Incorporating Se vacancies into FeSe2/Fe2O3@C to enhance H2O2 adsorption for efficient photo-Fenton removal of As(III)

Incorporating Se vacancies into FeSe2/Fe2O3@C to enhance H2O2 adsorption for efficient photo-Fenton removal of As(III)
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DOI:
10.1016/j.apsusc.2022.154879
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发表时间:
2022-09
影响因子:
6.7
通讯作者:
Ziyang Xiang;Hui Wang;Ruizhi Wen;Yanmei Li;Junliang Yang;Jinglin Yin;Jing Wang;Wen-lei Wang-
Ziyang Xiang;Hui Wang;Ruizhi Wen;Yanmei Li;Junliang Yang;Jinglin Yin;Jing Wang;Wen-lei Wang-
中科院分区:
材料科学1区
文献类型:
--
作者:
Ziyang Xiang;Hui Wang;Ruizhi Wen;Yanmei Li;Junliang Yang;Jinglin Yin;Jing Wang;Wen-lei Wang-

文献摘要

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In this study, iron selenide (FeSe2) and ferric oxide (Fe2O3) were constructed through a hydrothermal method on macroporous biochar for enhancing H2O2adsorption. The mechanism of FeSe2-10/Fe2O3@C adsorption H2O2to produce hydroxyl radicals (radical dotOH) has been explored by density functional theory (DFT) and electron paramagnetic resonance (EPR). Se2−provided electrons for Fe3+and converted Fe3+into Fe2+, resulting in the formation of Se vacancies (SVs) on the surface of the original FeSe2and providing more active sites for H2O2adsorption. The Bader charge calculations show that the supplied charge for the decomposition of H2O2is mainly provided by the Fe atom. The whole decomposition of H2O2reduces the total energy of the system by 0.552 eV. The length of the O–O bond in H2O2after adsorption on SVs is 0.08 Å longer than before. The results of experiments show that As(III) (10 mg/L) was found to be completely degraded within 100 min in the Fenton reaction. The catalyst still maintained 91% degradation rate after 5 cycles and the crystal plane of the catalyst has no changed. This study proposes a kind of theory about H2O2adsorption by SVs that can be expected to the degradation of As(III) in the environment.