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Novel synthesis and characterization of intermediate temperature solid oxide fuel cells

Novel synthesis and characterization of intermediate temperature solid oxide fuel cells
中温固体氧化物燃料电池的新合成和表征
批准号:
1067424
负责人:
Christos Takoudis
金额:
$47.5万
依托单位国家:
美国
项目类别:
Standard Grant
财政年份:
2011
资助国家:
美国
项目状态:
已结题
起止时间:
2011-05-01 至 2015-04-30

项目摘要

项目成果

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中文摘要
翻译
燃料电池通过电化学反应将化学能直接转化为电能。由于这种能量的直接电化学转换,燃料电池提供了高效、环保的能源,是未来能源需求的解决方案之一。燃料电池基本上需要一个阳极和一个阴极,由离子导电电解质分开。根据所使用的电解质,不同种类的燃料电池可以在很宽的温度范围内工作。固体氧化物燃料电池(SOFCs)由于其高预期的能源效率而引起了人们的兴趣,据美国能源部报道。将sofc的温度要求降低到至少600 - 800ºC的中间温度范围,同时仍保持高效率,这是一个巨大的兴趣。这些中温sofc需要新的材料和替代结构才能在较低温度下实现高电化学效率。如何做到这一点是个问题。来自芝加哥伊利诺伊大学的研究人员Christos Takoudis、Gregory Jursich、Robert Klie和Alan Zdunek,以及来自伊利诺伊州阿贡国家实验室的Jeffrey Miller认为,他们的团队和他们将采用的程序正是在新型IT sofc上取得进展所需要的。实现低温可操作性的一个关键是为每层阳极、阴极和电解质设计更小厚度的sofc,并精确控制各层的化学成分。利用目前安装在阿贡实验室先进光子源的独特的原子层沉积/化学气相沉积(ALD/CVD)混合反应器,pi将开发和控制it - sofc的热学和电化学性能,以实现成功的降低温度的可操作性。该反应器具有复杂的金属氧化物,其厚度从接近体状的微米层到原子状的纳米层。人们必须知道化学加工了什么,因此pi将在ALD/CVD沉积,反应和热转化条件下使用x射线吸收和x射线衍射来更好地了解和控制最终微纳材料结构的合成过程。这种独特的实验装置将使迄今为止无法理解的电化学、催化和热性能趋势从宏观到微观化学。此外,该设备将允许pi在同一反应器内制造所有三个组件作为一个沉积过程,从而产生原子定义良好的界面区域,并将三个组件作为一个整体系统进行评估。这个新燃料电池项目的概念很简单:在一个反应堆中制造受控化学成分的薄层,因此界面也受到控制,从而大大提高了制造可行的IT SOFC的机会。使用正确的分析设备来了解已制成的是成功的关键。pi打算将这一技术项目与现有的研究生招募模式结合起来,包括那些已经在UIC到位的代表性不足的群体。还计划了潜在的扩展教育项目,向本科生和高中生传播科学。
英文摘要
Fuel cells provide direct conversion of chemical energy into electrical energy by means of electrochemical reactions. Because of this direct electrochemical conversion of energy, fuel cells offer efficient, environmentally desirable energy sources, and are targeted as one of the solutions for future energy needs. A fuel cell basically requires an anode and a cathode separated by an ion-conducting electrolyte. Different classes of fuel cells operate over a wide range of temperature depending on the electrolyte used. Solid oxide fuel cells (SOFCs) have generated interest due to their high expected energy efficiency as reported by the Department of Energy. There is tremendous interest in lowering the temperature requirements of SOFCs to at least an intermediate temperature range of 600 800 ºC while still maintaining high efficiency. These intermediate temperature (IT) SOFCs require new materials and alternate structures to achieve high electrochemical efficiency at lower temperatures. How to achieve this is the problem.Investigators Christos Takoudis, Gregory Jursich, Robert Klie, and Alan Zdunek from the University of Illinois at Chicago, along with Jeffrey Miller from Argonne National Laboratories in Illinois believe their team and the procedures they will employ are exactly what are required to make progress on a new class of IT SOFCs. One key to achieve lower temperature operability is to engineer the SOFCs with smaller thickness for each of the anode, cathode and electrolyte layers and with precise control over the chemical compositions of the layers. Using a unique atomic layer deposition/chemical vapor deposition (ALD/CVD) hybrid reactor currently installed at the Advanced Photon Source at Argonne Labs to create complex metal oxides with thicknesses varying from near bulk-like micron layers to atomic-like nanometer layers, the PIs will develop and control the thermal and electrochemical properties of the IT-SOFCs to achieve successful reduced temperature operability. One must know what has been chemically crafted, so the PIs will use X-ray absorption and X-ray diffraction during ALD/CVD deposition, reaction and thermal transformation conditions to better understand and control the synthesis process of the final micro-nano material structures. This unique experimental set-up will allow hitherto unavailable understanding of electrochemical, catalytic and thermal property trends from the macroscopic to microscopic chemistries. In addition, the equipment will allow the PIs to fabricate all three components within the same reactor as one deposition process, resulting in atomically well-defined interfacial regions and evaluation of the three components as an integral system. The concept for this new fuel cell program is straightforward: make thin layers of controlled chemical composition in one reactor so the interfaces are also controlled, and the chances of creating a viable IT SOFC are vastly improved. Use of the correct analytical equipment to know what has been made is key to success. The PIs intend to couple this technical program with the existing modes of enlisting of graduate students, including those from under-represented groups, already in place at UIC. Potential outreach educational programs are planned as well to spread the science to undergraduates and high school students.
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REU Site in Novel Advanced Materials and Processing with Applications in Engineering
  • 批准号:
    1062943
  • 项目类别:
    Continuing Grant
  • 资助金额:
    $35.32万
  • 财政年份:
    2011
  • 负责人:
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  • 依托单位:
REU Site in Novel Advanced Materials and Processing with Applications in Biomedical, Electrical and Chemical Engineering
  • 批准号:
    0755115
  • 项目类别:
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  • 资助金额:
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NIRT:Active Multiferroic Nanostructures
  • 批准号:
    0609377
  • 项目类别:
    Standard Grant
  • 资助金额:
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  • 财政年份:
    2006
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  • 批准号:
    0453432
  • 项目类别:
    Continuing Grant
  • 资助金额:
    $0.0万
  • 财政年份:
    2005
  • 负责人:
    Christos Takoudis
  • 依托单位:
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