 240–246.

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.