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Functionalized silica materials and mixed-matrix membranes for environmental applications.

机译:用于环境的功能化二氧化硅材料和混合基质膜。

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摘要

Functionalized silica materials are synthesized for various environmental applications. The overall objective is functionalization with sulfur-containing moieties for mercury sorption and as a platform for nanoparticle synthesis. The first objective is quantifying this functionalization for various silica platforms. The second objective is development of effective mercury sorbents, for both aqueous mercury and elemental mercury vapor. Third, those sorbents are incorporated into mixed matrix membranes (MMM) for aqueous mercury sorption. Fourth, functionalized silica materials are developed as platforms for the synthesis of reactive metal nanoparticles (NP) for the degradation of trichloroethylene.;Thiol -functionalized silica is used as a sorbent for aqueous mercury, and a novel functionalized material (thiol-functionalized silica shell surrounding a carbon core) has been developed for this application. Total capacity and kinetics of aqueous mercury sorption were determined. The silica-coated carbon was functionalized with thiol and sulfonate moieties for regeneration under mild conditions. Finally, the sorbent particles were incorporated into polysulfone to form a mixed matrix membrane (MMM) for toxic metal capture under convective-flow conditions. High loadings (up to 50% particles, base particles of ∼80 nm) were achieved in the MMM. The particles are well-dispersed which can lower mass transfer resistance to the sorption sites. The MMM also imparts several practical advantages such as ease of sorbent handling.;Silica functionalized with tetrasulfide silane is used for mercury vapor sorption. Sorption kinetics and dynamic capacity depend upon pore structures of the functionalized material. The particles are thermally stable and exhibit a glass transition in the tetrasulfide silane coating, with high total sorption capacity achieved by addition of copper sulfate. Temperature effects on mercury sorption indicate a chemisorptive mechanism.;Silica particles functionalized with sulfonate moieties were used as a platform for the synthesis of dispersed iron nanoparticles. These NP are applied for degradation of trichloroethylene (TCE), a persistent, toxic, and widespread pollutant. The particles were stabilized against agglomeration. Natural product reducing agents, such as ascorbic acid, adsorb to the particle surface and can protect against oxidation. These particles were demonstrated for the reductive as well as oxidative degradation of TCE.;KEYWORDS: mercury, iron nanoparticles, silanization, trichloroethylene, mixed matrix membranes.
机译:合成了功能化的二氧化硅材料以用于各种环境应用。总体目标是使用含硫部分进行功能化以吸附汞并作为纳米颗粒合成的平台。第一个目标是量化各种二氧化硅平台的官能度。第二个目标是开发针对含水汞和元素汞蒸气的有效汞吸附剂。第三,将这些吸附剂掺入混合基质膜(MMM)中以吸附水银。第四,开发了功能化的二氧化硅材料作为合成用于降解三氯乙烯的活性金属纳米颗粒(NP)的平台。;硫醇功能化的二氧化硅用作水银汞的吸附剂,以及一种新型的功能化材料(硫醇功能化的二氧化硅壳碳核周围)已为此应用开发。测定了水银吸附的总容量和动力学。将二氧化硅涂覆的碳用硫醇和磺酸酯部分官能化,以在温和条件下再生。最后,将吸附剂颗粒掺入聚砜中以形成混合基质膜(MMM),用于在对流条件下捕获有毒金属。在MMM中实现了高负载(高达50%的颗粒,约80 nm的基础颗粒)。颗粒分散良好,可以降低对吸附位点的传质阻力。 MMM还具有许多实用的优点,例如易于吸附剂的处理;;用四硫硅烷官能化的二氧化硅用于汞蒸气的吸附。吸附动力学和动态容量取决于功能化材料的孔结构。该颗粒是热稳定的,并且在四硫化物硅烷涂层中表现出玻璃化转变,通过添加硫酸铜可以实现高总吸附能力。温度对汞吸附的影响表明了化学吸附机理。用磺酸根部分官能化的二氧化硅颗粒被用作合成分散的铁纳米颗粒的平台。这些NP用于降解三氯乙烯(TCE),三氯乙烯是一种持久的,有毒的,广泛分布的污染物。使颗粒稳定以防止团聚。天然产物还原剂(例如抗坏血酸)吸附到颗粒表面并可以防止氧化。这些颗粒被证明可用于三氯乙烯的还原和氧化降解。关键词:汞,铁纳米颗粒,硅烷化,三氯乙烯,混合基质膜

著录项

  • 作者

    Meeks, Noah Daniel.;

  • 作者单位

    University of Kentucky.;

  • 授予单位 University of Kentucky.;
  • 学科 Chemical engineering.;Environmental science.
  • 学位 Ph.D.
  • 年度 2012
  • 页码 154 p.
  • 总页数 154
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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