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Sulfidation enhances stability and mobility of carboxymethyl cellulose stabilized nanoscale zero-valent iron in saturated porous media

机译:硫化可增强羧甲基纤维素稳定的纳米级零价铁在饱和多孔介质中的稳定性和迁移率

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Sulfidation can enhance the reactivity and longevity of nanoscale zero-valent iron (nZVI), but little is known about its effect on the fate and transport of nZVI in saturated porous media. This work compared the stability and mobility of carboxymethyl cellulose (CMC) stabilized nZVI (CMC-nZVI) and sulfidated nZVI (CMC-S-nZVI) particles in saturated porous media. After sulfidation, the hydrodynamic size of CMC-S-nZVI was 100-150 nm larger than CMC-nZVI due to enhanced adsorption of CMC onto the S-nZVI surface, which was facilitated by the bidentate bridging interaction between CMC and the FeS_x phase on S-nZVI. Of note is that they had a similar core size and zeta potential. In comparison to CMC-nZVI, CMC-S-nZVI exhibited less physical settling (0-5% vs. 5-73%) and chemical dissolution (2-10% vs. 3-27%) within 55 min under the same ionic conditions (Na~+, K~+ < 200 mM; Al~(3+) < 0.75 mM). Column breakthrough experiments showed that both CMC-S-nZVI and CMC-nZVI had relatively high mobility in saturated porous media. However, CMC-S-nZVI exhibited greater breakthrough (C/C_0 = 0.57-1.0) and corresponding greater mass recovery rates than the corresponding CMC-nZVI (C/C_0 = 0.44-1.0) under most of the experimental conditions (e.g., different ion type and concentration, flow rate, and input concentration). The fitted colloid filtration theory model was in good agreement with experiments. This work suggests that in addition to the significant reactivity and longevity improvements demonstrated in other studies, CMC-S-nZVI is also more mobile than CMC-nZVI suggesting that CMC-S-nZVI has many of the characteristics favorable for field application.
机译:硫化可增强纳米级零价铁(nZVI)的反应性和寿命,但对其在饱和多孔介质中对nZVI的命运和转运的影响知之甚少。这项工作比较了羧甲基纤维素(CMC)稳定的nZVI(CMC-nZVI)和硫化nZVI(CMC-S-nZVI)颗粒在饱和多孔介质中的稳定性和迁移率。硫化后,由于增强了CMC在S-nZVI表面上的吸附,CMC-S-nZVI的流体力学尺寸比CMC-nZVI大100-150 nm,这是由于CMC与FeS_x相之间的双齿桥联反应所促进的。 S-nZVI。值得注意的是,它们具有相似的核心尺寸和ζ电势。与CMC-nZVI相比,在相同离子下55分钟内,CMC-S-nZVI表现出较少的物理沉降(0-5%对5-73%)和化学溶解(2-10%对3-27%)条件(Na〜+,K〜+ <200 mM; Al〜(3+)<0.75 mM)。色谱柱穿透实验表明,CMC-S-nZVI和CMC-nZVI在饱和多孔介质中均具有相对较高的迁移率。但是,在大多数实验条件下(例如,不同的条件下),CMC-S-nZVI与相应的CMC-nZVI(C / C_0 = 0.44-1.0)相比,具有更大的突破(C / C_0 = 0.57-1.0)和相应的更大的质量回收率。离子类型和浓度,流速和输入浓度)。拟合的胶体过滤理论模型与实验吻合良好。这项工作表明,除了其他研究显示出显着的反应性和寿命提高外,CMC-S-nZVI还比CMC-nZVI更具流动性,这表明CMC-S-nZVI具有许多有利于现场应用的特性。

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