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Hydrogen uptake of reduced graphene oxide and graphene sheets decorated with Fe nanoclusters

机译:铁纳米团簇修饰的氧化石墨烯和石墨烯片的氢吸收

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Graphene oxide (GO) has been prepared by employing modified Staudenmaier's method through thermal exfoliation of graphite oxide. High pressure hydrogen sorption isotherms up to 50 bar of GO, reduced by thermal reduction (TR-GO), chemical reduction (CR-GO) and graphene sheets decorated with Fe nanoclusters (Fe-GS) have been investigated. Thermal reduction of GO at 623 K under high vacuum yields TR-GO. Chemical reduction of GO using hydrazine forms CR-GO. Fe-GS was synthesized through arc-discharge between the ends of two graphite rods with one rod carrying Fe nanoparticles. The surface areas of these graphene samples were determined from the nitrogen adsorption isotherm employing Bru-nauer, Emmett and Teller (BET) method. Kelvin's equation was used to determine the pore size distribution of all graphene based samples. Hydrogen pressure-composition isotherms (PCI) were determined at 300 K and at 77 K, between 0.1 and 50 bar. Further, in this paper, we present a comparative adsorption isotherm analysis of hydrogen and helium on TR-GO. This reveals that the volume of hydrogen and helium adsorbed by TR-GO is nearly equal. The similar uptake volume determined for both hydrogen and helium indicates the possibility of monolayer adsorption of hydrogen and also nearly similar binding energy between TR-GO and H_2/He.
机译:氧化石墨烯(GO)是通过采用改良的Staudenmaier方法通过氧化石墨的热剥落法制备的。已经研究了高达50 bar GO的高压氢吸附等温线,并通过热还原(TR-GO),化学还原(CR-GO)和用Fe纳米团簇(Fe-GS)装饰的石墨烯片进行了还原。 GO在高真空下于623 K热还原产生TR-GO。使用肼化学还原GO形成CR-GO。 Fe-GS是通过两根石墨棒末端之间的电弧放电合成的,其中一根棒载有Fe纳米颗粒。使用Bru-nauer,Emmett和Teller(BET)方法从氮吸附等温线确定这些石墨烯样品的表面积。开尔文方程用于确定所有石墨烯基样品的孔径分布。在300 K和77 K下在0.1至50 bar之间确定氢气压力-等温线(PCI)。此外,在本文中,我们提出了氢和氦在TR-GO上的吸附等温线比较分析。这表明TR-GO吸附的氢和氦的体积几乎相等。对于氢和氦确定的相似的吸收体积表明氢单层吸附的可能性以及TR-GO和H_2 / He之间的结合能几乎相似。

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