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Preparation of micro-electrolysis material from flotation waste of copper slag and its application for degradation of organic contaminants in water

机译:用铜渣浮选废料制​​备微电解材料及其在降解水中有机污染物中的应用

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摘要

Flotation waste of copper slag (FWCS) was used as a raw material for the preparation of a micro-electrolysis material (MEM) through a carbothermal reduction process. The performance of MEM was evaluated for the degradation of organic contaminants in water. The effects of preparation conditions on the performance of MEM were investigated. Results showed that the MEM prepared under the conditions of calcination temperature of 1100 degrees C, calcination time of 60 min, and coal dosage of 25% presented the best performance for degrading methyl orange (MO). The decolorization process was enhanced by increasing the MEM dosage, decreasing the initial pH of the solution, and raising the solution temperature. Moreover, the MEM presented good capability for the degradation of methylene blue, eosin Y, and acid fuchsin. X-ray diffraction (XRD) analysis showed that increasing the roasting temperature was beneficial to the formation of zero-valent iron (ZVI). Scanning electron microscopy (SEM) and energy-dispersive spectroscopy (EDS) showed that micro-sized ZVI particles were formed in the MEM, and they contained a small amount of copper element. Meanwhile, the mechanism analysis showed that a redox reaction of the MEM and MO occurred, the azo bond of MO was destroyed, and sulfanilic acid was generated.
机译:浮渣铜渣(FWCS)被用作通过碳热还原法制备微电解材料(MEM)的原料。针对水中有机污染物的降解,评估了MEM的性能。研究了制备条件对MEM性能的影响。结果表明,在1100℃的煅烧温度,60分钟的煅烧时间和25%的煤用量条件下制备的MEM表现出最佳的降解甲基橙(MO)的性能。通过增加MEM剂量,降低溶液的初始pH值和升高溶液温度来增强脱色过程。此外,MEM表现出良好的降解亚甲基蓝,曙红Y和酸性品红的能力。 X射线衍射(XRD)分析表明,提高焙烧温度有利于零价铁(ZVI)的形成。扫描电子显微镜(SEM)和能量色散光谱(EDS)表明,在MEM中形成了微细的ZVI颗粒,并且其中含有少量的铜元素。同时,机理分析表明,MEM和MO发生了氧化还原反应,MO的偶氮键被破坏,生成了磺胺酸。

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