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A highly efficient degradation mechanism of methyl orange using Fe-based metallic glass powders

机译:铁基金属玻璃粉对甲基橙的高效降解机理

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摘要

A new Fe-based metallic glass with composition Fe76B12Si9Y3 (at. %) is found to have extraordinary degradation efficiency towards methyl orange (MO, C14H14N3SO3) in strong acidic and near neutral environments compared to crystalline zero-valent iron (ZVI) powders and other Fe-based metallic glasses. The influence of temperature (294–328 K) on the degradation reaction rate was measured using ball-milled metallic glass powders revealing a low thermal activation energy barrier of 22.6 kJ/mol. The excellent properties are mainly attributed to the heterogeneous structure consisting of local Fe-rich and Fe-poor atomic clusters, rather than the large specific surface and strong residual stress in the powders. The metallic glass powders can sustain almost unchanged degradation efficiency after 13 cycles at room temperature, while a drop in degradation efficiency with further cycles is attributed to visible surface oxidation. Triple quadrupole mass spectrometry analysis conducted during the reaction was used to elucidate the underlying degradation mechanism. The present findings may provide a new, highly efficient and low cost commercial method for azo dye wastewater treatment.
机译:与结晶零价铁(ZVI)粉末和其他晶体相比,发现新的成分为Fe76B12Si9Y3(at。%)的铁基金属玻璃在强酸和接近中性的环境中具有对甲基橙(MO,C14H14N3SO3)的卓越降解效率。铁基金属玻璃。使用球磨金属玻璃粉末测量了温度(294–328 K)对降解反应速率的影响,显示出较低的22.6 kJ / mol热活化能垒。优异的性能主要归因于由局部富铁和贫铁原子簇组成的异质结构,而不是粉末中的大比表面积和强残余应力。金属玻璃粉末在室温下经过13个循环后可以保持几乎不变的降解效率,而降解效率随着进一步循环而下降是由于可见表面氧化所致。反应过程中进行的三重四极杆质谱分析用于阐明潜在的降解机理。本发现可为偶氮染料废水处理提供一种新的,高效且低成本的商业方法。

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