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Nanoscale zero-valent iron impregnation of covalent organic polymer grafted activated carbon for water treatment

机译:纳米级零价铁浸渍共价有机聚合物接枝活性炭用于水处理

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摘要

The use of nanoscale zero valent iron (nZVI) has quickly become a leading research material for the treatment of typically hard to degrade contaminants found in groundwater. These contaminants include antibiotics, pesticides, halogenated organics, heavy metals, among others. However, the effectiveness of nZVI has its limitations, due to its high reactivity and subsequent loss of degradative ability. Therefore, nZVI must be stabilized in a matrix allowing for the maintaining of reactivity, as well as the protection from the effects of the surrounding environment. By employing a nanoporous polymeric network already previously proven to stabilize nZVI and a long-standing water treatment material,1 activated carbon; we have developed an advanced material that allows for the not only the stabilization of nZVI, but also the improved degradation of various water contaminants. This was done by performing a series of surface modification techniques to the surface of the activated carbon, then physically grafting the covalent organic polymer to the carbon in a shell-like manner, and ultimately synthesizing nZVI in situ within the pores of both the activated carbon and the polymeric network. Not only does this enhanced version of activated carbon utilize the outstanding adsorptive properties of both activated carbon and the polymeric network, but it also employs the degradation capability of nZVI. In this way, a new breed of materials is being developed, working in a synergistic manner for the purpose of the remediation of contaminants found in the groundwater. We confirmed the existence of the polymeric shell with a variety of chemical characterization techniques; including Fourier transform infrared spectroscopy (FTIR), elemental analysis, X-ray photoelectron spectroscopy (XPS), transmission electron microscopy (TEM), and scanning electron microscopy (SEM). We also monitored the degradation and/or adsorption of various contaminants (e.g. chlorinated organics like trichloroethylene and trichloroethane, and heavy metals like cadmium and nickel) to produce the kinetics of the interactions.
机译:纳米级零价铁(nZVI)的使用已迅速成为领先的研究材料,用于处理地下水中通常难以降解的污染物。这些污染物包括抗生素,农药,卤化有机物,重金属等。然而,由于nZVI的高反应性和随后的降解能力丧失,其有效性有其局限性。因此,必须将nZVI稳定在基质中,以保持反应性并保护免受周围环境的影响。通过使用已经被证明可以稳定nZVI和长期使用的水处理材料的纳米多孔聚合物网络1活性炭;我们开发了一种先进的材料,不仅可以稳定nZVI,而且可以改善各种水污染物的降解。这是通过对活性炭的表面进行一系列表面改性技术,然后将共价有机聚合物以壳状方式物理接枝到碳上,并最终在两个活性炭的孔内原位合成nZVI来完成的。和聚合物网络。这种增强版本的活性炭不仅利用了活性炭和聚合物网络的出色吸附性能,而且还利用了nZVI的降解能力。通过这种方式,正在开发一种新型材料,它们以协同方式工作,以修复地下水中发现的污染物。我们通过多种化学表征技术证实了聚合物壳的存在。包括傅里叶变换红外光谱(FTIR),元素分析,X射线光电子能谱(XPS),透射电子显微镜(TEM)和扫描电子显微镜(SEM)。我们还监控了各种污染物(例如三氯乙烯和三氯乙烷之类的氯化有机物,以及镉和镍之类的重金属)的降解和/或吸附,以产生相互作用的动力学。

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