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首页> 外文期刊>Electrochimica Acta >Scalable Synthesis of High-Tapped-Density N-doped Graphene by Polyethyleneimine-Mediated Thermal Treatment of Graphene Oxide and Its Application for Supercapacitors
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Scalable Synthesis of High-Tapped-Density N-doped Graphene by Polyethyleneimine-Mediated Thermal Treatment of Graphene Oxide and Its Application for Supercapacitors

机译:通过聚乙烯亚胺介导的石墨烯介导的热处理的高滴隙密度N掺杂石墨烯的可扩展合成及其对超级电容器的应用

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Development of high-tapped-density graphene-based materials with satisfactory Brunauer-Emmett-Teller (BET) surface area can be beneficial to the optimization of the volumetric performance of supercapacitors for practical use. Herein, we report a simple and scalable route for the synthesis of high tapped-density N-doped graphene (HNG). The success of this work relies on the use of polyethyleneimine (PEI) to react with graphene oxide under ambient conditions to realize fast cross-linking and thus rapid sedimentation, followed by thermal treatment of the precipitates. The resultant HNG exhibits a good balance between the tapped density and BET surface area, where the tapped density can be tuned in the range of 0.90-1.20 g cm(3) and the BET surface area is maintained in the range of 457.0-119.6 m(2) g(-1). The interaction between PEI and graphene oxide successfully prevents restacking of the graphene layers during thermal treatment while allowing maximal volume shrinkage. When applied as an electrode material in supercapacitors, the HNG exhibits a volumetric capacitance up to 547.8 F cm(3) at a scan rate of 10 mV s(-1) and 317.3 F cm(3) at a current density 0.2 A g(-1), and it shows no apparent decrease in the specific capacitance after 5000 cycles at 2 A g(-1). The results demonstrate the feasibility of the new strategy for designing high-tapped-density graphene-based materials for supercapacitors. (C) 2017 Elsevier Ltd. All rights reserved.
机译:具有满意的Brunauer-Emmett-experer(BET)表面积的高级密度石墨烯基材料的开发可以有利于优化超级电容器的体积性能进行实际使用。在此,我们报告了一种简单且可扩展的途径,用于合成高滴眼密度N掺杂石墨烯(HNG)。这项工作的成功依赖于在环境条件下使用聚乙烯亚胺(PEI)与石墨烯氧化物反应,以实现快速交联,从而快速沉降,然后进行沉淀物热处理。所得液体在截止密度和BET表面积之间表现出良好的平衡,其中敲击密度可以调节在0.90-1.20g cm(3)的范围内,并且BET表面积保持在457.0-119.6米的范围内(2)G(-1)。 PeI和氧化烯氧化物之间的相互作用成功地防止了在热处理期间石墨烯层的重新包装,同时允许最大体积收缩。当在超级电容器中施加作为电极材料时,液化液在电流密度为0.2Ag(以下)的扫描速率为10mVs(-1)和317.3f cm(3)的扫描速率,液化壶速仪呈现高达547.8 f cm(3)的容积电容。 -1),它显示在5000次循环以2Ag(-1)后的特定电容中的明显降低。结果表明,为超级电容器设计高螺纹密度石墨烯基材料的新策略的可行性。 (c)2017 Elsevier Ltd.保留所有权利。

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