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Diffusion controlled multilayer electrocatalysts via graphene oxide nanosheets of varying sizes

机译:扩散控制的多层electrocatalysts通过氧化石墨烯nanosheets大小不一

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摘要

Controlling the architecture of hybrid nanomaterial electrodes is critical for understanding their fundamental electrochemical mechanisms and applying these materials in future energy conversion and storage systems. Herein, we report highly tunable electrocatalytic multilayer electrodes, composed of palladium nanoparticles (Pd NPs) supported by graphene sheets of varying lateral sizes, employing a versatile layer-by-layer (LbL) assembly method. We demonstrate that the electrocatalytic activity is highly tunable through the control of the diffusion and electron pathways within the 3-dimensional multilayer electrodes. A larger-sized-graphene-supported electrode exhibited its maximum performance with a thinner film, due to facile charge transfer by the mass transfer limited in the early stage, while a smaller-sized-graphene-supported electrode exhibited its highest current density with higher mass loading in the thicker films by enabling facile mass transfer through increased diffusion pathways. These findings of the tortuous-path effect on the electrocatalytic electrode supported by varying sized graphene provide new insights and a novel design principle into electrode engineering that will be beneficial for the development of effective electrocatalysts.
机译:控制混合的体系结构纳米材料电极是至关重要的了解他们的基本电化学机制和应用这些材料在未来能量转换和储存系统。高度可调electrocatalytic多层报告电极,组成的钯纳米颗粒(Pd NPs)支持不同的石墨烯横向尺寸,采用通用的分层技术(LbL)装配方法。证明electrocatalytic活动高度可调的控制内扩散和电子通路三维多层电极。larger-sized-graphene-supported电极表现出与更薄的最大性能电影,由于灵巧的电荷转移的质量转让有限的早期阶段,而一个smaller-sized-graphene-supported电极表现出较高的电流密度最高通过启用质量负载更厚的电影通过增加扩散的传质通路。影响electrocatalytic电极由不同大小的石墨烯提供新的支持见解和新颖的设计原则电极工程,这将是有益的有效electrocatalysts的发展。

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