Aqueous Colloidal Stability of Graphene Oxide and Chemically Converted Graphene

S. Kashyap, Shashank Mishra, S. Behera
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引用次数: 85

Abstract

Graphene oxide (GO) was prepared by modified Hummer’s method, and chemically converted graphene (CCG) was prepared by further reduction of the aqueous GO colloid. The effect of pH on particle size, particle charge, and light absorption of the aqueous colloids of GO and CCG was studied with titration against HCl or NaOH, to find the ideal characteristics for a stable dispersion. The GO colloid was stable in the pH range of 4–11, whereas the CCG colloid gained stability at a relatively narrower pH range of 7–10. Poor stability of the colloids was observed for both GO and CCG colloids at both extremes of the pH scale. Both of the colloids exhibited average size of ~1 micron in the low pH range, whereas for higher pH the size ranged between 300 and 500 nm. The UV-Vis spectra showed absorption peak at 230 nm for GO colloids that shifted to 260 nm for the CCG colloid. Such shift can be ascribed to restoring of electronic conjugation of the C=C bonds in CCG.
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氧化石墨烯和化学转化石墨烯的水性胶体稳定性
采用改进的Hummer方法制备氧化石墨烯(GO),通过进一步还原水相氧化石墨烯胶体制备化学转化石墨烯(CCG)。通过对HCl或NaOH的滴定,研究了pH对氧化石墨烯和CCG水性胶体粒径、粒子电荷和光吸收的影响,以找到稳定分散的理想特性。氧化石墨烯胶体在pH值4-11范围内稳定,而CCG胶体在相对较窄的pH值7-10范围内稳定。在两个极端的pH尺度下,氧化石墨烯和CCG胶体的稳定性都很差。在低pH范围内,两种胶体的平均粒径均为~1微米,而在高pH范围内,胶体的粒径在300 ~ 500 nm之间。紫外可见光谱显示氧化石墨烯胶体的吸收峰位于230 nm处,CCG胶体的吸收峰移至260 nm处。这种转变可以归因于CCG中C=C键的电子共轭的恢复。
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