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Iron and iron oxide functionalized membranes with applications to selected chloro-organic and metal removal from water.

机译:铁和氧化铁功能化的膜,可用于从水中选择性去除氯有机物和金属。

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摘要

The development of functionalized membranes with tunable pores and catalytic properties provides us an opportunity to manipulate the membrane pore structure, selectivity and reactivity. By introducing the functional groups into membrane pores, dissolved metal ions and reactive particles can be effectively immobilized within the polymer matrix for toxic chloro-organic and heavy metal remediation in water.;A polyelectrolyte functionalized membrane platform with tunable pore size and ion exchange capacity has been developed for iron/iron oxide nano-catalyst synthesis and chlorinated organic compound (trichloroethylene, TCE and polychlorinated biphenyls, PCBs) degradation. Highly robust polyvinylidene fluoride (PVDF) microfiltration membranes are used as the support with cross-linked polyacrylic acid (PAA) filled in the pores. By varying the environmental pH, PAA hydrogels have either swelling or collapsing behavior, resulting in different effective membrane pore sizes for different separation purposes. Cation exchange groups (i.e. carboxyl groups) in PAA chains prevent the aggregation and leaching of nanoparticles (NPs) during in-situ synthesis and reaction. Depending on the catalyst loading and residence time, TCE and PCBs can be completely degraded by reduction of zero-valent iron and bimetallic iron/palladium NPs, or iron oxide catalyzed free radical oxidation at near-neutral pH. Biphenyl from PCB dechlorination can be further oxidized by hydroxyl radicals (OH•) generated from hydrogen peroxide (H2O2) decomposition. Hydroxybiphenyls and benzoic acid are identified as oxidation products. Line scan and elemental mapping in transmission electron microscopy (TEM) and X-ray photo electron spectroscopy (XPS) characterizations are conducted to understand the effect of iron surface transformation on NP reactivity, and to optimize the membrane functionalization.;The same platform can also be used to remove toxic metal selenium in the scrubber water of coal-fired power plants. By reducing the salt concentration in water or increasing the residence time and temperature, the concentration of selenium oxyanions in functionalized membrane permeate can be reduced to less than 10 mug/L. Selenium is captured in membranes by both iron reduction to metallic selenium and iron oxide adsorption. The full-scale flat sheet functionalized membranes and spiral wound modules have also been developed. Iron NPs with alterable loadings are successfully synthesized inside the membrane module for real water applications.
机译:具有可调孔和催化性能的功能化膜的发展为我们提供了一个机会来控制膜的孔结构,选择性和反应性。通过将官能团引入膜孔中,可将溶解的金属离子和反应性颗粒有效地固定在聚合物基质中,用于水中有毒的氯代有机物和重金属的修复。具有可调孔径和离子交换能力的聚电解质功能化膜平台具有开发用于铁/氧化铁纳米催化剂合成和氯化有机化合物(三氯乙烯,TCE和多氯联苯,PCB)的降解。高度坚固的聚偏二氟乙烯(PVDF)微滤膜用作孔中填充有交联聚丙烯酸(PAA)的载体。通过改变环境pH值,PAA水凝胶具有溶胀或塌陷行为,从而导致用于不同分离目的的有效膜孔径不同。 PAA链中的阳离子交换基团(即羧基)可防止原位合成和反应过程中纳米颗粒(NP)的聚集和浸出。根据催化剂的负载量和停留时间,可通过还原零价铁和双金属铁/钯NP或在接近中性pH值下铁氧化物催化的自由基氧化来完全降解TCE和PCB。 PCB脱氯中的联苯可被过氧化氢(H2O2)分解产生的羟基(OH•)进一步氧化。羟基联苯和苯甲酸被鉴定为氧化产物。进行了透射电子显微镜(TEM)和X射线光电子能谱(XPS)表征中的线扫描和元素映射,以了解铁表面转化对NP反应性的影响,并优化膜的功能化。可用于去除燃煤电厂洗涤塔水中的有毒金属硒。通过降低水中的盐浓度或增加停留时间和温度,可以将功能化膜渗透物中的硒氧阴离子浓度降低到小于10杯/升。硒通过铁还原成金属硒和氧化铁的吸附而被捕获在膜中。还开发了全尺寸的平板功能化膜和螺旋缠绕模块。负载可变的铁纳米颗粒已成功地在膜组件内部合成,用于实际水应用。

著录项

  • 作者

    Gui, Minghui.;

  • 作者单位

    University of Kentucky.;

  • 授予单位 University of Kentucky.;
  • 学科 Chemical engineering.;Nanotechnology.
  • 学位 Ph.D.
  • 年度 2014
  • 页码 206 p.
  • 总页数 206
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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