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New Perovskite Materials for Sensors and Low Temperature Solid Oxide Fuel Cell (LT-SOFC) Applications.

机译:适用于传感器和低温固体氧化物燃料电池(LT-SOFC)应用的新型钙钛矿材料。

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摘要

This work involved the development of new perovskite oxides based on SmFeO3 and testing their performances as sensors for reducing gases (H 2, CO & CH4) and as anode materials for dry methane oxidation in solid oxide fuel cells. The new perovskite oxide materials with formula Sm0.95Ce0.05Fe1-xMxO3-δ (M= Co, Ni & Cr) were synthesized by a sol gel method using citric acid as a complexing agent. The resulting materials were characterized by using a battery of techniques including XRD, XRF, XPS, SEM and electrochemical methods.;Some materials were also selected on the basis of their reduction stability and electrical properties, and their electrochemical performances were evaluated as SOFC anodes under dry methane and dry hydrogen fuels separately. The performance tests as SOFC anode revealed that the best anode material for the oxidation of dry hydrogen fuel is Sm0.95Ce0.05FeO3-δ . Furthermore, Sm0.95Ce0.05FeO3-δ proved to be coke resistant anode under dry methane fuel and exhibited reasonably low charge transfer resistance values at temperatures between 600-700°C. The doping of Co and Ni at the B-site of Sm0.95Ce0.05FeO 3-δ found to be very effective in further improving its performance as SOFC anode towards oxidation of dry methane fuel at the lower temperatures.;Sensing experiments revealed that both cobalt doped and Cr doped materials can detect H2, CO and CH4 in air at different temperatures including room temperature. The Ni doped materials did not prove good candidates as sensors. However, their reduction treatment studies showed the formation of metallic nanoparticles on the surface which deeply influence their electrical conductivity as well as sensing ability. Consequently, this modification in surface structure and chemical composition enabled them to sense hydrogen gas at 300°C very effectively. The response of sensors based on these reduced materials was measurable and reversible.
机译:这项工作涉及开发基于SmFeO3的新型钙钛矿氧化物,并测试它们在还原气体(H 2,CO和CH 4)方面的传感器性能以及在固体氧化物燃料电池中用作干甲烷氧化阳极材料的性能。采用柠檬酸作为络合剂,通过溶胶凝胶法合成了具有Sm0.95Ce0.05Fe1-xMxO3-δ(M = Co,Ni&Cr)的新型钙钛矿氧化物材料。所得到的材料通过使用XRD,XRF,XPS,SEM和电化学方法等一系列技术进行表征;;还根据还原稳定性和电性能选择了一些材料,并将它们的电化学性能作为SOFC阳极进行了评估。分别使用干甲烷和干氢燃料。作为SOFC阳极的性能测试表明,氧化干氢燃料的最佳阳极材料是Sm0.95Ce0.05FeO3-δ。此外,Sm0.95Ce0.05FeO3-δ被证明是在干甲烷燃料下的耐焦炭阳极,并且在600-700°C的温度下表现出相当低的电荷转移电阻值。发现在Sm0.95Ce0.05FeO3-δ的B部位掺杂Co和Ni非常有效地进一步改善了其作为SOFC阳极在较低温度下对干甲烷燃料氧化的性能。掺杂钴和铬的材料可以在包括室温在内的不同温度下检测空气中的H2,CO和CH4。掺杂镍的材料不能证明是很好的候选传感器。然而,他们的还原处理研究表明,在表面上形成了金属纳米颗粒,这严重影响了它们的电导率和传感能力。因此,表面结构和化学成分的这种改变使他们能够非常有效地感测300°C的氢气。基于这些减少的材料的传感器的响应是可测量且可逆的。

著录项

  • 作者

    Bukhari, Syed Munawer.;

  • 作者单位

    University of Ottawa (Canada).;

  • 授予单位 University of Ottawa (Canada).;
  • 学科 Chemistry Inorganic.;Engineering Materials Science.;Chemistry Physical.
  • 学位 Ph.D.
  • 年度 2011
  • 页码 249 p.
  • 总页数 249
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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