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具有核壳结构的 Fe@Fe2O3 纳米线去除缺氧态六价铬的研究:表面结合的 Fe(II)的不可或缺的作用。

Insight into core-shell dependent anoxic Cr(VI) removal with Fe@Fe2O3 nanowires: indispensable role of surface bound Fe(II).

机构信息

Key Laboratory of Pesticide and Chemical Biology of Ministry of Education, Institute of Environmental Chemistry, Central China Normal University , Wuhan 430079, P. R. China.

出版信息

ACS Appl Mater Interfaces. 2015 Jan 28;7(3):1997-2005. doi: 10.1021/am507815t. Epub 2015 Jan 13.

Abstract

In this study, we investigated the anoxic Cr(VI) removal with core-shell Fe@Fe2O3 nanowires. It was found the surface area normalized Cr(VI) removal rate constants of Fe@Fe2O3 nanowires first increased with increasing the iron oxide shell thickness and then decreased, suggesting that Fe@Fe2O3 nanowires possessed an interesting core-shell structure dependent Cr(VI) removal property. Meanwhile, the Cr(VI) removal efficiency was positively correlated to the amount of surface bound Fe(II). This result revealed that the core-shell structure dependent Cr(VI) removal property of Fe@Fe2O3 nanowires was mainly attributed to the reduction of Cr(VI) by the surface bound Fe(II) besides the reduction of Cr(VI) adsorbed on the iron oxide shell via the electrons transferred from the iron core. The indispensable role of surface bound Fe(II) was confirmed by Tafel polarization and high-resolution X-ray photoelectron spectroscopic depth profiles analyses. X-ray diffraction patterns and scanning electron microscope images of the fresh and used Fe@Fe2O3 nanowires revealed the formation of Fe(III)/Cr(III)/Cr(VI) composite oxides during the anoxic Cr(VI) removal process. This study sheds a deep insight into the anoxic Cr(VI) removal mechanism of core-shell Fe@Fe2O3 nanowires and also provides an efficient Cr(VI) removal method.

摘要

在这项研究中,我们研究了核壳结构 Fe@Fe2O3 纳米线对缺氧条件下六价铬的去除。研究发现,随着氧化铁壳厚度的增加,Fe@Fe2O3 纳米线的单位比表面积六价铬去除速率常数先增加后减小,这表明 Fe@Fe2O3 纳米线具有有趣的核壳结构依赖的六价铬去除性能。同时,六价铬去除效率与表面结合的 Fe(II)量呈正相关。这一结果表明,Fe@Fe2O3 纳米线的核壳结构依赖的六价铬去除性能主要归因于表面结合的 Fe(II)还原,而不是通过铁核转移电子还原氧化铁壳上吸附的六价铬。通过 Tafel 极化和高分辨率 X 射线光电子能谱深度剖析证实了表面结合的 Fe(II)的不可或缺的作用。新鲜和使用后的 Fe@Fe2O3 纳米线的 X 射线衍射图谱和扫描电子显微镜图像表明,在缺氧条件下六价铬去除过程中形成了 Fe(III)/Cr(III)/Cr(VI)复合氧化物。这项研究深入了解了核壳结构 Fe@Fe2O3 纳米线缺氧条件下六价铬的去除机制,并提供了一种有效的六价铬去除方法。

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