References

  1. A. Voegelin, N. Pfenninger, J. Petrikis, J. Majzlan, M. Plötze, A. Senn, S. Mangold, R. Steininger, J. Göttlicher, Thallium speciation and extractability in a thallium- and arsenic-rich soil developed from mineralized carbonate rock, Environ. Sci. Technol., 49 (2015) 5390–5398.
  2. T. Xiao, F. Yang, S. Li, B. Zheng, Z. Ning, Thallium pollution in China: A geo-environmental perspective, Sci. Total Environ., 421–422 (2012) 51–58.
  3. H. Li, Y. Chen, J. Long, X. Li, D. Jiang, P. Zhang, J. Qi, X. Huang, J. Liu, R. Xu, J. Gong, Removal of thallium from aqueous solutions using Fe-Mn binary oxides, J. Hazard. Mater., 338 (2017) 296–305.
  4. X. Huangfu, C. Ma, J. Ma, Q. He, C. Yang, J. Jiang, Y. Wang, Z. Wu, Significantly improving trace thallium removal from surface waters during coagulation enhanced by nanosized manganese dioxide, Chemosphere, 168 (2017) 264–271.
  5. S. Wan, M. Ma, L. Lv, L. Qian, S. Xu, Y. Xue, Z. Ma, Selective capture of thallium(I) ion from aqueous solutions by amorphous hydrous manganese dioxide, Chem. Eng. J., 239 (2014) 200–206.
  6. T. Xiao, J. Guha, C. Liu, B. Zheng, G. Wilson, Z. Ning, L. He, Potential health risk in areas of high natural concentrations of thallium and importance of urine screening, Appl. Geochem., 22 (2007) 919–929.
  7. G. Zhang, F. Fan, X. Li, J. Qi, Y. Chen, Superior adsorption of thallium(I) on titanium peroxide: performance and mechanism, Chem. Eng. J., 331 (2018) 471–479.
  8. A. Vaněk, Z. Grösslová, M. Mihaljevič, V. Ettler, J. Trubač, V. Chrastný, V. Penížek, L. Teper, J. Cabala, A. Voegelin, Thallium isotopes in metallurgical wastes/contaminated soils: a novel tool to trace metal source and behavior, J. Hazard. Mater., 343 (2017) 78–85.
  9. Y. Li, B. Zhang, A.G.L. Borthwick, Y. Long, Efficient electrochemical oxidation of thallium(I) in groundwater using boron-doped diamond anode, Electrochim. Acta, 222 (2016) 1137–1143.
  10. A. Vaněk, Z. Grösslová, M. Mihaljevič, V. Ettler, V. Chrastný, M. Komárek, V. Tejnecký, O. Drábek, V. Penížek, I. Galušková, Thallium contamination of soils/vegetation as affected by sphalerite weathering: a model rhizospheric experiment, J. Hazard. Mater., 283 (2015) 148–156.
  11. H. Li, X. Li, Y. Chen, J. Long, G. Zhang, T. Xiao, P. Zhang, C. Li, L. Zhuang, W. Huang, Removal and recovery of thallium from aqueous solutions via a magnetite-mediated reversible adsorption-desorption process, J. Clean. Prod., 199 (2018) 705–715.
  12. H. Li, J. Long, X. Li, K. Li, L. Xu, J. Lai, Y. Chen, P. Zhang, Aqueous biphasic separation of thallium from aqueous solution using alcohols and salts, Desal. Wat. Treat., 123 (2018) 330–337.
  13. H. Li, X. Li, T. Xiao, Y. Chen, J. Long, G. Zhang, P. Zhang, C. Li, L. Zhuang, K. Li, Efficient removal of thallium(I) from wastewater using flower-like manganese dioxide coated magnetic pyrite cinder, Chem. Eng. J., 353 (2018) 867–877.
  14. S. Lan, F. Ju, X. Wu, Treatment of wastewater containing EDTA-Cu(II) using the combined process of interior microelectrolysis and Fenton oxidation-coagulation, Sep. Purif. Technol., 89 (2012) 117–124.
  15. C. Shan, Z. Xu, X. Zhang, Y. Xu, G. Gao, B. Pan, Efficient removal of EDTA-complexed Cu(II) by a combined Fe(III)/UV/ alkaline precipitation process: performance and role of Fe(II), Chemosphere, 193 (2017) 1235–1242.
