4.7 Article

Catalyzed H2O2 decomposition over iron oxides and oxyhydroxides: Insights from oxygen production and organic degradation

期刊

CHEMOSPHERE
卷 291, 期 -, 页码 -

出版社

PERGAMON-ELSEVIER SCIENCE LTD
DOI: 10.1016/j.chemosphere.2021.133037

关键词

Iron oxides; Iron oxyhydroxides; H2O2 decomposition; Oxygen production; Reactive oxygen species

资金

  1. Shanghai Municipal International Cooperation Foundation [19230713800]
  2. National Key R&D Program of China [2017YFE0195800]
  3. National Natural Science Foundation of China [52070128]

向作者/读者索取更多资源

This study investigates the decomposition of H2O2 over six different iron minerals and finds hematite and goethite to be the most promising minerals for environmental cleanup due to their high ROS production. Magnetite and maghemite are highly active for both H2O2 decomposition and O-2 production at neutral and basic pHs. Ferrihydrite and feroxyhyte, on the other hand, are problematic minerals for CHP as they have high O-2 production and negligible ROS generation at all pHs.
Iron minerals, such as iron oxides and iron oxyhydroxides, are the main influential soil components in catalyzed hydrogen peroxide propagation (CHP). Due to their dual effects on H2O2 activation to produce reactive oxygen species (ROS) and invalid consumption to produce oxygen, the intrinsic reactivity of iron minerals toward H2O2 decomposition requires comprehensive investigations. Herein, six iron minerals (hematite, magnetite, maghe-mite, goethite, feroxyhyte, and ferrihydrite) for H2O2 decomposition were investigated by a combination of normalized kinetic rate constants of H2O2 decomposition (Nk(H2O2)), O-2 production (Nk(O2)), benzoic acid degra-dation (Nk(BA)), and hexachloroethane degradation (Nk(HCA)) over the surface area of each mineral. The results indicate H2O2 decomposition over iron minerals is a surface-related heterogeneous process. Hematite and goethite are the most promising minerals for environmental cleanup in terms of ROS production, because their H2O2 utilization efficiency for benzoic acid (BA) degradation (0.138 and 0.024 mol BA/mol H2O2 for hematite and goethite, respectively) are highest among the six iron minerals. Magnetite and maghemite are highly active for both H2O2 decomposition and O-2 production at neutral and basic pHs. The presence of organic compounds suppresses O-2 production by more than 60%, which favors H2O2 utilization. Ferrihydrite and feroxyhyte are considered as the problematic mineral for CHP due to that the two minerals acquire a high O-2 production and negligible ROS generation at all pHs. The results of this study provide new insights to increase the understandings of H2O2-iron mineral systems and guide the application of iron minerals in chemical oxidation technologies.

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