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首页> 外文期刊>Materials >Synergistic Effect of Nitrogen Doping and MWCNT Intercalation for the Graphene Hybrid Support for Pt Nanoparticles with Exemplary Oxygen Reduction Reaction Performance
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Synergistic Effect of Nitrogen Doping and MWCNT Intercalation for the Graphene Hybrid Support for Pt Nanoparticles with Exemplary Oxygen Reduction Reaction Performance

机译:氮掺杂和MWCNT嵌入对石墨烯杂化负载Pt纳米颗粒的示例性减氧反应性能

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The potential of graphene–multi-walled-carbon nanotube (G-M) hybrids prepared by the one-pot modified Hummers method followed by thermal annealing has been demonstrated by employing one as an electrocatalyst support for oxygen reduction reaction (ORR). N doping effectively modified the electronic structure of the G-M hybrid support, which was beneficial for the uniform distribution of Pt nanoparticles, and ORR activities were further improved. The newly prepared Pt/N-G-M catalyst demonstrated higher electrochemical activity than Pt/G-M and Pt/G catalysts. Even compared with commercial 20 wt % Pt/C (JM20), Pt/N-G-M delivered a better half-wave potential and mass activity. In terms of the durability test, Pt/N-G-M maintained 72.7% of its initial electrochemical active surface area (ECSA) after 2000 repeated potential cycles between 0 and 1.2 V in acidic media in relation to the 44.4% retention for JM20. Moreover, the half-wave potential for Pt/N-G-M showed only a minimal change, significantly superior to the 139 mV of loss for JM20. It is expected that Pt/N-G-M can be the potential candidate as a highly efficient and durable catalyst if utilized in proton exchange membrane fuel cells (PEMFCs).
机译:通过采用一锅法改进的Hummers方法并随后进行热退火制备的石墨烯-多壁碳纳米管(G-M)杂化物的潜力已通过将一种用作氧还原反应(ORR)的电催化剂载体得到证明。 N掺杂有效地修饰了G-M杂化载体的电子结构,有利于Pt纳米颗粒的均匀分布,并且ORR活性得到进一步提高。新制备的Pt / N-G-M催化剂比Pt / G-M和Pt / G催化剂具有更高的电化学活性。即使与市售20 wt%的Pt / C(JM20)相比,Pt / N-G-M仍具有更好的半波电势和质量活性。在耐久性测试方面,相对于JM20的44.4%保留率,Pt / N-G-M在0至1.2 V的酸性介质中重复2000次重复电势循环后,保持其初始电化学活性表面积(ECSA)的72.7%。此外,Pt / N-G-M的半波电势仅显示出最小的变化,明显优于JM20的139 mV损耗。如果将Pt / N-G-M用于质子交换膜燃料电池(PEMFC),则有望成为高效,持久的催化剂。

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