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Electro-Fenton and Electro-Fenton-like with in situ electrogeneration of H2O2 and catalyst applied to 4-chlorophenol mineralization

机译:原位生成H2O2的电芬顿和类Fenton催化剂以及用于4-氯苯酚矿化的催化剂

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The in situ generation of H2O2 and its dissociation catalyst were conducted in an undivided electrochemical cell with two set of electrodes (graphite for the former and Fe or Cu for the latter) energized by two different power sources. This arrangement allowed to conduct Electro-Fenton and Electro-Fenton like processes with less addition of chemicals than the conventional chemical process. 4-Chlorophenol was elected as model molecule. The studied variables were catalyst type (iron or copper), current density, oxygen flowrate, number and length of current pulses. It was concluded that Cu is a better catalyst for H2O2 dissociation. Within the studied conditions, a maximum of 70% removal of TOC was attained by the Electro-Fenton-Like process. At the same conditions, only a 45% of TOC removal was achieved by Electro-Fenton. It was also concluded that unlike Cu, Fe should be added only at the beginning of the process since its later addition is rather detrimental due mainly to an accelerated *OH consumption by excess of metallic ions. (C) 2016 Elsevier Ltd. All rights reserved.
机译:H2O2及其解离催化剂的原位生成是在一个不分隔的电化学电池中进行的,该电池具有两组电极(前者为石墨,后者为Fe或Cu),并由两种不同的电源供电。与常规化学过程相比,这种布置允许以更少的化学物质添加进行电子芬顿和类似电子芬顿的过程。 4-氯酚被选为模型分子。研究的变量是催化剂类型(铁或铜),电流密度,氧气流速,电流脉冲的数量和长度。结论是,Cu是用于H 2 O 2分解的更好的催化剂。在研究的条件下,通过电子芬顿样工艺最大可去除70%的TOC。在相同条件下,Electro-Fenton仅可实现TOC去除率的45%。还得出结论,与铜不同,应仅在工艺开始时才添加铁,因为稍后添加铁相当有害,这主要是由于过量的金属离子加速了* OH的消耗。 (C)2016 Elsevier Ltd.保留所有权利。

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