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Strontium Diffusion in Magnetron Sputtered Gadolinia- Doped Ceria Thin Film Barrier Coatings for Solid Oxide Fuel Cells

机译:磁控溅射Ga掺杂二氧化铈薄膜阻隔涂层中用于固体氧化物燃料电池的锶扩散

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摘要

Strontium (Sr) diffusion in magnetron sputtered gadolinia-doped ceria (CGO) thin films is investigated. For this purpose, a model system consisting of a screen printed (La,Sr)(Co,Fe)O_(3-∞) (LSCF) layer, and thin films of CGO and yttria-stabilized zirconia (YSZ) is prepared to simulate a solid oxide fuel cell. This setup allows observation of Sr diffusion by observing SrZrO_3 formation using X-ray diffraction while annealing. Subsequent electron microscopy confirms the results. This approach presents a simple method for assessing the quality of CGO barriers without the need for a complete fuel cell test setup. CGO films with thicknesses ranging from 250 nm to 1.2 μm are tested at temperatures from 850 ℃ to 1000℃ which yields an in-depth understanding of Sr diffusion through CGO thin films that may be of high scientific and technical interest for implementation of novel fuel cell materials. Sr is found to diffuse along column/grain boundaries in the CGO films but by modifying the film thickness and microstructure the breaking temperature of the barrier can be increased.
机译:研究了磁控溅射氧化ado掺杂二氧化铈(CGO)薄膜中锶(Sr)的扩散。为此,准备了一个由丝网印刷的(La,Sr)(Co,Fe)O_(3-∞)(LSCF)层以及CGO和氧化钇稳定的氧化锆(YSZ)薄膜组成的模型系统,以进行模拟固体氧化物燃料电池。该设置允许通过退火时使用X射线衍射观察SrZrO_3的形成来观察Sr扩散。随后的电子显微镜证实了结果。这种方法提供了一种简单的方法,无需完整的燃料电池测试装置即可评估CGO屏障的质量。在850℃至1000℃的温度下对厚度为250 nm至1.2μm的CGO薄膜进行了测试,从而深入了解了Cr薄膜中Sr的扩散,这对于实施新型燃料电池具有很高的科技兴趣。材料。发现Sr沿着CGO膜中的列/晶粒边界扩散,但是通过改变膜的厚度和微观结构,可以提高势垒的破坏温度。

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  • 来源
    《Advanced energy materials》 |2013年第7期|923-929|共7页
  • 作者单位

    Thin Film Division, Department of Physics Chemistry and Biology, IFM Linkoeping University SE-581 83 Linkoeping, Sweden,Danish Technological Institute Tribology Centre, Teknoiogiparken Kongsvang Alle 29, DK-8000 Aarhus C, Denmark;

    Thin Film Division, Department of Physics Chemistry and Biology, IFM Linkoeping University SE-581 83 Linkoeping, Sweden;

    Thin Film Division, Department of Physics Chemistry and Biology, IFM Linkoeping University SE-581 83 Linkoeping, Sweden;

    Danish Technological Institute Tribology Centre, Teknoiogiparken Kongsvang Alle 29, DK-8000 Aarhus C, Denmark;

    Danish Technological Institute Tribology Centre, Teknoiogiparken Kongsvang Alle 29, DK-8000 Aarhus C, Denmark;

    Danish Technological Institute Tribology Centre, Teknoiogiparken Kongsvang Alle 29, DK-8000 Aarhus C, Denmark;

    Thin Film Division, Department of Physics Chemistry and Biology, IFM Linkoeping University SE-581 83 Linkoeping, Sweden;

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