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通过高功率超声处理高产率制备纳米横向尺寸的氧化石墨烯

High-Yield Production of Nano-Lateral Size Graphene Oxide by High-Power Ultrasonication.

作者信息

Timochenco Licínia, Costa-Almeida Raquel, Bogas Diana, Silva Filipa A L S, Silva Joana, Pereira André, Magalhães Fernão D, Pinto Artur M

机构信息

LEPABE, Faculdade de Engenharia, Universidade do Porto, 4200-180 Porto, Portugal.

i3S-Instituto de Investigação e Inovação em Saúde, Universidade do Porto, 4200-180 Porto, Portugal.

出版信息

Materials (Basel). 2021 Apr 12;14(8):1916. doi: 10.3390/ma14081916.

Abstract

Nanographene oxide (GOn) constitutes a nanomaterial of high value in the biomedical field. However, large scale production of highly stable aqueous dispersions of GOn is yet to be achieved. In this work, we explored high-power ultrasonication as a method to reduce particle size of GO and characterized the impact of the process on the physicochemical properties of the material. GOn was obtained with lateral dimensions of 99 ± 43 nm and surface charge of -39.9 ± 2.2 mV. High-power ultrasonication enabled an improvement of stability features, particularly by resulting in a decrease of the average particle size, as well as zeta potential, in comparison to GO obtained by low-power exfoliation and centrifugation (287 ± 139 nm; -29.7 ± 1.2 mV). Remarkably, GOn aqueous dispersions were stable for up to 6 months of shelf-time, with a global process yield of 74%. This novel method enabled the production of large volumes of highly concentrated (7.5 mg mL) GOn aqueous dispersions. Chemical characterization of GOn allowed the identification of characteristic oxygen functional groups, supporting high-power ultrasonication as a fast, efficient, and productive process for reducing GO lateral size, while maintaining the material's chemical features.

摘要

纳米氧化石墨烯(GOn)是生物医学领域中一种具有高价值的纳米材料。然而,大规模制备高度稳定的GOn水分散体尚未实现。在这项工作中,我们探索了高功率超声处理作为一种减小氧化石墨烯(GO)粒径的方法,并表征了该过程对材料物理化学性质的影响。所获得的GOn横向尺寸为99±43 nm,表面电荷为 -39.9±2.2 mV。与通过低功率剥离和离心获得的GO(287±139 nm;-29.7±1.2 mV)相比,高功率超声处理提高了稳定性,特别是导致平均粒径和zeta电位降低。值得注意的是,GOn水分散体在长达6个月的储存期内保持稳定,整体产率为74%。这种新方法能够制备大量高浓度(7.5 mg/mL)的GOn水分散体。GOn的化学表征确定了特征性的氧官能团,支持高功率超声处理是一种快速、高效且高产的减小GO横向尺寸的过程,同时保持了材料的化学特性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/8c68/8069895/fa28b4f6c0bc/materials-14-01916-g001.jpg

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