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Enhancement of Degradation and Dechlorination of Trichloroethylene via Supporting Palladium/Iron Bimetallic Nanoparticles onto Mesoporous Silica

机译:通过将钯/铁双金属纳米颗粒负载到介孔二氧化硅上来增强三氯乙烯的降解和脱氯

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This study is aimed to prevent the agglomeration of Pd/Fe bimetallic nanoparticles and thus improve the efficiency toward degradation and dechlorination of chlorinated organic contaminants. A mesoporous silica with a primary pore diameter of 8.3 nm and a specific surface area of 688 m 2 /g was prepared and used as the host of Pd/Fe nanoparticles. The Pd/Fe nanoparticles were deposited onto or into the mesoporous silica by reduction of ferrous ion and hexachloropalladate ion in aqueous phase. Batch degradation and dechlorination reactions of trichloroethylene were conducted with initial trichloroethylene concentration of 23.7 mg/L, iron loading of 203 or 1.91 × 10 3 mg/L and silica loading of 8.10 g/L at 25 °C. Concentration of trichloroethylene occurs on the supported Pd/Fe nanoparticles, with trichloroethylene degrading to 56% and 59% in 30 min on the supported Pd/Fe nanoparticles with weight percentage of palladium to iron at 0.075% and 0.10% respectively. The supported Pd/Fe nanoparticles exhibit better dechlorination activity. When the supported Pd/Fe nanoparticles with a weight percentage of palladium to iron of 0.10% were loaded much less than the bare counterpart, the yield of ethylene plus ethane in 10 h on them was comparable, i.e., 19% vs. 21%. This study offers a future approach to efficiently combine the reactivity of supported Pd/Fe nanoparticles and the adsorption ability of mesoporous silica.
机译:这项研究旨在防止Pd / Fe双金属纳米粒子的团聚,从而提高对氯化有机污染物降解和脱氯的效率。制备主孔直径为8.3nm且比表面积为688m 2 / g的中孔二氧化硅,并将其用作Pd / Fe纳米粒子的主体。通过在水相中还原亚铁离子和六氯钯酸根离子,将Pd / Fe纳米颗粒沉积到中孔二氧化硅上或其中。三氯乙烯的分批降解和脱氯反应在25°C下进行,初始三氯乙烯浓度为23.7 mg / L,铁负载量为203或1.91×10 3 mg / L,二氧化硅负载量为8.10 g / L。三氯乙烯的浓度在负载的Pd / Fe纳米粒子上发生,三氯乙烯在30分钟内在负载的Pd / Fe纳米粒子(分别占钯与铁的重量百分比分别为0.075%和0.10%)下降解为56%和59%。负载的Pd / Fe纳米颗粒表现出更好的脱氯活性。当钯与铁的重量百分比为0.10%的负载型Pd / Fe纳米粒子的负载量比裸露的负载少得多时,它们在10小时内的乙烯加乙烷产率可比,即19%比21%。这项研究提供了一种未来的方法,可以有效地结合负载的Pd / Fe纳米颗粒的反应性和中孔二氧化硅的吸附能力。

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