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氧阴离子修饰的零价铁具有优异的污染物去除性能。

Oxyanion-modified zero valent iron with excellent pollutant removal performance.

机构信息

School of Environmental Science and Engineering, Shanghai Jiao Tong University, Shanghai 200240, P. R. China.

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

出版信息

Chem Commun (Camb). 2023 Feb 16;59(15):2081-2089. doi: 10.1039/d2cc06814a.

Abstract

Oxyanion-modified zero valent iron (OM-ZVI), including oxyanion-modified microscale ZVI (OM-mZVI) and nanoscale zero valent iron (OM-nZVI), has attracted growing interest in recent years for their excellent pollutant removal performance. This feature article summarizes the recent progress of OM-ZVI materials, including their synthesis, characterization, enhanced pollutant removal performance, and structure-property relationships. Generally, OM-ZVI could be synthesized with wet chemical and mechanochemical (ball-milling) methods and then characterized with state-of-the-art characterization techniques (, X-ray-based spectroscopy, electron microscopy) to reveal their structure and physicochemical properties. We found that phosphate modification could form iron-phosphate on the nZVI surface, facilitating Cr(VI) removal, while the phosphorylation process could induce tensile hoop stress to produce numerous radial nanocracks in the structurally-dense spherical nZVI for enhanced Ni(II) removal a boosted Kirkendall effect. Oxalate modification could trigger electron delocalization to increase electron cloud density and surface-bound Fe(II) of mZVI for enhanced Cr(VI) removal, while oxalated mZVI exhibited more efficient Cr(VI) removal performance an formed FeCO·2HO shell of high proton conductivity, favoring Cr(VI) reduction. Differently, the mechanochemical treatment of mZVI with BO could exert tensile strain on it through interstitial boron doping, thereby promoting the release and transfer of electrons from its Fe(0) core to its iron oxide shell for dramatic Cr(VI) reduction. This article aims to demonstrate the potential of OM-ZVI for pollution control and environmental remediation.

摘要

氧阴离子修饰零价铁(OM-ZVI),包括氧阴离子修饰的微尺度零价铁(OM-mZVI)和纳米零价铁(OM-nZVI),近年来因其优异的污染物去除性能而引起了越来越多的关注。本文总结了 OM-ZVI 材料的最新进展,包括其合成、表征、增强的污染物去除性能以及结构-性能关系。通常,OM-ZVI 可以通过湿化学和机械化学(球磨)方法合成,然后用最先进的表征技术(X 射线光谱、电子显微镜)进行表征,以揭示其结构和物理化学性质。我们发现,磷酸盐修饰可以在 nZVI 表面形成铁磷酸盐,有利于 Cr(VI)的去除,而磷酸化过程会在结构致密的球形 nZVI 中产生大量径向纳米裂纹,从而诱导拉伸环向应力,增强 Ni(II)的去除效果-增强的 Kirkendall 效应。草酸盐修饰可以引发电子离域,增加 mZVI 的电子云密度和表面结合的 Fe(II),从而增强 Cr(VI)的去除效果,而草酸盐修饰的 mZVI 则表现出更高的 Cr(VI)去除性能-形成具有高质子传导性的 FeCO·2HO 壳,有利于 Cr(VI)的还原。不同的是,用 BO 对 mZVI 进行机械化学处理可以通过间隙硼掺杂对其施加拉伸应变,从而促进电子从其 Fe(0)核心向其氧化铁壳释放和转移,从而显著促进 Cr(VI)的还原。本文旨在展示 OM-ZVI 在污染控制和环境修复方面的潜力。

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