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首页> 外文期刊>ChemCatChem >Fabrication of Stable and Well-connected Proton Path in Catalyst Layer for High Temperature Polymer Electrolyte Fuel Cells
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Fabrication of Stable and Well-connected Proton Path in Catalyst Layer for High Temperature Polymer Electrolyte Fuel Cells

机译:高温聚合物电解质燃料电池催化剂层中稳定良好连接的质子路径的制造

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摘要

It is of importance to establish stable and well-connected proton path in the catalyst layer to promote the fuel cell performance. Here, we describe a novel method to fabricate stable and efficient proton path for high temperature polymer electrolyte fuel cells (HT-PEFCs), in which the ionic liquid is doped into the platinum electrocatalyst. The electrochemical results depict that ionic liquid doped electrocatalyst exhibits comparable electrochemical surface area (ESA) and enhanced durability indicating that ionic liquid negligibly affects the hydrogen adsorption/desorption process and protects the electrocatalyst from carbon corrosion. Interestingly, the catalyzing activity toward oxygen reduction reaction (ORR) of Pt electrocatalyst is boosted after doping with ionic liquid mainly due to the modified electronic structures of Pt atoms induced by nitrogen atoms from ionic liquid resulting in weak interaction between Pt atoms and intermediates. The fuel cell performance of ionic liquid doped electrocatalyst is much improved ascribed to the homogeneously dispersed ionic liquid on the surface of Pt electrocatalyst facilitating the fabrication of triple phase boundaries (TPBs) as a result of efficient proton conduction in the catalyst layer. The fuel cell performance only decreases 10 % after 100,000 potential cycles from 1.0 to 1.5 V versus RHE suggesting that ionic liquid forms a stable proton path in the catalyst layer. Thus, the ionic liquid doped Pt electrocatalyst is applicable for the real HT-PEFC operation.
机译:在催化剂层中建立稳定和连接良好的质子路径以促进燃料电池性能是重要的。这里,我们描述了一种用于制造用于高温聚合物电解质燃料电池(HT-PEFC)的稳定高效质子路径的新方法,其中离子液体掺杂到铂电催化剂中。电化学结果描绘了离子液体掺杂电催化剂表现出可比较的电化学表面积(ESA)和增强的耐久性,表明离子液体可忽略地影响氢吸附/解吸过程并保护电催化剂免受碳腐蚀的保护。有趣的是,在掺杂与离子液体掺杂掺杂的氧化催化剂的催化活性主要是由于由离子液体培养的氮原子诱导的Pt原子的改性电子结构,导致Pt原子和中间体之间的弱相互作用。离子液体掺杂电催化剂的燃料电池性能在PT电催化剂表面上均匀地改善于Pt电催化剂表面的均匀分散的离子液体,便于三相边界(TPBS)的制造,其产生催化剂层中的有效质子传导。燃料电池性能在1.0至1.5V的100,000次电位循环与RHE之间的100,000次电位循环后,燃料电池性能仅降低了10%,这表明离子液体在催化剂层中形成稳定的质子路径。因此,离子液体掺杂PT电催化剂适用于真实的HT-PEFC操作。

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