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Effect of solution chemistry on arsenic sorption by Fe- and Al-based drinking-water treatment residuals

机译:溶液化学性质对铁铝基饮用水处理残留物中砷吸附的影响

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摘要

Drinking-water treatment residual (WTR) have been proposed as a low-cost alternative sorbent for arsenic (As) - contaminated aquatic and soil systems. However, limited information exists regarding the effect of solution chemistry on As sorption by WTR. A batch incubation study was carried out to investigate the effect of solution pH (3-9) on As(V) sorption by Al- and Fe-based WTR as a function of solid: solution ratio (SSR) and initial As concentration. The effect of competing ligands (phosphate-P(V) and sul-fate), and complexing metal (calcium) on As(V) sorption envelopes at the optimum SSR (200 g L~(-1)) was also evaluated. At 200 g L~(-1) SSR, maximum As(V) sorption (~100%) exhibited by the Fe-WTR was limited at the pH range of 3-7, whereas, the Al-WTR demonstrated ~100% As(V) sorption in the entire pH range. The negative pH effect on As(V) sorption became more pronounced with increasing initial As concentrations and decreasing SSR. Sorption of As(V) by surfaces of both WTR decreased in the presence of P(V), exhibiting strong pH dependence. Only for the Fe-WTR, increased dissolved iron concentrations at pH > 7 supported a Fe-hydroxide reductive dissolution mechanism to account for the enhanced As sorption at alkaline pH. Addition of sulfate did not influence As(V) sorption by both WTR. A cooperative effect of calcium on As(V) sorption was observed at alkaline pH due to the formation of a calcium-arsenate phase. The constant capacitance model provided reasonable fits to the sorption envelope data for both single ion and binary ion (As and P) systems, but it was unable to explain the enhanced As sorption by the Fe-WTR at pH > 7.
机译:饮用水处理残留物(WTR)已被提出作为砷(As)污染的水生和土壤系统的低成本替代吸附剂。但是,关于溶液化学对WTR吸附As的影响的信息有限。进行了分批孵化研究,以研究溶液pH(3-9)对铝和铁基WTR吸附As(V)的影响,它是固液比(SSR)和初始As浓度的函数。还评估了在最佳SSR(200 g L〜(-1))下竞争性配体(磷酸盐-P(V)和硫酸盐)和络合金属(钙)对As(V)吸附包膜的影响。在200 g L〜(-1)SSR下,Fe-WTR的最大As(V)吸附(〜100%)在3-7的pH范围内受到限制,而Al-WTR的As〜V吸附为〜100% (V)在整个pH范围内的吸附。随着初始As浓度的增加和SSR的降低,pH对As(V)吸附的负面影响变得更加明显。在P(V)的存在下,两个WTR的表面对As(V)的吸附均降低,表现出强烈的pH依赖性。仅对于Fe-WTR,在pH> 7时增加的溶解铁浓度支持Fe-氢氧化物还原溶解机制,以说明在碱性pH下As吸附增强的情况。硫酸盐的添加均不影响两个WTR对As(V)的吸附。由于形成了砷酸钙相,在碱性pH值下观察到了钙对As(V)吸附的协同作用。恒定电容模型为单离子和二元离子(As和P)系统的吸附包络线数据提供了合理的拟合,但无法解释在pH> 7时Fe-WTR增强的As吸附。

著录项

  • 来源
    《Chemosphere》 |2010年第8期|1028-1035|共8页
  • 作者单位

    Weiss Associates, 5801 Christie Ave., Suite 600, Emeryville, CA 94608, USA;

    Department of Earth and Environmental Studies, Montclair State University, Montclair, NJ, USA;

    Cyprus International Institute for Environmental and Public Health in association with the Harvard School of Public Health, Cyprus University of Technology, Corner Athinon & Nikou Xiouta, Limassol 3041, Cyprus;

    Department of Biological Sciences, Michigan Technological University, 1400 Townsend Drive, Houghton, MI 49931, USA;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《化学文摘》(CA);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    arsenic; sorption; drinking-water treatment residual (WTR); water quality; remediation;

    机译:砷;吸附饮用水处理残留量(WTR);水质;整治;

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