References

  1. G. Cagnetta, J. Robertson, J. Huang, K.L. Zhang, G. Yu, Mechanochemical destruction of halogenated organic pollutants: a critical review, J. Hazard. Mater., 313 (2016) 85–102.
  2. J.Q. Guo, C.H. Wu, S.L. Lv, D.S. Lu, C. Feng, X.J. Qi, W.J. Liang, X.L. Chang, H. Xu, G.Q. Wang, Z.J. Zhou, Associations of prenatal exposure to five chlorophenols with adverse birth outcomes, Environ. Pollut., 214 (2016) 478–484.
  3. J.L. Fan, J. Zhang, C.L. Zhang, L. Reb, Q.Q. Shi, Adsorption of 2,4,6-trichlorophenol from aqueous solution onto activated carbon derived from loosestrife, Desalination, 267 (2011) 139–146.
  4. P. Strachowski, M. Bystrzejewski, Comparative studies of sorption of phenolic compounds onto carbon-encapsulated iron nanoparticles, carbon nanotubes and activated carbon, Colloids Surf., A, 467 (2015) 113–123.
  5. M.M. Machawe, M.T. Justice, A.M.M. Titus, B.M. Bhekie, Adsorption of 2,4,6-trichlorophenol and ortho-nitrophenol from aqueous media using surfactant-modified clinoptilolitepolypropylene hollow fibre composites, Water Air Soil Pollut., 223 (2012) 1555–1569.
  6. M.S. Bilgili, Adsorption of 4-chlorophenol from aqueous solutions by xad-4 resin: isotherm, kinetic, and thermodynamic analysis, J. Hazard. Mater., 137 (2006) 157–164.
  7. S. Mubari, A. Saeed, M.M. Athar, M. Iqbal, Characterization and mechanism of the adsorptive removal of 2,4,6-trichlorophenol by biochar prepared from sugarcane baggase, J. Ind. Eng. Chem., 33 (2016) 115–121.
  8. H.Y. Shen, Z.X. Chen, Z.H. Li, M.Q. Hu, X.Y. Dong, Controlled synthesis of 2,4,6-trichlorophenol-imprinted aminofunctional izednano-Fe3O4-polymer magnetic composite for highly selective adsorption, Colloids Surf., A, 481 (2015) 439–450.
  9. C.M. Su, Environmental implications and applications of engineered nanoscale magnetite and its hybrid nanocomposites: a review of recent literature, J. Hazard. Mater., 322 (2017) 48–84.
  10. Y.G. Zhao, X.H. Chen, S.D. Pan, H. Zhu, H.Y. Shen, M.C. Jin, Self-assembly of surface bisphenol A-imprinted core-shell nanoring amino-functionalized superparamagnetic polymer, J. Mater. Chem. A, 1 (2013) 11648–11658.
  11. H.Y. Shen, S.D. Pan, Y. Zhang, X.L. Huang, H.X. Gong, A new insight on the adsorption mechanism of amino-functionalized nano-Fe3O4 magnetic polymers in Cu(II), Cr(VI) co-existing water system, Chem. Eng. J., 183 (2012) 180–191.
  12. H.Y. Shen, J.L. Chen, H.F. Dai, L.B. Wang, M.Q. Hu, Q.H. Xia, New insights into the sorption and detoxification of chromium(VI) by tetraethylenepentamine functionalized nanosized magnetic polymer adsorbents: mechanism and pH effect, Ind. Eng. Chem. Res., 52 (2013) 12723–12732.
  13. S.D. Pan, H.Y. Shen, Q.H. Xu, J. Luo, M.Q. Hu, Surface mercapto engineered magnetic Fe3O4 nanoadsorbent for the removal of mercury from aqueous solutions, J. Colloid Interface Sci., 365 (2012) 204–212.
  14. H.Y. Shen, Z.X. Chen, Z.H. Li, M.Q. Hu, X.Y. Dong, Q.H. Xia, Controlled synthesis of 2,4,6-trichlorophenol-imprinted amino-functionalized nano-Fe3O4-polymer magnetic composite for highly selective adsorption, Colloids Surf., A, 481 (2015) 439–450.
  15. S.D. Pan, Y. Zhang, H.Y. Shen, M.Q. Hu, An intensive study on the magnetic effect of mercapto-functionalized nano magnetic Fe3O4 polymers and their adsorption mechanism for the removal of Hg(II) from aqueous solution, Chem. Eng. J., 210 (2012) 564–574.
  16. N.S. Goldstein, D. Meyerstein, Comments on the mechanism of the “Fenton-like” reaction, Acc. Chem. Res., 32 (1999) 547–549.
  17. E. Nevens, J. Baevenes, A review of classic Fenton’s peroxidation as an advanced oxidation technique, J. Hazard. Mater., 98 (2003) 33–50.
  18. B.X. Cai, Y.W. Chen, Basical Chemistry Experiments, Science Press, Beijing, China, 2001.
  19. J. Febrianto, A.N. Kosasih, J. Sunarso, Y.H. Ju, N. Indraswati, S. Ismadji, Equilibrium and kinetic studies in adsorption of heavy metals using biosorbent: a summary of recent studies, J. Hazard. Mater., 162 (2009) 616–645.
