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Degradation mechanism of HCN by electrochemically coupled copper-loaded magnetic nanoparticles in a liquid phase pseudo-homogeneous system

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Hydrogen cyanide (HCN) comes from a wide range of sources, but it is highly toxic and corrosive, harming the environment and human health. This experiment used magnetic nano-Fe3O4 particles loaded… Click to show full abstract

Hydrogen cyanide (HCN) comes from a wide range of sources, but it is highly toxic and corrosive, harming the environment and human health. This experiment used magnetic nano-Fe3O4 particles loaded with Cu (Cu-Fe3O4 magnetic nanoparticles) for electrochemical catalytic purification of HCN in a liquid phase pseudo-homogeneous system. The results show that the purification efficiency of Cu-Fe3O4 magnetic nanoparticles on HCN is 70% without electricity. After a certain voltage is applied, the degradation efficiency of 2 h with iron-carbon particles is significantly improved, and the degradation efficiency can reach about 95%. And the degradation efficiency increases with the increase of voltage. The electrochemical synergistic degradation mechanism of Cu-Fe3O4 magnetic nanoparticles is complex, which can directly catalyze the degradation of HCN or form CNO− intermediates to further degrade into CO2, H2O, and NH3. Meanwhile, Fe2+, Cu+, and other transition metal ions in the liquid phase participate in the Fenton-like reaction to further degrade HCN. The results show that the synergistic electrochemical degradation of HCN by Cu-Fe3O4 magnetic nanoparticles has excellent potential to degrade highly toxic gases.

Keywords: fe3o4 magnetic; liquid phase; magnetic nanoparticles; hcn; degradation

Journal Title: Environmental Science and Pollution Research
Year Published: 2022

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