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Hydrogen peroxide decomposition in model subsurface systems

机译:模型地下系统中的过氧化氢分解

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Rates of hydrogen peroxide decomposition, hydroxyl radical production, and oxygen evolution were investigated in silica sand-goethite slurries using unstabilized and stabilized hydrogen peroxide formulations. The goethite-catalyzed decomposition of unstabilized hydrogen peroxide formulations resulted in more rapid hydrogen peroxide loss and oxygen evolution relative to systems containing a highly stabilized hydrogen peroxide formulation. Systems at neutral pH and those containing higher goethite concentrations were characterized by higher rates of hydrogen peroxide decomposition and by more oxygen evolution. The stabilized hydrogen peroxide formulation showed greater hydroxyl radical production relative to the unstabilized formulations. Furthermore, hydroxyl radical production rates were greater at neutral pH than at the acidic pH regimes. The results suggest that when stabilized hydrogen peroxide is injected into the subsurface during in situ bioremediation, naturally occurring minerals such as goethite may initiate Fenton-like reactions. While these reactions may prove to be toxic to microorganisms, they have the potential to chemically oxidize contaminants in soils and groundwater.
机译:在二氧化硅砂-针铁矿浆液中,使用不稳定和稳定的过氧化氢配方研究了过氧化氢的分解速率,羟基自由基的产生和氧气的释放。相对于含有高度稳定的过氧化氢制剂的系统,针铁矿催化的不稳定的过氧化氢制剂的分解导致更快的过氧化氢损失和氧气释放。 pH值处于中性的系统和针铁矿浓度较高的系统,其特征是过氧化氢分解的速率更高,氧气释放量更大。相对于未稳定的制剂,稳定的过氧化氢制剂显示出更大的羟基自由基产生。此外,中性pH下的羟基自由基产生速率大于酸性pH下的羟基自由基生成速率。结果表明,在原位生物修复过程中将稳定的过氧化氢注入地下时,天然存在的矿物质(如针铁矿)可能会引发Fenton样反应。尽管这些反应可能证明对微生物有毒,但它们具有化学氧化土壤和地下水中污染物的潜力。

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