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Synthesis of nitrogen-doped onion-like carbon and its use in carbon-based GoFe binary non-precious-metal catalysts for oxygen-reduction

机译:氮掺杂洋葱类碳的合成及其在碳基GoFe二元非贵金属催化剂中的氧还原应用

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摘要

Nitrogen-doped onion-like carbon-rich materials were synthesized by heat treatment of a "hybrid" containing hexamethylene diamine complex in the presence of Co and Fe species while preparing non-precious metal electrocatalyst for oxygen-reduction. As demonstrated by electrochemical rotating disk electrode and fuel cell tests, the binary CoFe-based catalyst containing graphitized onion-like carbon nanostructures provides for improved performance relative to the single Fe-based catalyst in which no such carbon structure was observed. In the binary catalysts, variation of the ratios of Co to Fe and the total metal loading during the synthesis leads to a markedly different activity and four-electron selectivity for oxygen reduction. The optimized binary catalyst was studied in fuel cell lifetime tests using both constant current and voltage models, showing a good combination of activity and durability. Possible reasons for the improved performance of the CoFe-based binary catalyst are discussed. The graphitized onion-like carbon structure exclusively derived from Co in this work may be providing a robust matrix to host non-precious metal active sites, which would prevent water flooding of them, and increase the resistance to oxidative attack in the oxygen cathode, thereby leading to an improvement in performance durability.
机译:在Co和Fe物种存在下,通过对含有六亚甲基二胺的“杂化物”进行热处理,制备了用于氧还原的非贵金属电催化剂,合成了氮掺杂的洋葱类富碳材料。正如电化学旋转圆盘电极和燃料电池测试所证明的那样,含有石墨化洋葱状碳纳米结构的二元CoFe基催化剂相对于未观察到这种碳结构的单一Fe基催化剂提供了更好的性能。在二元催化剂中,Co 与 Fe 的比例和合成过程中总金属负载量的变化导致氧还原的活性和四电子选择性明显不同。在燃料电池寿命测试中,使用恒流和恒压模型研究了优化后的二元催化剂,显示出活性和耐久性的良好组合。讨论了CoFe基二元催化剂性能提高的可能原因。在这项工作中,仅从Co衍生的石墨化洋葱状碳结构可能为承载非贵金属活性位点提供了强大的基质,这将防止它们被水淹没,并增加氧阴极对氧化侵蚀的抵抗力,从而提高性能耐久性。

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