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通过纳米孔工程强化竹废料衍生碳的赝电容,用作锂离子电池的正极

Intensification of Pseudocapacitance by Nanopore Engineering on Waste-Bamboo-Derived Carbon as a Positive Electrode for Lithium-Ion Batteries.

作者信息

Hyun Jong Chan, Kwak Jin Hwan, Lee Min Eui, Choi Jaewon, Kim Jinsoo, Kim Seung-Soo, Yun Young Soo

机构信息

Department of Chemical Engineering, Kangwon National University, Samcheok 25913, Korea.

Institute of Advanced Composite Materials, Korea Institute of Science and Technology (KIST), Jeonbuk 55324, Korea.

出版信息

Materials (Basel). 2019 Aug 26;12(17):2733. doi: 10.3390/ma12172733.

Abstract

Nanoporous carbon, including redox-active functional groups, can be a promising active electrode material (AEM) as a positive electrode for lithium-ion batteries owing to its high electrochemical performance originating from the host-free surface-driven charge storage process. This study examined the effects of the nanopore size on the pseudocapacitance of the nanoporous carbon materials using nanopore-engineered carbon-based AEMs (NE-C-AEMs). The pseudocapacitance of NE-C-AEMs was intensified, when the pore diameter was ≥2 nm in a voltage range of 1.0~4.8 V vs Li/Li under the conventional carbonate-based electrolyte system, showing a high specific capacity of ~485 mA·h·g. In addition, the NE-C-AEMs exhibited high rate capabilities at current ranges from 0.2 to 4.0 A·g as well as stable cycling behavior for more than 300 cycles. The high electrochemical performance of NE-C-AEMs was demonstrated by full-cell tests with a graphite nanosheet anode, where a high specific energy and power of ~345 Wh·kg and ~6100 W·Kg, respectively, were achieved.

摘要

包含氧化还原活性官能团的纳米多孔碳,由于其源于无主体表面驱动电荷存储过程的高电化学性能,有望成为锂离子电池正极的活性电极材料(AEM)。本研究使用纳米孔工程化碳基AEM(NE-C-AEM)研究了纳米孔尺寸对纳米多孔碳材料赝电容的影响。在传统碳酸盐基电解质体系下,相对于Li/Li,当孔径≥2 nm时,在1.04.8 V的电压范围内,NE-C-AEM的赝电容增强,显示出约485 mA·h·g的高比容量。此外,NE-C-AEM在0.2至4.0 A·g的电流范围内表现出高倍率性能,以及超过300次循环的稳定循环行为。通过与石墨纳米片负极进行全电池测试,证明了NE-C-AEM的高电化学性能,分别实现了约345 Wh·kg和6100 W·Kg的高比能量和功率。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/3f6a/6747836/f344be41e297/materials-12-02733-g001.jpg

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