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Adsorption kinetics of platinum group elements in river water

机译:铂族元素在河水中的吸附动力学

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The uptake of platinum group elements (PGE) by different preparations of estuarine sediment suspended in filtered river water has been examined. For a given PGE, adsorption time courses to untreated sediment and to sediment whose hydrous metal oxides or organic matter had been removed by appropriate chemical treatments were similar. Adsorption of Rh(III) and Pt(IV) proceeded via a first-order reversible reaction. For Rh, forward rate constants were 1 order of magnitude greater than reverse rate constants, but for Pt, forward and reverse constants were comparable. Respective system response times, required to attain 63% of the new equilibrium, ranged from about 10 to 30 h and 2 to 20 h. In contrast, rapid, initial uptake of Pd(II) was succeeded, in most instances, by a protracted period of desorption, requiring a more complex mechanistic interpretation. In all cases, adsorption was reduced following a period of PGE equilibration with filtered river water, suggesting that complexation with natural organic ligands exerts a significant control on the adsorption process by, for example, stabilizing PGE in solution. Exchangeability of adsorbed PGE, evaluated by ammonium acetate extraction, decreased in the order Pd > Pt > Rh, in qualitative agreement with the proposed or modeled adsorption mechanisms. Experimental results, together with independent assessments of PGE mobility from secondary sources (e.g. road dust), indicate that Pd has the greatest potential for long-range transport and bioaccumulation in the aquatic environment.
机译:考察了悬浮在过滤河水中的不同河口沉积物对铂族元素(PGE)的吸收。对于给定的PGE,对未经处理的沉积物和通过适当化学处理去除了含水金属氧化物或有机物的沉积物的吸附时间过程相似。 Rh(III)和Pt(IV)的吸附通过一级可逆反应进行。对于Rh,正向速率常数比反向速率常数大1个数量级,但对于Pt,正向和反向常数可比。达到新平衡的63%所需的系统响应时间分别为10到30小时和2到20小时。相反,在大多数情况下,通过延长的解吸时间可以成功地快速开始吸收Pd(II),这需要更复杂的机理解释。在所有情况下,经过过滤的河水PGE平衡一段时间后,吸附都会减少,这表明与天然有机配体的络合可通过例如稳定溶液中的PGE来显着控制吸附过程。通过乙酸铵萃取评估的吸附PGE的交换性按Pd> Pt> Rh的顺序降低,与拟议的或建模的吸附机理在质量上一致。实验结果以及对来自次级来源(例如道路灰尘)的PGE迁移率的独立评估表明,Pd在水生环境中具有远距离运输和生物富集的最大潜力。

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