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首页> 外文期刊>Carbon: An International Journal Sponsored by the American Carbon Society >Highly efficient electrocatalyst of N-doped graphene-encapsulated cobalt-iron carbides towards oxygen reduction reaction
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Highly efficient electrocatalyst of N-doped graphene-encapsulated cobalt-iron carbides towards oxygen reduction reaction

机译:高效的N-掺杂石墨烯包装的钴 - 铁碳化铁氧化氧还原反应的高效电催化剂

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摘要

Development of highly functional and durable catalysts in a cost-effective way is a promising approach for practical energy conversion applications. In this study, a novel catalyst, cobalt iron carbide nanoparticles encapsulated by nitrogen doped graphene nanosheets, is successfully synthesized through a simple refluxing strategy followed by a post annealing process. It is found that the catalyst exhibits excellent catalytic activity for oxygen reduction reaction in alkaline medium. The oxygen reduction reaction kinetics of the catalyst mainly follow a 4-electron transferred pathway along with good diffusion limit current density, highly positive onset potential (-0.04 V) and half-wave potential (-0.11 V). In addition to catalytic activity, the catalyst demonstrates advanced superior stability, and excellent methanol tolerance in comparison with commercial platinum catalyst. The impressive catalytic performance of the catalyst is attributed to the unique mesoporous metal-core/graphene-shell architecture in which high interactions between two transition metals and transition metal-carbon synergistically provide enhanced catalytically active sites, accelerate interfacial charge transfer, and optimize oxygen adsorption energy. The results demonstrate that such catalyst can be an alternative low-cost and efficient catalyst for oxygen reduction reaction in energy conversion applications. (c) 2018 Elsevier Ltd. All rights reserved.
机译:以成本效益的方式开发高功能和耐用的催化剂是实用能源转换应用的有希望的方法。在该研究中,通过氮掺杂石墨烯纳米液包封的新型催化剂,通过简单的回流策略成功地合成,然后进行退火过程。发现催化剂表现出碱性介质中的氧还原反应的优异催化活性。催化剂的氧还原反应动力学主要遵循4-电子转移途径以及良好的扩散极限电流密度,高阳性发作电位(-0.04V)和半波电位(-0.11V)。除了催化活性外,催化剂还表明了与商业铂催化剂相比的先进的稳定性,优异的甲醇耐受性。催化剂的令人印象深刻的催化性能归因于独特的介孔金属芯/石墨烯 - 壳结构,其中两个过渡金属和过渡金属 - 碳之间的高相互作用协同提供增强的催化活性位点,加速界面电荷转移,并优化氧气吸附活力。结果表明,这种催化剂可以是能量转化应用中的氧还原反应的替代低成本和有效的催化剂。 (c)2018年elestvier有限公司保留所有权利。

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