Electrolyte Engineering for the Mass Exfoliation of Graphene Oxide Across Wide Oxidation Degrees

Abstract

Oxygen-containing functional groups play crucial roles in graphene oxide due to their enhanced processability, stability, and functionalization. However, achieving precise control over the oxidation degrees of graphene oxide through a straightforward and effective method remains a significant challenge. Herein, we report a two-step electrochemical approach encompassing pre-intercalation and post-exfoliation/oxidation, enabling the mass exfoliation of graphene oxide with customizable oxidation levels. Initially, the pre-intercalation of concentrated sulfuric acid into graphite foil promotes uniform expansion, transforming it into a quasi-monolayer graphene structure. Subsequently, post-exfoliation in reductive/oxidative electrolytes triggers the simultaneous detachment and oxidation process, resulting in well-dispersed graphene nanosheets with quantified oxidation levels within minute timescale. Comprehensive characterizations confirm the varied oxidation levels of the exfoliated graphene oxide, spanning conventional oxidation degrees sourcing from Staudenmaier’s, Hofmann’s, and Hummers’ methods. Furthermore, we evaluate the scalability of this method and the solution processability of exfoliated graphene nanosheets, demonstrating the continuous production of graphene oxide at kilogram scales and the fabrication of meter-length nanocomposite films with exceptional mechanical properties.

Supplementary files

Article information

Article type
Paper
Submitted
17 Apr 2024
Accepted
26 Jul 2024
First published
27 Jul 2024

J. Mater. Chem. A, 2024, Accepted Manuscript

Electrolyte Engineering for the Mass Exfoliation of Graphene Oxide Across Wide Oxidation Degrees

H. Ren, X. Xia, Y. Sun, Y. Zhai, Z. Zhang, J. Wu, J. Li and M. Liu, J. Mater. Chem. A, 2024, Accepted Manuscript , DOI: 10.1039/D4TA02654C

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