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首页> 外文期刊>Nano Energy >Systematic study on structural and electronic properties of diamine/triamine functionalized graphene networks for supercapacitor application
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Systematic study on structural and electronic properties of diamine/triamine functionalized graphene networks for supercapacitor application

机译:二胺/三胺官能化石墨烯网络结构和电子性质的系统研究超级电容器应用

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In this report, a series of diamine/traimine molecules were selected to make different functionalized graphene networks using a facile two-step hydrothermal method. The molecular level grafting of amines to graphene surface via covalent bonds was confirmed by FTIR and XPS. XRD patterns revealed that these amine molecules served as molecular spacers to enlarge the interlayer spacing and the specific surface area. Upon functionalization, the interlayer spacing values varied from 0.84 to 1.23 nm, and the spacing was found to change negligibly after the GO reduction, implying the high stability of the 3D graphene nanostructure. The influence of chain conformation and degree of functionalization on molecular spacing was also discussed. The as-fabricated graphene composite exhibited an improved capacitance in aqueous and organic electrolytes with less than 10% capacitance decay during 10,000 charge/discharge cycles and fast ionic diffusion features. The composite also delivered a maximum capacitance of 119 F/g in ionic liquid electrolyte with an ultrahigh energy density of 51 Wh/kg and slow self-discharge rate. Furthermore, computational study was performed to model the electron distribution and band gap structures of graphene networks. The use of aliphatic amine spacers could better elucidate the correlation between spacing effect and electrical double-layer capacitance.
机译:在本报告中,选择了一系列二胺/特拉明分子以使用容易的两步水热法制造不同的官能化石墨烯网络。通过FTIR和XPS证实了通过共价键的胺对石墨烯表面的分子水平接枝。 XRD图案显示,这些胺分子用作分子间隔物,以扩大层间间隔和比表面积。在官能化时,中间间距值从0.84变化到1.23nm,并且发现间隔在降低后可忽略地改变,暗示3D石墨烯纳米结构的高稳定性。还讨论了链构象和官能化程度对分子间距的影响。制造的石墨烯复合材料在10,000个充电/放电循环期间具有小于10%电容衰减的水性和有机电解质中的改善电容和快速离子扩散特征。复合材料还在离子液体电解质中提供119 f / g的最大电容,其超高能量密度为51wH / kg和缓慢的自放电速率。此外,执行计算研究以模拟石墨烯网络的电子分布和带隙结构。脂族胺间隔物的使用可以更好地阐明间隔效果和电双层电容之间的相关性。

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