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Carbothermal Synthesis of Nitrogen-Doped Graphene Composites for Energy Conversion and Storage Devices

机译:用于能量转换和存储装置的氮掺杂石墨烯复合材料的碳热合成

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摘要

Metal oxides and carbonaceous composites are both promising materials for electrochemical energy conversion and storage devices, such as secondary rechargeable batteries, fuel cells and electrochemical capacitors. In this study, Fe3O4 nanoparticles wrapped in nitrogen-doped (N-doped) graphene nanosheets (Fe3O4@G) were fabricated by a facile one-step carbothermal reduction method derived from Fe2O3 and liquid-polyacrylonitrile (LPAN). The unique two-dimensional structure of N-doped graphene nanosheets, can not only accommodate the volume changes during lithium intercalation/extraction processes and suppress the particles aggregation but also act as an electronically conductive matrix to improve the electrochemical performance of Fe3O4 anode, especially the rate capability. What's more, by etching Fe3O4@G to remove the iron-based oxide template, porous N-doped graphene composites (NGCs) were prepared and presented abundant pore structure with high specific surface area, delivering a specific capacitance of 172 F·g−1 at 0.5 A·g−1. In this way, Fe2O3 was both template and activator to adjust the pore size of graphene. And the effect of specific surface area and pore size tuned by the Fe2O3 activator were also revealed.
机译:金属氧化物和碳质复合材料都是用于电化学能量转换和存储设备的有前途的材料,例如二次充电电池,燃料电池和电化学电容器。在这项研究中,包裹在掺氮(N掺杂)石墨烯纳米片(Fe3O4 @ G)中的Fe3O4纳米颗粒是通过一种简便的一步法碳热还原法制得的,该方法从Fe2O3和液态聚丙烯腈(LPAN)衍生而来。 N掺杂石墨烯纳米片独特的二维结构,不仅可以适应锂插层/萃取过程中的体积变化并抑制颗粒聚集,而且还可以作为导电基质改善Fe3O4阳极的电化学性能。速率能力。此外,通过蚀刻Fe3O4 @ G去除铁基氧化物模板,制备了多孔的N掺杂石墨烯复合材料(NGC),并呈现出具有高比表面积的丰富孔结构,提供了172 F·g -1 在0.5 A·g -1 。这样,Fe2O3既是模板,又是活化剂,可调节石墨烯的孔径。并且还揭示了由Fe 2 O 3活化剂调节的比表面积和孔径的影响。

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