  16. X. Huang, Y. Xu, C. Shan, X. Li, W. Zhang, B. Pan, Coupled Cu(II)-EDTA degradation and Cu(II) removal from acidic wastewater by ozonation: performance, products and pathways, Chem. Eng. J., 299 (2016) 23–29.
  17. D. Voglar, D. Lestan, Electrochemical treatment of spent solution after EDTA-based soil washing, Water Res., 46 (2012) 1999–2008.
  18. S. Wen, Z. Niu, Z. Zhang, L. Li, Y. Chen, In-situ synthesis of 3D GA on titanium wire as a binder-free electrode for electro-Fenton removing of EDTA-Ni, J. Hazard. Mater., 341 (2018) 128–137.
  19. P. Ghosh, A.N. Samanta, S. Ray, Reduction of COD and removal of Zn2+ from rayon industry wastewater by combined electro-Fenton treatment and chemical precipitation, Desalination, 266 (2011) 213–217.
  20. T.H. Madden, A.K.D. And, M. Fulton, M.R. Prairie, S.A.M. And, B.M. Stange, Oxidation of metal-EDTA complexes by TiO2 photocatalysis, Environ. Sci. Technol., 31 (1997) 3475–3481.
  21. F. Ju, Y. Hu, Removal of EDTA-chelated copper from aqueous solution by interior microelectrolysis, Sep. Purif. Technol., 78 (2011) 33–41.
  22. M.V. Bagal, P.R. Gogate, Wastewater treatment using hybrid treatment schemes based on cavitation and Fenton chemistry: a review, Ultrason. Sonochem., 21 (2014) 1–14.
  23. Y. Deng, J. Englehardt, Treatment of landfill leachate by the Fenton process, Water Res., 40 (2006) 3683–3694.
  24. Y. Anjaneyulu, N.S. Chary, D.S.S. Raj, Decolourization of industrial effluents-available methods and emerging technologies-a review, Rev. Environ. Sci. Bio., 4 (2005) 245–273.
  25. P.V. Nidheesh, Heterogeneous Fenton catalysts for the abatement of organic pollutants from aqueous solution: a review, RSC Adv., 5 (2015) 40552–40577.
  26. A. Babuponnusami, K. Muthukumar, A review on Fenton and improvements to the Fenton process for wastewater treatment, Chem. Eng. J., 2 (2014) 557–572.
  27. I. Gulkaya, G. Surucu, F. Dilek, Importance of H2O2/Fe2+ ratio in Fenton’s treatment of a carpet dyeing wastewater, J. Hazard. Mater., 136 (2006) 763–769.
  28. H. Zhang, H. Choi, C. Huang, Optimization of Fenton process for the treatment of landfill leachate, J. Hazard. Mater., 125 (2005) 166–174.
  29. Y. Wu, S. Zhou, F. Qin, K. Zheng, X. Ye, Modeling the oxidation kinetics of Fenton’s process on the degradation of humic acid, J. Hazard. Mater., 179 (2010) 533–539.
  30. A.R. Laiju, T. Sivasankar, P.V. Nidheesh, Iron-loaded mangosteen as a heterogeneous Fenton catalyst for the treatment of landfill leachate, Envion. Sci. Pollut. Res. Int., 21 (2014) 10900–10907.
  31. V. Kavitha, K. Palanivelu, Destruction of cresols by Fenton oxidation process, Water Res., 39 (2005) 3062–3072.
  32. P.V. Nidheesh, R. Rajan, Removal of rhodamine B from a water medium using hydroxyl and sulphate radicals generated by iron loaded activated carbon, RSC Adv., 6 (2016) 5330–5340.
  33. N. Panda, H. Sahoo, S. Mohapatra, Decolourization of Methyl Orange using Fenton-like mesoporous Fe2O3-SiO2 composite, J. Hazard. Mater., 185 (2011) 359–365.
  34. C. David, M. Arivazhagan, F. Tuvakara, Decolorization of distillery spent wash effluent by electro oxidation (EC and EF) and Fenton processes: a comparative study, Ecotoxicol. Environ. Saf., 121 (2015) 142–148.
