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通过双重热活化调节氧化石墨烯的分级孔结构用于高性能超级电容器。

Tuning the hierarchical pore structure of graphene oxide through dual thermal activation for high-performance supercapacitor.

作者信息

Kim Jeongpil, Eum Jeong-Hyun, Kang Junhyeok, Kwon Ohchan, Kim Hansung, Kim Dae Woo

机构信息

Department of Chemical and Biomolecular Engineering, Yonsei University, Yonsei-ro 50, Seodaemun-gu, Seoul, 120-749, Republic of Korea.

出版信息

Sci Rep. 2021 Jan 22;11(1):2063. doi: 10.1038/s41598-021-81759-7.

Abstract

Herein, we introduce a simple method to prepare hierarchical graphene with a tunable pore structure by activating graphene oxide (GO) with a two-step thermal annealing process. First, GO was treated at 600 °C by rapid thermal annealing in air, followed by subsequent thermal annealing in N. The prepared graphene powder comprised abundant slit nanopores and micropores, showing a large specific surface area of 653.2 m/g with a microporous surface area of 367.2 m/g under optimized conditions. The pore structure was easily tunable by controlling the oxidation degree of GO and by the second annealing process. When the graphene powder was used as the supercapacitor electrode, a specific capacitance of 372.1 F/g was achieved at 0.5 A/g in 1 M HSO electrolyte, which is a significantly enhanced value compared to that obtained using activated carbon and commercial reduced GO. The performance of the supercapacitor was highly stable, showing 103.8% retention of specific capacitance after 10,000 cycles at 10 A/g. The influence of pore structure on the supercapacitor performance was systematically investigated by varying the ratio of micro- and external surface areas of graphene.

摘要

在此,我们介绍一种通过两步热退火工艺活化氧化石墨烯(GO)来制备具有可调孔结构的分级石墨烯的简单方法。首先,将GO在空气中通过快速热退火在600°C下处理,随后在氮气中进行热退火。制备的石墨烯粉末包含大量的狭缝纳米孔和微孔,在优化条件下显示出653.2 m²/g的大比表面积,其中微孔表面积为367.2 m²/g。通过控制GO的氧化程度和第二次退火过程,孔结构易于调节。当将石墨烯粉末用作超级电容器电极时,在1 M H₂SO₄电解质中,在0.5 A/g的电流密度下实现了372.1 F/g的比电容,与使用活性炭和商业还原氧化石墨烯相比,这是一个显著提高的值。超级电容器的性能高度稳定,在10 A/g的电流密度下进行10000次循环后,比电容保持率为103.8%。通过改变石墨烯的微孔和外表面积比例,系统地研究了孔结构对超级电容器性能的影响。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/90f5/7822934/bfaf9525ba94/41598_2021_81759_Fig1_HTML.jpg

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