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首页> 外文期刊>ACS applied materials & interfaces >Carbon Nanohorn-Derived Graphene Nanotubes as a Platinum-Free Fuel Cell Cathode
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Carbon Nanohorn-Derived Graphene Nanotubes as a Platinum-Free Fuel Cell Cathode

机译:碳纳米醇衍生的石墨烯纳米管作为无铂燃料电池阴极

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摘要

Current low-temperature fuel cell research mainly focuses on the development of efficient nonprecious electrocatalysts for the reduction of dioxygen molecule due to the reasons like exorbitant cost and scarcity of the current state-of-the-art Pt-based catalysts. As a potential alternative to such costly electrocatalysts, we report here the preparation of an efficient graphene nanotube based oxygen reduction electrocatalyst which has been derived from single walled nanohorns, comprising a thin layer of graphene nanotubes and encapsulated iron oxide nanoparticles (FeGNT). FeGNT shows a surface area of 750 m~2/g, which is the highest ever reported among the metal encapsulated nanotubes. Moreover, the graphene protected iron oxide nanoparticles assist the system to attain efficient distribution of Fe-N_x and quaternary nitrogen based active reaction centers, which provides better activity and stability toward the oxygen reduction reaction (ORR) in acidic as well as alkaline conditions. Single cell performance of a proton exchange membrane fuel cell by using FeGNT as the cathode catalyst delivered a maximum power density of 200 mW cm~(-1) with Nafion as the proton exchange membrane at 60 °C. The facile synthesis strategy with iron oxide encapsulated graphitic carbon morphology opens up a new horizon of hope toward developing Pt-free fuel cells and metal-air batteries along with its applicability in other energy conversion and storage devices.
机译:目前的低温燃料电池研究主要侧重于由于当前最先进的PT基催化剂的过度成本和稀缺性等原因,对减少二恶英分子的高效非尊重电催化剂的开发。作为这种昂贵的电催化剂的潜在替代方案,我们在此报告了制备基于高效的石墨烯纳米管的氧还原电催化剂,该氧还原电催化剂衍生自单壁纳米山脉,其包含薄的石墨烯纳米管和封装的氧化铁纳米粒子(FegNT)。 Fegnt显示出750米〜2 / g的表面积,这是金属封装纳米管中有史以来的最高报道。此外,石墨烯保护的氧化铁纳米颗粒有助于该系统达到Fe-N_X和季氮基的活性反应中心的有效分布,这为酸性和碱性条件的氧还原反应(ORR)提供了更好的活性和稳定性。通过使用FEGNT作为阴极催化剂的单细胞性能,用FEGNT在60℃下以Nafion输送了200mM〜(-1)的最大功率密度为200mW cm〜(-1)。具有氧化铁包封的石墨碳形态学的容纳合成策略开辟了一种新的希望,希望在其他能量转换和储存装置中的适用性以及其适用性开发不含PT的燃料电池和金属电池。

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