Synthesis of Graphene Oxide (GO) by Modified Hummers Method and Its Thermal Reduction to Obtain Reduced Graphene Oxide (rGO)*

Синтез оксида графена (GO) модифицированным методом Хаммерса и его термическое восстановление для получения восстановленного оксида графена (rGO)
Syed Nasimul Alam, Nidhi Sharma, Lailesh Kumar
2017-01-01

KMnO4 oxidationcharacterization: XRD, SEM, HR-TEM, FTIR, Raman, BET, TGA, DSCgraphene oxide (GO)modified Hummers methodreduced graphene oxide (rGO)
Over the span of years, improvements over various synthesis methods of graphene are constantly pursued to provide safer and more effective alternatives. Though the extraction of graphene through Hummers method is one of the oldest techniques yet it is one of the most suitable methods for the formation of bulk graphene. Graphene can be obtained in the form of reduced Graphite oxide, sometimes also referred as Graphene oxide. The effectiveness of this oxidation process can be evaluated by the magnitude of carbon/oxygen ratio of the obtained graphene. Here, graphene oxide (GO) was prepared by oxidizing the purified natural flake graphite (NFG) by a modified Hummers method. The attempts have been made to synthesize GO having few layers by using a modified Hummers method where the amount of NaNO3 has been decreased, and the amount of KMnO4 is increased. The reaction has been performed in a 9:1 (by volume) mixture of H2SO4/H3PO4. This modification is successful in increasing the reaction yield and reducing the toxic gas evolution while using a varied proportion of KMnO4 and H2SO4 as those required by Hummers method. A new component of K2S2O8 has been introduced to the reaction system to maintain the pH value. Reduced graphene oxide (rGO) was thereafter extracted by thermal modification of GO. Here, GO has been used as a precursor for graphene synthesis by thermal reduction processes. The results of FTIR and Raman spectroscopy analysis show that the NFG when oxidized by strong oxidants like KMnO4 and NaNO3, introduced oxygen atoms into the graphite layers and formed bonds like C=O, C-H, COOH and C-O-C with the carbon atoms in the graphite layers. The structure and morphology of both GO and rGO were analyzed using X-ray diffraction (XRD), scanning electron microscopy (SEM), high-resolution transmission electron microscopy (HR-TEM), Fourier transform infrared spectroscopy (FTIR), ultraviolet-visible spectroscopy, Raman spectroscopy, Brunauer-Emmett-Teller (BET) surface area analysis and differential scanning calorimetry (DSC) and thermogravimetric analysis (TGA).
1
Graphene oxide (GO) was successfully synthesized from purified natural flake graphite (NFG) using a modified Hummers method with decreased NaNO3 and increased KMnO4.
2
Spectroscopic analyses (FTIR, Raman) confirmed introduction of oxygen-containing functional groups (C=O, C-H, COOH, C-O-C) into graphite layers after oxidation; structure and morphology characterized by XRD, SEM, HR-TEM, UV-vis, BET, DSC, and TGA.
3
The modification increased reaction yield compared to the traditional Hummers proportions while reducing toxic gas evolution.
4
The modified protocol used a 9:1 (by volume) H2SO4/H3PO4 mixture and introduced K2S2O8 to help maintain pH and reduce toxic gas evolution.
5
Thermal reduction of the synthesized GO produced reduced graphene oxide (rGO) using GO as the precursor.

Graphene oxide (GO) produced from purified natural flake graphite via a modified Hummers method and its thermally reduced product reduced graphene oxide (rGO)

Synthesis parameters and chemical/structural changes: effect of modified Hummers oxidation conditions (NaNO3 decrease, KMnO4 increase, H2SO4/H3PO4 9:1, addition of K2S2O8) on GO formation and composition (C/O ratio, oxygen-containing functional groups), and subsequent thermal reduction to obtain rGO characterized by XRD, SEM, HR-TEM, FTIR, UV–Vis, Raman, BET, DSC and TGA

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2017-01-01
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Syed Nasimul Alam
Nidhi Sharma
Lailesh Kumar
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