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首页> 外文期刊>Advanced Functional Materials >Resolving the Three-Dimensional Microstructure of Polymer Electrolyte Fuel Cell Electrodes using Nanometer- Scale X-ray Computed Tomography
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Resolving the Three-Dimensional Microstructure of Polymer Electrolyte Fuel Cell Electrodes using Nanometer- Scale X-ray Computed Tomography

机译:使用纳米级X射线计算机断层扫描技术解决聚合物电解质燃料电池电极的三维微观结构

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The electrodes of a polymer electrolyte fuel cell (PEFC) are composite porous layers consisting of carbon and platinum nanoparticles and a polymer electrolyte binder. The proper composition and arrangement of these materials for fast reactant transport and high electrochemical activity is crucial to achieving high performance, long lifetimes, and low costs. Here, the microstructure of a PEFC electrode using nanometer-scale X-ray computed tomography (nano-CT) with a resolution of 50 nm is investigated. The nano-CT instrument obtains this resolution for the low-atomic-number catalyst support and binder using a combination of a Fresnel zone plate objective and Zernike phase contrast imaging. High-resolution, non-destructive imaging of the three-dimensional (3D) microstructures provides important new information on the size and form of the catalyst particle agglomerates and pore spaces. Transmission electron microscopy (TEM) and mercury intrusion porosimetry (MIP) is applied to evaluate the limits of the resolution and to verify the 3D reconstructions. The computational reconstructions and size distributions obtained with nano-CT can be used for evaluating electrode preparation, performing pore-scale simulations, and extracting effective morphological parameters for large-scale computational models.
机译:聚合物电解质燃料电池(PEFC)的电极是由碳和铂纳米颗粒以及聚合物电解质粘合剂组成的复合多孔层。这些材料的适当组成和排列方式对于快速反应物传输和高电化学活性而言,对于实现高性能,长寿命和低成本至关重要。在此,研究了使用分辨率为50 nm的纳米级X射线计算机断层扫描(nano-CT)的PEFC电极的微观结构。纳米CT仪器结合使用菲涅耳波带片物镜和Zernike相衬成像技术,获得了低原子数催化剂载体和粘合剂的分辨率。三维(3D)微观结构的高分辨率,无损成像提供了有关催化剂颗粒团聚体和孔空间的大小和形式的重要新信息。透射电子显微镜(TEM)和压汞法(MIP)用于评估分辨率极限并验证3D重建。使用nano-CT获得的计算重建结果和尺寸分布可用于评估电极制备,执行孔尺度模拟以及为大型计算模型提取有效的形态学参数。

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  • 来源
    《Advanced Functional Materials 》 |2012年第3期| p.555-560| 共6页
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    5000 Forbes Ave, Scaife Hall 323 Pittsburgh, PA 15213, USA;

    5000 Forbes Ave, Scaife Hall 323 Pittsburgh, PA 15213, USA;

    5000 Forbes Ave, Scaife Hall 323 Pittsburgh, PA 15213, USA;

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