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工程纳米级氧化铁用于铀的吸附和分离:颗粒核心尺寸和双层表面涂层的优化。

Engineering Nanoscale Iron Oxides for Uranyl Sorption and Separation: Optimization of Particle Core Size and Bilayer Surface Coatings.

机构信息

U.S. Army Corps of Engineers, Engineer Research and Development Center , Vicksburg, Mississippi 39180, United States.

出版信息

ACS Appl Mater Interfaces. 2017 Apr 19;9(15):13163-13172. doi: 10.1021/acsami.7b01042. Epub 2017 Apr 4.

DOI:10.1021/acsami.7b01042
PMID:28338312
Abstract

Herein, we describe engineered superparamagnetic iron oxide nanoparticles (IONPs) as platform materials for enhanced uranyl (UO) sorption and separation processes under environmentally relevant conditions. Specifically, monodispersed 8-25 nm iron oxide (magnetite, FeO) nanoparticles with tailored organic acid bilayered coatings have been systematically evaluated and optimized to bind, and thus remove, uranium from water. The combined nonhydrolytic synthesis and bilayer phase transfer material preparation methods yield highly uniform and surface tailorable IONPs, which allow for direct evaluation of the size-dependent and coating-dependent sorption capacities of IONPs. Optimized materials demonstrate ultrahigh sorption capacities (>50% by wt/wt) at pH 5.6 for 8 nm oleic acid (OA) bilayer and sodium monododecyl phosphate (SDP) surface-stabilized IONPs. Synchrotron-based X-ray absorption spectroscopy shows that iron oxide core particle size and stabilizing surface functional group(s) substantially affect U(VI)-removal mechanisms, specifically the ratio of uptake via adsorption versus reduction to U(IV). Taken together, tunable size and surface functionality, high colloidal stability, and favorable affinity toward uranium provide distinct synergistic advantage(s) for the application of bilayered IONPs as part of the next-generation material-based uranium recovery, remediation, and sensing technologies.

摘要

在此,我们将工程化超顺磁性氧化铁纳米粒子 (IONP) 描述为在环境相关条件下增强铀(UO)吸附和分离过程的平台材料。具体而言,经过系统评估和优化,具有定制有机双层涂层的单分散 8-25nm 氧化铁(磁铁矿,FeO)纳米粒子可用于结合并因此从水中去除铀。非水解合成和双层相转移材料制备方法的结合产生了高度均匀和表面可调节的 IONP,可直接评估 IONP 的尺寸依赖性和涂层依赖性吸附能力。优化后的材料在 pH 5.6 下对 8nm 油酸(OA)双层和单十二烷基磷酸钠(SDP)表面稳定的 IONP 表现出超高的吸附容量(>50%wt/wt)。基于同步加速器的 X 射线吸收光谱表明,氧化铁核粒子尺寸和稳定的表面官能团极大地影响了 U(VI)去除机制,特别是通过吸附和还原吸收 U(IV)的比例。总之,可调的尺寸和表面功能、高胶体稳定性以及对铀的有利亲和力为双层 IONP 作为下一代基于材料的铀回收、修复和传感技术的一部分提供了明显的协同优势。

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