  35. S. Xavier, R. Gandhimathi, P.V. Nidheesh, S.T. Ramesh, Comparison of homogeneous and heterogeneous Fenton processes for the removal of reactive dye Magenta MB from aqueous solution, Desal. Wat. Treat., 53 (2013) 109–118.
  36. K. Li, H. Li, T. Xiao, G. Zhang, J. Long, D. Luo, H. Zhang, J. Xiong, Q. Wang, Removal of thallium from wastewater by a combination of persulfate oxidation and iron coagulation, Process Saf. Environ. Prot., 119 (2018) 340–349.
  37. H. Li, Y. Chen, J. Long, D. Jiang, J. Liu, S. Li, J. Qi, P. Zhang, J. Wang, J. Gong, Q. Wu, D. Chen, Simultaneous removal of thallium and chloride from a highly saline industrial wastewater using modified anion exchange resins, J. Hazard. Mater., 333 (2017) 179–185.
  38. F. Fu, B. Tang, Q. Wang, J. Liu, Degradation of Ni-EDTA complex by Fenton reaction and ultrasonic treatment for the removal of Ni2+ ions, Environ. Chem. Lett., 8 (2009) 317–322.
  39. K.M. Coup, P.J. Swedlund, Demystifying the interfacial aquatic geochemistry of thallium(I): new and old data reveal just a regular cation, Chem. Geol., 398 (2015) 97–103.
  40. M. Vilve, A. Hirvonen, M. Sillanpää, Effects of reaction conditions on nuclear laundry water treatment in Fenton process, J. Hazard. Mater., 164 (2009) 1468–1473.
  41. N. Ertugay, F.N. Acar, Removal of COD and color from Direct Blue 71 azo dye wastewater by Fenton’s oxidation: kinetic study, Arab. J. Chem., 10 (2017) S1158–S1163.
  42. X.J. Ma, H.L. Xia, Treatment of water-based printing ink wastewater by Fenton process combined with coagulation, J. Hazard. Mater., 162 (2009) 386–390.
  43. V. Kavitha, K. Palanivelu, The role of ferrous ion in Fenton and photo-Fenton processes for the degradation of phenol, Chemosphere, 55 (2004) 1235–1243.
  44. S.G. Schrank, J.N.R. dos Santos, D.S. Souza, E.E.S. Souza, Decolourisation effects of Vat Green 01 textile dye and textile wastewater using H2O2/UV process, J. Photochem. Photobiol. A: Chem., 186 (2007) 125–129.
  45. T. Mandal, D. Dasgupta, S. Mandal, S. Datta, Treatment of leather industry wastewater by aerobic biological and Fenton oxidation process, J. Hazard. Mater., 180 (2010) 204–211.
  46. F.J. Rivas, F.J. Beltrán, O. Gimeno, P. Alvarez, Optimisation of Fenton’s reagent usage as a pre-treatment for fermentation brines, J. Hazard. Mater., 96 (2003) 277.
  47. H. Gallard, J.D. Laat, B. Legube, Spectrophotometric study of the formation of iron(III)-hydroperoxy complexes in homogeneous aqueous solutions, Water Res., 33 (1999) 2929–2936.
  48. G. Li, Q. Xu, X. Jin, R. Li, R. Dharmarajan, Z. Chen, Enhanced adsorption and Fenton oxidation of 2,4-dichlorophenol in aqueous solution using organobentonite supported nZVI, Sep. Purif. Technol., 197 (2018) 401–406.
  49. C.E. Noradoun, I.F. Cheng, EDTA degradation induced by oxygen activation in a zerovalent iron/air/water system, Environ. Sci. Technol., 39 (2005) 7158–7163.
  50. B.W. Vink, The behaviour of thallium in the (sub) surface environment in terms of Eh and pH, Chem. Geol., 109 (1993) 119–123.
  51. Y. Liu, W. Lu, X. Wang, Z. Huang, C. Xu, Y. Tao, X. Zhao, J. Qi, J. Ma, Highly efficient removal of trace thallium from contaminated source waters with ferrate: role of in situ formed ferric nanoparticle, Water Res., 124 (2017) 149.
  52. P.R. Gogate, A.B. Pandit, A review of imperative technologies for wastewater treatment I: oxidation technologies at ambient conditions, Adv. Environ. Res., 8 (2004) 501–551.
