Graphene oxide synthesis using modified Tour method

石墨烯 材料科学 氧化物 介电谱 氧化石墨烯纸 拉曼光谱 电导率 石墨 氧化石墨 化学工程 分析化学(期刊) 纳米技术 电化学 复合材料 化学 电极 有机化学 冶金 物理化学 工程类 物理 光学
作者
Volodymyr Kotsyubynsky,Volodymyra Boychuk,І.М. Budzulyak,B.І. Rachiy,Myroslava Hodlevska,Andrii Kachmar,Mykola Hodlevsky
出处
期刊:Advances in Natural Sciences: Nanoscience and Nanotechnology [IOP Publishing]
卷期号:12 (3): 035006-035006 被引量:19
标识
DOI:10.1088/2043-6262/ac204f
摘要

Graphene oxide (GO) colloidal solution has been synthesised by the modified Tour method, in which the pH of the reaction medium has been increased to 2.0–2.2 at the final stage of graphite oxidation by adding NaOH solution. The solid-phase graphene oxide consists of multilayered graphene particles with a thickness of about 7.5 nm (9–10 layers of graphene) and an average size of about 7.7 nm. Reduced graphene oxide (rGO) has been prepared by hydrazine and microwave reduction. A comparative study of the structure, morphology, and electrical transport properties of rGO samples obtained by various methods has been carried out using XRD, SAXS, Raman spectroscopy, low-temperature nitrogen adsorption, and impedance spectroscopy. Structural analysis has shown the presence of two fractions of plate-like rGO particles for each reduction method, which consist of 4–6 layers of graphene in stacks and have a lateral size in the range of 7.1–7.6 nm. The BET specific surface area of the microwave-reduced rGO was higher than that of the chemically reduced one (296 and 237 m2 g−1 respectively). The frequency dependence (10−2–105 Hz) of the AC conductivity of the GO and rGO samples has been analysed in the temperature range of 25 °C–175 °C. For the GO sample, the proton exchange conductivity mechanism dominates. A Drude-like response of electrical conductivity at frequencies above 103 Hz with transition to Johnscher's law response at 175 °C has been observed for rGO samples obtained using both chemical and microwave routes. Changes in activation energies and relaxation times have been interpreted using a model of a thermally activated frequency-dependent electron hopping mechanism between randomly coupled conducting sp2 rGO packages separated by disordered sp3 rGO regions with correspondingly higher resistivity.
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