4.7 Article

Treatment of shale gas produced water by magnetic CuFe2O4/TNTs hybrid heterogeneous catalyzed ozone: Efficiency and mechanisms

期刊

JOURNAL OF HAZARDOUS MATERIALS
卷 423, 期 -, 页码 -

出版社

ELSEVIER
DOI: 10.1016/j.jhazmat.2021.127124

关键词

Heterogeneous catalysis; Ozone; Shale-gas produced water; CuFe2O4; titanium nanotubes; Hydroxyl radicals

资金

  1. New Teacher Research Startup Program of Harbin Engineering University [XK2100021029]
  2. National Key Research and Development Program of China [2017YFA0207203]
  3. National Natural Science Foundation of China [51978195]

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Experimental results showed that the CuFe2O4/TNTs/O3 system exhibited higher removal efficiency for CODCr and metal elements compared to the CuFe2O4/O3 system. The catalytic mechanism of CuFe2O4/TNTs/O3 system was proposed based on the analysis of experimental data.
Magnetic spinel ferrite (CuFe2O4) has been applied to catalyze ozone for treating the practical shale gas produced water (PW) in our previous study. In this work, CuFe2O4/titanium nanotubes (TNTs) catalyst was successfully prepared by an impregnation-calcination method. Characterization results revealed that the crystal form of CuFe2O4 was bound to the surface of TNTs, the particle size is much smaller than the pure CuFe2O4 crystal particle, which could weaken the influence of the internal diffusion process on its catalytic efficiency. The experimental results showed that the removal ratio of CODCr in the CuFe2O4/TNTs/O3 system was approximately 14% higher than that of the CuFe2O4/O3 system. The dissolution of metal elements decreased to one-third that of the CuFe2O4/O3 system. The inhibition ratio of PW on the growth of E. coli K12 decreased 68% after the CuFe2O4/TNTs catalytic oxidation process. Experimental results of complete capture experiments illustrated that the yield of HO center dot of the CuFe2O4/TNTs/O3 system was 10-19% higher than that of the CuFe2O4/O3 system. The elemental valence analysis revealed that the transition of Cu(II)-Cu(III) and Fe(II)-Fe(III) coexisted in the catalytic system. Besides, the surface hydroxyl groups promoted the electron transfer process and enhanced the ozone adsorption affinity. The proposed catalytic mechanisms of the CuFe2O4/TNTs/O3 system were proposed via the above analysis.

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