Enhanced immobilization of U(VI) using a new type of FeS-modified Fe0 core-shell particles

零价铁 化学 X射线光电子能谱 反应性(心理学) 吸附 傅里叶变换红外光谱 核化学 硫化 无机化学 硫黄 化学工程 物理化学 医学 替代医学 有机化学 工程类 病理
作者
Jun Duan,Haodong Ji,Wen Liu,Xiao Zhao,Bing Han,Shuting Tian,Dongye Zhao
出处
期刊:Chemical Engineering Journal [Elsevier BV]
卷期号:359: 1617-1628 被引量:82
标识
DOI:10.1016/j.cej.2018.11.008
摘要

Sulfur-modified zero valent iron (S-ZVI) particles have been reported to show improved reactivity and selectivity than conventional ZVI. However, current methods for ZVI sulfidation do not fully utilize the advantages of the material, and S-ZVI has not been tested for U(VI) immobilization. In this work, we synthesized a new type of FeS-modified ZVI core-shell particles ([email protected]0) through a facile two-step reaction approach, and then tested for reductive sequestration of U(VI) in water. X-ray diffraction, Scanning transmission electron microscopy, and physical property analyses confirmed the formation of the core-shell structure, surface compositions and magnetic properties. Batch kinetic tests showed that [email protected]0 with an Fe0/FeS molar ratio of 1:1 offered the highest U(VI) reduction rate, prolonged reactive life than pristine ZVI, and the reduced uranium was most resistant to re-oxidation when exposed to oxygen. The retarded first-order kinetic model was able to adequately interpret the experimental rate data. [email protected]0 performed well over the pH range 5.5–9.0, with higher pH more favoring the reaction. High concentrations (5–10 mg/L) of humic acid, bicarbonate (1–5 mM) and Ca2+ (1 mM) showed only modest inhibition to the U(VI) reduction. Fourier transform infrared spectroscopy, X-ray photoelectron spectroscopy, and extraction studies indicated that U(VI) was immobilized via both direct adsorption and reductive precipitation, where Fe0 was the main electron source, with Fe0, sorbed Fe(II) and structural Fe(II) acting as the electron donors. [email protected]0 may serve as an improved material for efficient immobilization of U(VI) and other redox-active contaminants in water.
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