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Upgrading the Properties of Reduced Graphene Oxide and Nitrogen-Doped Reduced Graphene Oxide Produced by Thermal Reduction toward Efficient ORR Electrocatalysts

机译:高效ORR电催化剂对热还原产生的还原型氧化石墨烯和氮掺杂的还原型氧化石墨烯的性能的提升

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摘要

N-doped (NrGO) and non-doped (rGO) graphenic materials are prepared by oxidation and further thermal treatment under ammonia and inert atmospheres, respectively, of natural graphites of different particle sizes. An extensive characterization of graphene materials points out that the physical properties of synthesized materials, as well as the nitrogen species introduced, depend on the particle size of the starting graphite, the reduction atmospheres, and the temperature conditions used during the exfoliation treatment. These findings indicate that it is possible to tailor properties of non-doped and N-doped reduced graphene oxide, such as the number of layers, surface area, and nitrogen content, by using a simple strategy based on selecting adequate graphite sizes and convenient experimental conditions during thermal exfoliation. Additionally, the graphenic materials are successfully applied as electrocatalysts for the demanding oxygen reduction reaction (ORR). Nitrogen doping together with the starting graphite of smaller particle size (NrGO -4) resulted in a more efficient ORR electrocatalyst with more positive onset potentials ( = 0.82 V versus RHE), superior diffusion-limiting current density ( = −4.05 mA cm ), and selectivity to the direct four-electron pathway. Moreover, all NrGO -4 show high tolerance to methanol poisoning in comparison with the state-of-the-art ORR electrocatalyst Pt/C and good stability.
机译:N掺杂(NrGO)和非掺杂(rGO)石墨材料分别通过氧化和在氨气和惰性气氛下进一步热处理不同粒径的天然石墨制成。石墨烯材料的广泛表征指出,合成材料的物理性质以及引入的氮种类取决于起始石墨的粒径,还原气氛和剥离处理中使用的温度条件。这些发现表明,通过选择适当的石墨尺寸并采用方便的实验方法,可以采用简单的策略来调整非掺杂和N掺杂的还原氧化石墨烯的性质,例如层数,表面积和氮含量。热剥离的条件。另外,石墨烯材料已成功地用作用于苛刻的氧还原反应(ORR)的电催化剂。氮掺杂与较小粒径的起始石墨(NrGO -4)一起产生了更高效的ORR电催化剂,具有更高的正起始电势(相对于RHE = 0.82 V),优异的扩散限制电流密度(= -4.05 mA cm),对直接四电子途径的选择性。而且,与最新的ORR电催化剂Pt / C相比,所有NrGO -4都表现出对甲醇中毒的高耐受性和良好的稳定性。

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