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Hydrothermal synthesis of FeS2 as a highly efficient heterogeneous electro-Fenton catalyst to degrade diclofenac via molecular oxygen effects for Fe (II)/Fe(III) cycle

机译:FES2的水热合成作为高效的异构电芬催化剂,通过用于Fe(II)/ Fe(III)循环的分子氧效应来降解双氯芬酸

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摘要

In this study, we demonstrated that hydrothermal synthesized FeS2 was highly efficient to catalyze the H2O2 decomposition for diclofenac sodium (DCF) degradation in a wide range of initial pH (3-9) by heterogeneous electro-Fenton (EF) process, and this "Pyrite-EF" showed a better performance for the mineralization of DCF in comparison with the classic EF process. Effect of pyrite content on the hydroxyl radicals generation and iron dissolution produced by the decomposition of hydrogen peroxide (H2O2), and applied current density on the degradation kinetics and mineralization efficiency were studied. Moreover, toxicity assessment by means of microtox method showed the solution toxicity was removed after treatment. Experimental results revealed that the enhancement of DCF degradation rate in the Pyrite-EF process was attributed to the molecular oxygen activation induced by more surface bound ferrous ions on FeS2, generating superoxide anions to accelerate the Fe(II)/Fe(III) cycle on the FeS2 surface, which favored the H2O2 decomposition to generate more hydroxyl radicals for the DCF degradation via a heterogeneous EF-like process. These findings could provide some new insights into the molecular oxygen activation induced by FeS2 and the subsequent heterogeneous Pyrite-EF degradation of organic pollutants from wastewater.
机译:在这项研究中,我们证明了水热合成的FES2高效,以通过异质电气 - 芬顿(EF)工艺在各种初始pH(3-9)中催化双氯芬酸钠(DCF)降解的H2O2分解,并通过这种方法,“与经典EF过程相比,Pertite-EF“显示了DCF的矿化的更好性能。研究了黄铁矿含量对通过过氧化氢(H2O2)的分解产生的羟基自由基的产生和铁溶解,以及对降解动力学和矿化效率的施加电流密度。此外,借助于微米毒性方法的毒性评估显示治疗后除去溶液毒性。实验结果表明,在FES2上的更多表面结合的黑色离子诱导的分子氧激活归因于FES2上的分子氧活化,产生超氧化物阴离子,以加速Fe(II)/ Fe(III)循环FES2表面,最有利于H 2 O 2分解,以通过异质的EF样方法产生更高的DCF降解的羟基自由基。这些发现可以为FES2诱导的分子氧活化和随后的废水中的有机污染物的降解提供一些新的见解。

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