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The effect of iron oxide nanoparticles on the fate and transformation of arsenic in aquatic environments.

机译:氧化铁纳米粒子对水生环境中砷的命运和转化的影响。

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摘要

Iron oxides and arsenic are prevalent in the environment. With the increase interest in the use of iron oxide nanoparticles (IONPs) for contaminant remediation and the high toxicity of arsenic, it is crucial that we evaluate the interactions between IONPs and arsenic. The goal was to understand the environmental behavior of IONPs in regards to their particle size, aggregation and stability, and to determine how this behavior influences IONPs-arsenic interactions.;A variety of dispersion techniques were investigated to disperse bare commercial IONPs. Vortex was able to disperse commercial hematite nanoparticles into unstable dispersions with particles in the micrometer size range while probe ultrasonication dispersed the particles into stable dispersions of nanometer size ranges for a prolonged period of time. Using probe ultrasonication and vortex to prepare IONPs suspensions of different particle sizes, the adsorption of arsenite and arsenate to bare hematite nanoparticles and hematite aggregates were investigated. To understand the difference in the adsorptive behavior, adsorption kinetics and isotherm parameters were determined. Both arsenite and arsenate were capable of adsorbing to hematite nanoparticles and hematite aggregates but the rate and capacity of adsorption is dependent upon the hematite particle size, the stability of the dispersion and the type of sorbed arsenic species. Once arsenic was adsorbed onto the hematite surface, both iron and arsenic can undergo redox transformation both microbially and photochemically and these processes can be intertwined. Arsenic speciation studies in the presence of hematite particles were performed and the effect of light on the redox process was preliminary quantified. The redox behavior of arsenite and arsenate were different depending on the hematite particle size, the stability of the suspension and the presence of environmental factors such as microbes and light. The results from this study are important and have significant environmental implications as arsenic mobility and bioavailability can be affected by its adsorption to hematite particles and by its surface mediated redox transformation. Moreover, this study furthers our understanding on how the particle size influences the interactions between IONPs and arsenic thereby clarifying the role of IONPs in the biogeochemical cycling of arsenic.
机译:氧化铁和砷在环境中普遍存在。随着人们越来越关注使用氧化铁纳米颗粒(IONP)进行污染物修复和砷的高毒性,我们评估IONP与砷之间的相互作用至关重要。目的是了解IONP的粒径,聚集和稳定性方面的环境行为,并确定该行为如何影响IONP与砷的相互作用。研究了多种分散技术以分散裸露的商业IONP。 Vortex能够将商业的赤铁矿纳米颗粒分散到粒径范围在微米范围内的不稳定分散体中,而探针超声处理则可以将颗粒长时间分散在纳米尺寸范围内的稳定分散体中。使用探针超声和涡旋制备不同粒径的IONPs悬浮液,研究了砷和砷酸盐在赤铁矿裸露的纳米颗粒和赤铁矿聚集体上的吸附。为了了解吸附行为的差异,确定了吸附动力学和等温线参数。亚砷酸盐和砷酸盐都能够吸附到赤铁矿纳米颗粒和赤铁矿聚集体上,但是吸附的速率和容量取决于赤铁矿的粒径,分散体的稳定性和吸附的砷物质的类型。一旦砷吸附到赤铁矿表面,铁和砷都可以通过微生物和光化学方式进行氧化还原转化,并且这些过程可以交织在一起。在赤铁矿颗粒存在下进行了砷形态研究,并初步定量了光对氧化还原过程的影响。取决于赤铁矿的粒径,悬浮液的稳定性以及环境因素(如微生物和光线)的存在,砷和砷酸盐的氧化还原行为是不同的。这项研究的结果非常重要,并且对环境具有重大影响,因为砷对赤铁矿的吸附和表面介导的氧化还原转化会影响砷的迁移率和生物利用度。此外,这项研究进一步了解了颗粒大小如何影响IONP与砷之间的相互作用,从而阐明了IONP在砷的生物地球化学循环中的作用。

著录项

  • 作者

    Dickson, Dionne C.;

  • 作者单位

    Florida International University.;

  • 授予单位 Florida International University.;
  • 学科 Chemistry Analytical.;Engineering Environmental.;Chemistry Inorganic.
  • 学位 Ph.D.
  • 年度 2013
  • 页码 147 p.
  • 总页数 147
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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