首页> 外文期刊>Journal of Materials Chemistry: An Interdisciplinary Journal dealing with Synthesis, Structures, Properties and Applications of Materials, Particulary Those Associated with Advanced Technology >Synthesis and investigation of mechanism of platinum-graphene electrocatalysts by novel co-reduction techniques for proton exchange membrane fuel cell applications
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Synthesis and investigation of mechanism of platinum-graphene electrocatalysts by novel co-reduction techniques for proton exchange membrane fuel cell applications

机译:新型共还原技术在质子交换膜燃料电池中铂-石墨烯电催化剂的合成及机理研究

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摘要

In this paper, we demonstrate two novel green synthesis methods for preparing platinum-graphene catalysts for proton exchange membrane fuel cell (PEMFC) applications. Starting from graphite oxide, the platinum precursor is added and the composite is separately subjected to (a) focused solar radiation and (b) hydrogen gas, for carrying out simultaneous reduction of graphite oxide to graphene and platinum complexes to platinum nanoparticles. These co-reduction methods employ a single agent, namely either sunlight or hydrogen gas, to accomplish the reduction process. Both techniques are therefore cost and energy effective and capable of large scale production. Rotating disc electrode (RDE) and PEMFC measurements reveal the high performance of these electrocatalysts as compared to commercial Pt-C electrocatalysts due to high oxygen reduction reaction (ORR) activity. Stability studies show that both catalysts are highly stable under acidic medium. The proposed methods are quite general in their applicability and we believe that these can be extended for synthesizing a wide variety of electrocatalysts such as various metal, metal oxide or metal alloy nanoparticle decorated carbon nanostructures.
机译:在本文中,我们演示了两种新颖的绿色合成方法,用于制备质子交换膜燃料电池(PEMFC)应用的铂-石墨烯催化剂。从氧化石墨开始,添加铂前体,并使复合材料分别经受(a)聚焦太阳辐射和(b)氢气,以同时将氧化石墨还原为石墨烯,并将铂络合物还原为铂纳米颗粒。这些共还原方法采用单一试剂,即阳光或氢气,以完成还原过程。因此,这两种技术都具有成本效益和能源效率,并且能够大规模生产。旋转圆盘电极(RDE)和PEMFC的测量结果表明,由于高氧还原反应(ORR)活性,与市售Pt-C电催化剂相比,这些电催化剂具有高性能。稳定性研究表明,两种催化剂在酸性介质下都非常稳定。所提出的方法在它们的适用性方面是相当普遍的,并且我们认为这些方法可以扩展为用于合成各种各样的电催化剂,例如各种金属,金属氧化物或金属合金纳米颗粒装饰的碳纳米结构。

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