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通过改进的Hummer法简便合成氧化石墨烯作为锂、钠和钾离子二次电池的负极材料。

Facile synthesis of reduced graphene oxide by modified Hummer's method as anode material for Li-, Na- and K-ion secondary batteries.

作者信息

Jo Jeonggeun, Lee Seulgi, Gim Jihyeon, Song Jinju, Kim Sungjin, Mathew Vinod, Alfaruqi Muhammad Hilmy, Kim Seokhun, Lim Jinsub, Kim Jaekook

机构信息

Department of Materials Science and Engineering, Chonnam National University, 300 Yongbong-dong, Bukgu, Gwangju 61186, Republic of Korea.

Korea Institute of Industrial Technology (KITECH), Buk-gu, Gwangju 61012, South Korea.

出版信息

R Soc Open Sci. 2019 Apr 24;6(4):181978. doi: 10.1098/rsos.181978. eCollection 2019 Apr.

Abstract

Reduced graphene oxide (rGO) sheets were synthesized by a modified Hummer's method without additional reducing procedures, such as chemical and thermal treatment, by appropriate drying of graphite oxide under ambient atmosphere. The use of a moderate drying temperature (250°C) led to mesoporous characteristics with enhanced electrochemical activity, as confirmed by electron microscopy and N adsorption studies. The dimensions of the sheets ranged from nanometres to micrometres and these sheets were entangled with each other. These morphological features of rGO tend to facilitate the movement of guest ions larger than Li. Impressive electrochemical properties were achieved with the rGO electrodes using various charge-transfer ions, such as Li, Na and K, along with high porosity. Notably, the feasibility of this system as the carbonaceous anode material for sodium battery systems is demonstrated. Furthermore, the results also suggest that the high-rate capability of the present rGO electrode can pave the way for improving the full cell characteristics, especially for preventing the potential drop in sodium-ion batteries and potassium-ion batteries, which are expected to replace the lithium-ion battery system.

摘要

通过改良的Hummer法合成了还原氧化石墨烯(rGO)片材,在环境气氛下对氧化石墨进行适当干燥,无需额外的还原步骤,如化学和热处理。通过电子显微镜和氮吸附研究证实,使用适度的干燥温度(250°C)可产生具有增强电化学活性的介孔特性。这些片材的尺寸范围从纳米到微米,并且相互缠结。rGO的这些形态特征有助于大于Li的客体离子的移动。使用各种电荷转移离子(如Li、Na和K)以及高孔隙率的rGO电极实现了令人印象深刻的电化学性能。值得注意的是,证明了该系统作为钠电池系统碳质负极材料的可行性。此外,结果还表明,当前rGO电极的高倍率性能可为改善全电池性能铺平道路,特别是对于防止钠离子电池和钾离子电池中预期会取代锂离子电池系统的电位下降。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/b772/6502357/fbb56764fbe7/rsos181978-g1.jpg

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