  20. H. Deng, X.L. Li, Q. Peng, X. Wang, J.P. Chen, Y.D. Li, Monodisperse magnetic single-crystal ferrite microspheres, Angew. Chem. Int. Ed., 44 (2005) 2782–2785.
  21. Y.S. Ho, Review of second-order models for adsorption systems, J. Hazard. Mater., 136 (2006) 681–689.
  22. S.H. Huang, D.H. Chen, Rapid removal of heavy metal cations and anions from aqueous solutions by an amino-functionalized magnetic nano-adsorbent, J. Hazard. Mater., 163 (2009) 174–179.
  23. K.Y. Foo, B.H. Hameed, Review: insights into the modeling of adsorption isotherm systems, Chem. Eng. J., 156 (2010) 2–10.
  24. B. Liu, W. Zhang, F.K. Yang, H.L. Feng, X.L. Yang, Facile method for synthesis of Fe3O4@polymer microspheres and their application as magnetic support for loading metal nanoparticles, J. Phys. Chem. C, 115 (2011) 15875–15884.
  25. Y.G. Zhao, H.Y. Shen, S.D. Pan, M.Q. Hu, Synthesis, characterization and properties of ethylene-diaminefunctionalized Fe3O4 magnetic polymers for removal of Cr(VI) in wastewater, J. Hazard. Mater., 182 (2010) 295–302.
  26. M. Czaplicka, Sources and transformations of chlorophenols in the natural environment, Sci. Total Environ., 322 (2004) 21–39.
  27. Y. Zhang, S.D. Pan, H.Y. Shen, M.Q. Hu, Amino-functionalized nano-size composite materials for dispersive solid phase extraction of phosphate in water samples, Anal. Sci., 28 (2012) 887–892.
  28. H.Y. Shen, B.W. Liu, Q. Xiang, C.C. Wang, S.Q. Mao, Highly selective amino-functionalized magnetic molecularly imprinted polymers: absorbents for dispersive solid phase extraction and trace level analysis of chlorophenols in seawater, RSC Adv., 6 (2016) 81330–81340.
  29. Y.G. Zhao, H.Y. Shen, S.D. Pan, M.Q. Hu, Q.H. Xia, Preparation and characterization of amino-functionalized nano-Fe3O4 magnetic polymer adsorbents for removal of chromium(VI) ions, J. Mater. Sci., 49 (2010) 5291–5301.
  30. J. Chen, M.A. Hamon, H. Hu, Y. Chen, A.M. Rao, P.C. Eklund, R.C. Haddon, Solution properties of single-walled carbon nanotubes, Science, 282 (1998) 95–98.
  31. L. Zhou, L. Ji, P.C. Ma, Y. Shao, H. Zhang, W. Gao, Y. Li, Development of carbon nanotubes/CoFe2O4 magnetic hybrid material for removal of tetrabromobisphenol A and Pb(II), J. Hazard. Mater., 265 (2014) 104–114.
  32. G. Crini, H.N. Peindy, F. Gimbert, C. Robert, Removal of C.I. Basic Green 4 (Malachite Green) from aqueous solutions by adsorption using cyclodextrin-based adsorbent: kinetic and equilibrium studies, Sep. Purif. Technol., 53 (2007) 97–110.
  33. A. Ozcan, A.S. Ozcan, Adsorption of Acid Red 57 from aqueous solutions onto surfactant-modified sepiolite, J. Hazard. Mater., 125 (2005) 252–259.
  34. X.H. Gao, H.B. Wu, L.X. Zheng, Y.J. Zhong, Y. Hu, X.W. Lou, Formation of mesoporous heterostructured BiVO4/Bi2S3 hollow discoids with enhanced photoactivity, Angew. Chem. Int. Ed., 53 (2014) 5917–5921.
  35. R. Qiao, M.M. Mao, E.L. Hu, Y.J. Zhong, J.Q. Ning, Y. Hu, Facile formation of mesoporous BiVO4/Ag/AgCl heterostructured microspheres with enhanced visible-light photoactivity, Inorg. Chem., 54 (2015) 9033–9039.
  36. S.L. Wang, J.J. Li, X.D. Zhou, C.C. Zheng, J.Q. Ning, Y.J. Zhong, Y. Hu, Facile preparation of 2D sandwich-like CdS nanoparticles/nitrogen-doped reduced graphene oxide hybrid nanosheets with enhanced photoelectrochemical properties, J. Mater. Chem. A, 2 (2014) 19815–19821.
  37. A. Etogo, E.L. Hu, C.M. Zhou, Y.J. Zhong, Y. Hu, Z.L. Hong, Facile fabrication of mesoporous BiOCl/(BiO)2CO3/Bi2O3 ternary flower-like heterostructured microspheres with high visible-light-driven photoactivity, J. Mater. Chem. A, 3 (2015) 22413–22420.