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首页> 外文期刊>Journal of Composites Science >Hydrothermal Carbon/Carbon Nanotube Composites as Electrocatalysts for the Oxygen Reduction Reaction
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Hydrothermal Carbon/Carbon Nanotube Composites as Electrocatalysts for the Oxygen Reduction Reaction

机译:水热碳/碳纳米管复合材料作为氧还原反应的电催化剂

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The oxygen reduction reaction is an essential reaction in several energy conversion devices such as fuel cells and batteries. So far, the best performance is obtained by using platinum-based electrocatalysts, which make the devices really expensive, and thus, new and more affordable materials should be designed. Biomass-derived carbons were prepared by hydrothermal carbonization in the presence of carbon nanotubes with different oxygen surface functionalities to evaluate their effect on the final properties. Additionally, nitrogen functional groups were also introduced by ball milling the carbon composite together with melamine. The oxygen groups on the surface of the carbon nanotubes favor their dispersion into the precursor mixture and the formation of a more homogenous carbon structure with higher mechanical strength. This type of structure partially avoids the crushing of the nanotubes and the carbon spheres during the ball milling, resulting in a carbon composite with enhanced electrical conductivity. Undoped and N-doped composites were used as electrocatalysts for the oxygen reduction reaction. The onset potential increases by 20% due to the incorporation of carbon nanotubes (CNTs) and nitrogen, which increases the number of active sites and improves the chemical reactivity, while the limiting current density increases by 47% due to the higher electrical conductivity.
机译:氧还原反应是诸如燃料电池和电池的几种能量转换装置中的基本反应。到目前为止,通过使用基于铂基电催化剂获得的最佳性能,使器件真正昂贵,因此,应设计新的和更实惠的材料。通过具有不同氧表面官能团的碳纳米管存在的水热碳化制备生物质衍生的碳,以评估它们对最终性质的影响。另外,还通过将碳复合材料与三聚氰胺一起引入氮官能团。碳纳米管表面上的氧基团赞成它们分散到前体混合物中,并形成具有更高机械强度的更均匀的碳结构。这种类型的结构部分避免了在球磨期间粉碎纳米管和碳球,导致具有增强的导电性的碳复合物。未掺杂的和n掺杂的复合材料用作氧还原反应的电催化剂。由于掺入碳纳米管(CNT)和氮气的掺入,起发电局部增加了20%,这增加了活性位点的数量并提高了化学反应性,而由于较高的导电性,限制电流密度增加了47%。

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