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Importance of Dynamic Soil Properties in Metal Retention: An Example from Long-Term Cu Partitioning and Redistribution Studies Using Model Systems

机译:土壤中动态土壤特性的重要性:使用模型系统进行长期铜分配和再分布研究的一个例子

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摘要

The effect of initial conditions and reaction pathways in the long term solid-solution partitioning and solid-phase distribution of Cu among ferrihydrite, leaf compost (LC), and montmorillonite (K-SWy2) were established using compartmentalized batch reactors by varying the sequence of mixing of the sorbents. Copper was allowed to react with a single solid phase for 30 days (1st equilibration) before introducing the other two solid phases and equilibration for 8 additional months (2nd equilibration). The systems were labeled Fe-Ox, Organic, or Smectitic reflecting the single initial solid phase present during the first equilibration. Total dissolved Cu and total Cu in individual solid phases were determined as a function of time during the first and second equilibrations. Results showed that different initial conditions elicited different dynamic responses where the generation of dissolved organic carbon (DOC) and diffusion of colloidal ferrihydrite seemed to influence the long-term partitioning and distribution of Cu. Trends in total dissolved Cu for the systems at the end of the first equilibration were Fe-Ox > Organic > Smectitic, while at the end of the second equilibration the organic system was the least effective in the removal of Cu from solution (Organic > Fe-Ox ≈ Smectitic). Furthermore, our results indicated Cu redistribution toward organic matter and montmorillonite, with small amounts of Cu retained by ferrihydrite. These results are attributed to reaction pathways where the formation of soluble Cu-organic complexes and colloidal Cu-ferrihydrite, and their subsequent reaction with the solids present in the systems, were operative. The experiments reported herein show dynamic properties dictate Cu reaction pathways in multiphase-multicomponent systems and might help to explain unexpected higher mobility of metals after soil remediation.
机译:通过使用间歇式分批反应器,通过改变分馏塔的顺序,确定了初始条件和反应路径对铁在水铁矿,叶片堆肥(LC)和蒙脱土(K-SWy2)中的固相分配和固相长期分配的影响。混合吸附剂。使铜与单一固相反应30天(第一次平衡),然后引入其他两个固相并再平衡8个月(第二次平衡)。该系统标记为Fe-Ox,有机或近晶,反映了在第一次平衡过程中存在的单个初始固相。在第一和第二平衡期间,确定各个固相中的总溶解铜和总铜作为时间的函数。结果表明,不同的初始条件会引起不同的动态响应,其中溶解有机碳(DOC)的生成和胶体亚铁水合物的扩散似乎会影响Cu的长期分配和分布。在第一个平衡结束时,系统中总溶解铜的趋势为Fe-Ox>有机物>连晶,而在第二个平衡结束时,有机系统对去除溶液中的铜效果最低(有机物> Fe -Ox≈Smectitic)。此外,我们的结果表明,铜向有机物和蒙脱石重新分布,亚铁水合物保留了少量的铜。这些结果归因于反应途径,其中可溶性铜有机配合物和胶体铜亚铁水合物的形成以及它们随后与系统中存在的固体的反应是有效的。本文报道的实验表明,动力学特性决定了多相多组分系统中的铜反应路径,并可能有助于解释土壤修复后金属出乎意料的更高迁移率。

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  • 来源
    《Environmental Science & Technology》 |2012年第15期|p.8069-8074|共6页
  • 作者单位

    Department of Crop and Soil Sciences, The Pennsylvania State University, 116 ASI Building, University Park, Pennsylvania 16802, United States,IPICyT, Instituto Potosino de Investigation Cientifica y Tecnologica, Division de Geociencias Aplicadas, Camino a la Presa San Jose;

    Department of Crop and Soil Sciences, The Pennsylvania State University, 116 ASI Building, University Park, Pennsylvania 16802, United States;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);美国《化学文摘》(CA);
  • 原文格式 PDF
  • 正文语种 eng
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  • 入库时间 2022-08-17 14:02:57

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