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首页> 外文期刊>Carbon: An International Journal Sponsored by the American Carbon Society >The experimental and theoretical insights towards the CO induced Pd-Graphene and their multifunctional energy conversion applications
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The experimental and theoretical insights towards the CO induced Pd-Graphene and their multifunctional energy conversion applications

机译:CO诱导PD-石墨烯的实验与理论见解及其多功能能量转换应用

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Here, CO gas environment has been used for reduction of graphene oxide (GO) and Pd precursor for preparation of varieties of Pd Nanostructures (PdNSs) with different shapes, size and surface morphologies on graphene support (RG-PdNSs). The extensive ab-initio Molecular Dynamics (MD) simulations and electronic structure calculations have been carried to get theoretical insight for the reduction process of GO by CO. The reduction of GO by CO as observed in experiment are confirmed by ab-initio MD snapshots at different time steps, energetic of the process and the Partial Density of States character of O2p orbital of GO before and after interaction with CO. The discrete states in the Partial Density of States of O2p orbital after CO attack indicates detachment of O from GO. The as-prepared RG-PdNSs are thoroughly characterized by different techniques. The simulation reveals the change in electronic properties from semi-metallic in pristine graphene to metallic due to the attachment of Pd in RG-PdNSs. The electrocatalytic activity of the as-synthesized nanostructures has been investigated toward the multi-functional energy conversion applications, the methanol oxidation reaction, formic acid oxidation reaction and oxygen reduction reaction. The RG-PdNSs exhibit excellent electrocatalytic performance compared to that of unsupported PdNSs and commercial Pd/C. (C) 2019 Elsevier Ltd. All rights reserved.
机译:这里,共同气体环境已被用于减少石墨烯(GO)和Pd前体,用于制备具有不同形状,大小和表面形态的Pd纳米结构(PDNS)的品种,如石墨烯载体(RG-PDNS)。广泛的AB-Initio分子动力学(MD)模拟和电子结构计算已经被带走了解通过CO的减少过程的理论洞察。通过AB-Initio MD快照证实了在实验中观察到的CO的减少不同的时间阶段,精力充沛的过程和O2P轨道互动前后的各种特征的局部密度与CO的互动。在CO攻击后O2P轨道态的部分密度的离散状态表明O来自Go的脱离。通过不同的技术彻底表征了AS制备的RG-PDNS。仿真由于PD在RG-PDNS中的附接,仿真显示了从原始石墨烯中的半金属的电子特性变化。已经研究了由合成的纳米结构的电催化活性朝向多功能能量转化应用,甲醇氧化反应,甲酸氧化反应和氧还原反应。与不支持的PDNS和商业PD / C相比,RG-PDNSS表现出优异的电催化性能。 (c)2019年elestvier有限公司保留所有权利。

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