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首页> 外文期刊>Geochimica et Cosmochimica Acta: Journal of the Geochemical Society and the Meteoritical Society >Oxygenation of Fe(II) in natural waters revisited: Kinetic modeling approaches, rate constant estimation and the importance of various reaction pathways
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Oxygenation of Fe(II) in natural waters revisited: Kinetic modeling approaches, rate constant estimation and the importance of various reaction pathways

机译:再谈天然水中Fe(II)的氧化:动力学建模方法,速率常数估算和各种反应途径的重要性

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The kinetics of Fe(II) oxygenation in aqueous solutions over the pH range 6.0-8.0 have been revisited in terms of kinetic modeling approach, rate constant estimation and the importance of various oxidation pathways. Despite the experimental agreement with earlier studies, previous oxidation models (which describe the oxidation of micromolar Fe(II)) have failed to provide an adequate description of Fe(II) oxidation at nanomolar concentrations. This failure could be due to the difficulties in reliably estimating values for the large number of kinetic and stability constants involved but is more likely associated with the fact that several reaction pathways that could become important at low Fe(II) concentrations have not been included in the previous models. A condition-specific model has been developed which uses a single Fe(II) entity as a representative of all Fe(II) species to overcome the difficulty of dealing with the large number of unknown kinetic constants. By incorporation of various reaction pathways, the model is shown to be capable of adequately describing the oxidation of Fe(II) over a range of pH and initial Fe(II) concentrations. While the oxidation of Fe(II) by oxygen and superoxide is critically important at any pH and initial Fe(II) concentration considered, oxidation of Fe(II) by hydrogen peroxide only becomes critical at high pH and high Fe(II) concentrations or in the later stage of the oxidation process. Back reduction of Fe(III) by superoxide is important at low initial Fe(II) concentrations and high pH. Precipitation of Fe(III) on the other hand exerts a marked effect in the overall oxidation of Fe(II), particularly at high pH. Disproportionation of superoxide has minimal effect on the overall oxidation of Fe(II), despite the rapidity of this process at low pH. (C) 2008 Elsevier Ltd. All rights reserved.
机译:在动力学建模方法,速率常数估计和各种氧化途径的重要性方面,已经重新研究了pH范围为6.0-8.0的水溶液中Fe(II)氧化的动力学。尽管与早期研究取得了实验一致,但以前的氧化模型(描述了微摩尔Fe(II)的氧化)未能充分描述纳摩尔浓度下Fe(II)的氧化。这种失败可能是由于难以可靠地估计所涉及的大量动力学和稳定性常数的值,但更可能与以下事实有关:在低Fe(II)浓度下可能变得重要的几种反应途径以前的型号。已经开发出一种条件特定模型,该模型使用单个Fe(II)实体作为所有Fe(II)物种的代表,以克服处理大量未知动力学常数的困难。通过合并各种反应途径,表明该模型能够充分描述在一定pH值和初始Fe(II)浓度范围内Fe(II)的氧化。尽管在任何pH值和初始Fe(II)浓度下,氧和超氧化物对Fe(II)的氧化都至关重要,但过氧化氢对Fe(II)的氧化仅在高pH和高Fe(II)浓度下变得至关重要。在氧化过程的后期。在低初始Fe(II)浓度和高pH值下,超氧化物对Fe(III)的反还原非常重要。另一方面,Fe(III)的沉淀在Fe(II)的整体氧化中,特别是在高pH值下,起着明显的作用。尽管此过程在低pH值下快速,但超氧化物歧化作用对Fe(II)的整体氧化影响最小。 (C)2008 Elsevier Ltd.保留所有权利。

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