  53. H. Zhang, N. Li, Y. Wang, D. Zhao, J. He, H. You, J. Jiang, Realtime monitoring of the degradation of Cu(II)-EDTA in H2O2/UV using illumination-assisted droplet spray ionization mass spectrometry, Chemosphere, 184 (2017) 932–938.
  54. G.V. Buxton, C.L. Greenstock, W.P. Helman, A.B. Ross, Critical review of rate constants for reactions of hydrated electrons, hydrogen atoms and hydroxyl radicals (OH/O) in aqueous solution, J. Phys. Chem. Ref. Data, 17 (1988) 513–886.
  55. G. Zhang, J. Qu, H. Liu, R. Liu, R. Wu, Preparation and evaluation of a novel Fe-Mn binary oxide adsorbent for effective arsenite removal, Water Res., 41 (2007) 1921–1928.
  56. X. You, L. Chai, Y. Wang, Y. Su, N. Zhao, Y. Shu, Regeneration of activated carbon adsorbed EDTA by electrochemical method, Trans. Nonferrous Met. Soc. China, 23 (2013) 855–860.
  57. A. Gupta, M. Yunus, N. Sankararamakrishnan, Zerovalent iron encapsulated chitosan nanospheres-a novel adsorbent for the removal of total inorganic arsenic from aqueous systems, Chemosphere, 86 (2012) 150–155.
  58. D.Y. Lee, J.E. Cho, N.I. Cho, M.H. Lee, S.J. Lee, B.Y. Kim, Characterization of electrospun aluminum-doped zinc oxide nanofibers, Thin Solid Films, 517 (2008) 1262–1267.
  59. Y. Abe, T. Kokubo, T. Yamamuro, Apatite coating on ceramics, metals and polymers utilizing a biological process, J. Mater. Sci. - Mater. Med., 1 (1990) 233–238.
  60. M. Moosavi-Nasab, S. Pashangeh, M. Rafsanjani, Effect of fermentation time on xanthan gum production from sugar beet molasses, World Acad. Sci. Eng. Technol., 4 (2010) 1018–1021.
  61. K.H. Young, E.J. Smith, M.M. Eddy, T.W. James, XPS study of thallium oxidation states in precursor TlBaCaCuO HTSC thin films, Appl. Surf. Sci., 52 (1991) 85–89.
  62. A.L.J. Peter, T. Viraraghavan, Thallium: a review of public health and environmental concerns, Environ. Int., 31 (2005) 493–501.
  63. Z. Wan, J. Wang, Degradation of sulfamethazine using Fe3O4-Mn3O4/reduced graphene oxide hybrid as Fenton-like catalyst, J. Hazard. Mater., 324 (2017) 653–664.
  64. V. Datsyuk, M. Kalyva, K. Papagelis, J. Parthenios, D. Tasis, A. Siokou, I. Kallitsis, C. Galiotis, Chemical oxidation of multiwalled carbon nanotubes, Carbon, 46 (2008) 833–840.
  65. X.B. Zheng, C.X. Ding, Characterization of plasma-sprayed hydroxyapatite/TiO2 composite coatings, J. Therm. Spray Technol., 9 (2000) 520–525.
  66. D. Zhou, Y. Hu, G. Qian, W. Yuan, J. Deng, Y. Dang, Decomplexation efficiency and mechanism of Cu(II)–EDTA by H2O2 coupled internal micro-electrolysis process, Environ. Sci. Pollut. Res. Int., 26 (2016) 1–11.
  67. A. Vaněk, Z. Grösslová, M. Mihaljevič, J. Trubač, V. Ettler, L. Teper, J. Cabala, J. Rohovec, T. Zádorová, V. Penížek, L. Pavlů, O. Holubík, K. Němeček, J. Houška, O. Drábek, C. Ash, Isotopic tracing of thallium contamination in soils affected by emissions from coal-fired power plants, Environ. Sci. Technol., 50 (2016) 9864–9871.
  68. M. Chen, P. Wu, L. Yu, S. Liu, B. Ruan, H. Hu, N. Zhu, Z. Lin, FeOOH-loaded MnO2 nano-composite: an efficient emergency material for thallium pollution incident, J. Environ. Manage., 192 (2017) 31–38.