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Degradation of Trichloroethene with a Novel Ball Milled Fe-C Nanocomposite

机译:新型球磨Fe-C纳米复合材料降解三氯乙烯

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Nanoscale zero-valent iron (NZVI) is effective in reductively degrading dense non-aqueous phase liquids (DNAPLs), such as trichloroethene (TCE), in groundwater (i.e., dechlorination) although the NZVI technology itself still suffers from high material costs and inability to target hydrophobic contaminants in source zones. To address these problems, we developed a novel, inexpensive iron-carbon (Fe-C) nanocomposite material by simultaneously milling micron-size iron and activated carbon powder. Microscopic and X-ray diffraction (XRD) characterization of the composite material revealed that nanoparticles of Fe were dispersed in activated carbon and a new iron carbide phase was formed. Bench-scale studies showed that this material instantaneously sorbed >90% of TCE from aqueous solutions and subsequently decomposed TCE into non-chlorinated products. Compared to milled Fe, Fe-C nanocomposite dechlorinated TCE at a slightly slower rate and favored the production of ethene over other TCE degradation products such as C-3-C-6 compounds. When placed in hexane-water mixture, the Fe-C nanocomposite materials are preferentially partitioned into the organic phase, indicating the ability of the composite materials to target DNAPL during remediation. (C) 2015 Elsevier B.V. All rights reserved.
机译:纳米级零价铁(NZVI)可有效还原地下水中的致密非水相液体(DNAPLs),例如三氯乙烯(TCE)(即脱氯),尽管NZVI技术本身仍会遭受高昂的材料成本和无能为力的困扰靶向源区中的疏水污染物。为了解决这些问题,我们通过同时研磨微米级的铁和活性炭粉末,开发了一种新型,廉价的铁碳(Fe-C)纳米复合材料。复合材料的显微和X射线衍射(XRD)表征表明,Fe的纳米颗粒分散在活性炭中,并形成了新的碳化铁相。基准规模研究表明,该物质会立即从水溶液中吸附90%以上的三氯乙烯,然后将三氯乙烯分解为非氯化产品。与碾磨的Fe相比,Fe-C纳米复合材料对TCE的脱氯速率稍慢,并且比其他TCE降解产物(如C-3-C-6化合物)更易于生产乙烯。当放入己烷-水混合物中时,Fe-C纳米复合材料会优先分配到有机相中,这表明复合材料在修复过程中靶向DNAPL的能力。 (C)2015 Elsevier B.V.保留所有权利。

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