...
首页> 外文期刊>Environmental Science & Technology >Rhamnolipid Biosurfactant and Soy Protein Act as Effective Stabilizers in the Aggregation and Transport of Palladium-Doped Zerovalent Iron Nanoparticles in Saturated Porous Media
【24h】

Rhamnolipid Biosurfactant and Soy Protein Act as Effective Stabilizers in the Aggregation and Transport of Palladium-Doped Zerovalent Iron Nanoparticles in Saturated Porous Media

机译:鼠李糖脂生物表面活性剂和大豆蛋白在饱和多孔介质中钯掺杂的零价铁纳米粒子的聚集和运输中充当有效的稳定剂。

获取原文
获取原文并翻译 | 示例
           

摘要

Palladium-doped nanosized zerovalent iron (Pd-NZVI) particles can contribute to the transformation of chlorinated solvents and various other contaminants into innocuous products.To make Pd-NZVI an effective in situ subsurface remediation agent,these particles need to migrate through a targeted contaminated area.However,previous studies have reported very limited mobility of these particles in the groundwater environment and attributed it to rapid aggregation and subsequent pore plugging.In this study,we systematically investigated the influence of selected natural and nontoxic organic macromolecules (carboxymethyl cellulose,rhamnolipid biosurfactants,and soy protein) on the aggregation and transport behavior of bare and coated Pd-NZVI.Aggregation behavior was investigated using dynamic light scattering by monitoring the evolution of hydrodynamic diameter as a function of time,whereas transport behavior was investigated by conducting water-saturated sand-packed column experiments.While bare Pd-NZVI is prone to rapid aggregation,we observed good colloidal stability and concurrent enhanced transport of Pd-NZVI coated with carboxymethyl cellulose,rhamnolipid biosurfactants,and soy protein.Each surface modifier performed well at lower ionic strength (IS) (10 mM NaHCO_3),and one of the rhamnolipid surface modifiers (JBR215) significantly enhanced transport of 150 mg/L Pd-NZVI at concentrations as low as 10 mg/L total organic carbon.However,an increase in the solution IS induced significant Pd-NZVI aggregation with a simultaneous decrease in the transport potential in accordance with the DLVO (Derjaguin,Landau,Verwey,and Overbeek) theory of colloidal stability.Nonetheless,at the highest IS (300 mM NaHCO_3) investigated,the mobility of rhamnolipid-coated Pd-NZVI is significantly higher than that of Pd-NZVI coated with the other surface modifiers,suggesting that biosurfactants may be the most suitable surface modifiers in field application.Overall,this study emphasizes how stabilization of Pd-NZVI with natural macromolecules such as rhamnolipids can improve the transport potential of these reactive nanoparticles in subsurface remediation applications at concentrations significantly lower than those of other commonly used polymers.
机译:掺杂钯的纳米零价铁(Pd-NZVI)颗粒可有助于将氯化溶剂和各种其他污染物转化为无害产品。为使Pd-NZVI成为有效的原位地下修复剂,这些颗粒需要通过目标污染物进行迁移但是,先前的研究报道这些颗粒在地下水环境中的流动性非常有限,并将其归因于快速聚集和随后的孔堵塞。在这项研究中,我们系统地研究了选定的天然和无毒有机大分子(羧甲基纤维素,鼠李糖脂)的影响。生物表面活性剂和大豆蛋白)对裸露的和包覆的Pd-NZVI的聚集和传输行为的影响。使用动态光散射通过监测流体动力学直径随时间的变化来研究聚集行为,而通过进行水-饱和砂填充柱实验裸露的Pd-NZVI易于快速聚集,我们观察到良好的胶体稳定性和同时涂覆有羧甲基纤维素,鼠李糖脂生物表面活性剂和大豆蛋白的Pd-NZVI的运输增强。每种表面改性剂在较低的离子强度(IS)(10 mM)下表现良好NaHCO_3)和鼠李糖脂表面改性剂之一(JBR215)在低至总有机碳10 mg / L的浓度下显着增强了150 mg / L Pd-NZVI的转运。然而,溶液中IS的增加会诱导显着的Pd-NZVI根据DLVO(Derjaguin,Landau,Verwey和Overbeek)胶体稳定性理论进行聚合,同时降低运输潜力。尽管如此,在最高IS(300 mM NaHCO_3)下研究鼠李糖脂包覆的Pd- NZVI明显高于涂有其他表面改性剂的Pd-NZVI,这表明生物表面活性剂可能是现场应用中最合适的表面改性剂。总体而言,本研究强调用天然大分子(如鼠李糖脂)对Pd-NZVI进行Tabulization可以提高这些反应性纳米粒子在地下修复应用中的运输潜力,其浓度远低于其他常用聚合物。

著录项

  • 来源
    《Environmental Science & Technology》 |2013年第23期|13355-13364|共10页
  • 作者单位

    Department of Chemical Engineering,McGill University,Montreal,Quebec H3A 2B2,Canada;

    Department of Civil Engineering,McGill University,Montreal,Quebec H3A 2K6,Canada;

    Department of Chemical Engineering,McGill University,Montreal,Quebec H3A 2B2,Canada;

  • 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
  • 中图分类
  • 关键词

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号