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Hydrogen oxidation kinetics on platinum-palladium bimetallic thin films for solid acid fuel cells

机译:固体酸燃料电池铂钯双金属薄膜上的氢氧化动力学

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摘要

Solid acid fuel cells (SAFCs) based on the proton-conductive electrolyte CsHsub2/subPOsub4/sub have shown promising power densities at an intermediate operating temperature of ~250 °C. However, Pt loadings in SAFCs remain higher than desirable, and the electrocatalysis mechanisms in these devices are still unknown. Here, hydrogen oxidation kinetics on Pt and Pt-Pd bimetallic thin film electrodes on CsHsub2/subPOsub4/sub have been evaluated to establish the potential for a beneficial role of Pd in SAFC anodes. Symmetric cells fabricated by depositing a metal film on both sides of electrolyte discs are characterized for studying hydrogen electro-oxidation across the gas|metal|CsHsub2/subPOsub4/sub structure. It was found that Pd reacts with CsHsub2/subPOsub4/sub, forming palladium phosphide at the metal-electrolyte interface. Accordingly, the activity of Pd was examined in a bilayer geometry of Pd|Pt|CsHsub2/subPOsub4/sub|Pt|Pd. The bilayer Pt|Pd films showed much higher activity for hydrogen electro-oxidation than films of Pt alone, as measured by AC impedance spectroscopy. Ex situ low energy ion scattering and scanning transmission electron microscopy revealed that Pd diffused into the Pt layer under operating conditions. The dramatic impact of Pd along with its presence throughout the film suggests that it catalyzes reactions at both the metal-gas and metal-electrolyte interfaces, as well as increasing hydrogen diffusion rates through the films.
机译:基于质子传导电解质CsH 2 PO 4 的固体酸燃料电池(SAFC)在中间工作温度约为250°C时显示出有希望的功率密度。但是,SAFC中的Pt负载仍然高于期望值,这些设备中的电催化机理仍然未知。在这里,已对CsH 2 PO 4 上Pt和Pt-Pd双金属薄膜电极上的氢氧化动力学进行了评估,以建立Pd在SAFC阳极中发挥有益作用的潜力。 。通过在电解质盘的两面上沉积金属膜而制成的对称电池的特征在于,研究跨CsH 2 PO 4 结构的氢电氧化。发现钯与CsH 2 PO 4 反应,在金属-电解质界面形成磷化钯。因此,在Pd | Pt | CsH 2 PO 4 | Pt | Pd的双层几何结构中检查了Pd的活性。通过交流阻抗谱测量,双层Pt | Pd膜对氢电氧化的活性比单独的Pt膜高得多。异位低能离子散射和扫描透射电子显微镜显示,Pd在工作条件下扩散到Pt层中。 Pd及其在整个膜中的存在所产生的巨大影响表明,Pd可以催化金属-气体和金属-电解质界面的反应,并提高了氢在膜中的扩散速率。

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