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Nanocomposite Catalytic Materials for Clean Energy Processes

机译:用于清洁能源工艺的纳米复合催化材料

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摘要

Nanomaterials have gained much attention as catalysts since the discovery of exceptional CO oxidation activity of nanoscale gold by Haruta. However, many studies avoid testing nanomaterials at the high-temperatures relevant to reactions of interest for the production of clean energy (T > 700°C). The generally poor thermal stability of catalytically active noble metals has thus far prevented significant progress in this area. We have recently overcome the poor thermal stability of nanoparticles by synthesizing a platinum barium-hexaaluminate (Pt-BHA) nanocomposite which combines the high activity of noble metal nanoparticles with the thermal stability of hexaaluminates. This Pt-BHA nanocomposite demonstrates excellent activity, selectivity, and long-term stability in CPOM. Pt-BHA is anchored onto a variety of support structures in order to improve the accessibility, safety, and reactivity of the nanocatalyst. Silica felts prove to be particularly amenable to this supporting procedure, with the resulting supported nanocatalyst proving to be as active and stable for CPOM as its unsupported counterpart. Various pre-treatment conditions are evaluated to determine their effectiveness in removing residual surfactant from the active nanoscale platinum particles. The size of these particles is measured across a wide temperature range, and the resulting "plateau" of stability from 600-900°C can be linked to a particle caging effect due to the structure of the supporting ceramic framework. The nanocomposites are used to catalyze the combustion of a dilute methane stream, and the results indicate enhanced activity for both Pt-BHA as well as ceria-doped BHA, as well as an absence of internal mass transfer limitations at the conditions tested. In water-gas shift reaction, nanocomposite Pt-BHA shows stability during prolonged WGS reaction and no signs of deactivation during start-up/shut-down of the reactor.The chemical and thermal stability, low molecular weight, and wealth of literature on the formation of mesoporous silica materials motivated investigations of nanocomposite silica catalysts. High surface area silicas are synthesized via sol-gel methods, and the addition of metal-salts lead to the formation of stable nanocomposite Ni- and Fe- silicates.The results of these investigations have increased the fundamental understanding and improved the applicability of nanocatalysts for clean energy applications.
机译:自Haruta发现纳米级金具有卓越的CO氧化活性以来,纳米材料作为催化剂就引起了广泛关注。但是,许多研究都避免在与产生清洁能源(T> 700°C)感兴趣的反应相关的高温下测试纳米材料。迄今为止,催化活性贵金属通常较差的热稳定性阻碍了该领域的重大进展。我们最近通过合成六贵金属纳米粒子的高活性与六铝酸盐的热稳定性相结合的六铝酸铂钡(Pt-BHA)纳米复合材料,克服了纳米粒子的不良热稳定性。这种Pt-BHA纳米复合材料在CPOM中表现出出色的活性,选择性和长期稳定性。 Pt-BHA固定在各种载体结构上,以提高纳米催化剂的可及性,安全性和反应性。事实证明,二氧化硅毡特别适合这种支撑程序,事实证明所得的负载型纳米催化剂对CPOM的活性和稳定性与其无支撑的同类物相同。评估各种预处理条件以确定它们从活性纳米级铂颗粒中去除残留表面活性剂的有效性。这些颗粒的大小是在很宽的温度范围内测量的,由于支撑陶瓷骨架的结构,所产生的600-900°C的“平稳期”稳定性可以与颗粒笼养效应联系在一起。纳米复合材料用于催化稀甲烷流的燃烧,结果表明,Pt-BHA和二氧化铈掺杂的BHA均具有增强的活性,并且在测试条件下没有内部传质限制。在水煤气变换反应中,纳米复合Pt-BHA在长时间的WGS反应中表现出稳定性,并且在反应器启动/关闭过程中没有失活的迹象。化学和热稳定性,低分子量以及在该方面的大量文献介孔二氧化硅材料的形成促进了纳米复合二氧化硅催化剂的研究。高表面积二氧化硅是通过溶胶-凝胶法合成的,金属盐的加入导致形成稳定的纳米复合镍硅酸盐和铁硅酸盐。这些研究的结果增进了人们的基本认识,并提高了纳米催化剂的适用性。清洁能源应用。

著录项

  • 作者

    Sanders Thomas James;

  • 作者单位
  • 年度 2008
  • 总页数
  • 原文格式 PDF
  • 正文语种 en
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