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首页> 外文期刊>ACS nano >In Operando Quantification of Three-Dimensional Water Distribution in Nanoporous Carbon-Based Layers in Polymer Electrolyte Membrane Fuel Cells
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In Operando Quantification of Three-Dimensional Water Distribution in Nanoporous Carbon-Based Layers in Polymer Electrolyte Membrane Fuel Cells

机译:在聚合物电解质膜燃料电池中纳米多孔碳基层中三维水分布的操作数。

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Understanding the function of nanoporous materials employed in polymer electrolyte membrane fuel cells (PEMFCs) is crucial to improve their performance, durability, and cost efficiency. Up to now, the water distribution in the nm-sized pore structures was hardly accessible during operation of the cells. Here we demonstrate that phase contrast synchrotron X-ray tomography allows for an in operando quantification of the three-dimensional water distribution within the nm-sized pores of carbon-based microporous layers (MPLs). For this purpose, a fuel cell design optimized for tomographic phase contrast measurements was realized. Water in the pores of the entire MPL was detected and quantified. We found an inhomogeneous distribution of the local water saturation and a sharp boundary between mostly filled MPL and almost empty areas. We attribute the latter observation to the two-phase boundary created because condensation takes place predominantly on one side of the boundary. Furthermore, high water saturation in large areas hints at gas diffusion or transport along preferred three-dimensional paths through the material, therefore bypassing most of the MPL volume. Our approach may contribute significantly to future investigations of nanoporous fuel cell materials under realistic operating conditions.
机译:理解聚合物电解质膜燃料电池(PEMFC)中使用的纳米多孔材料的功能至关重要,以改善它们的性能,耐用性和成本效率至关重要。到目前为止,在细胞的运行期间几乎无法接近NM大小的孔结构中的水分布。在这里,我们证明了相位对比度同步旋转扫描术允许在基于碳基微孔层(MPLS)的NM尺寸的孔内的三维水分布中的Operando定量。为此目的,实现了针对断层相位对比度测量优化的燃料电池设计。检测和量化整个MPL的孔中的水。我们发现本地水饱和度的不均匀分布以及主要填充的MPL和几乎空区域之间的尖锐边界。我们将后一种观察归因于所产生的两相边界,因为冷凝主要发生在边界的一侧。此外,大面积的高水饱和度在气体扩散或沿着优选的三维路径通过材料进行传输,因此绕过大部分MPL体积。我们的方法可能会在现实操作条件下对纳米多孔燃料电池材料的未来调查有所作用。

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