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用于超级电容器和二氧化碳捕获的源自煤的分级结构氮、氧共掺杂多孔碳/碳纳米管复合材料

Hierarchical structure N, O-co-doped porous carbon/carbon nanotube composite derived from coal for supercapacitors and CO capture.

作者信息

Hao Jian, Wang Xiu, Wang Yanxia, Lai Xiaoyong, Guo Qingjie, Zhao Jiupeng, Yang Yu, Li Yao

机构信息

State Key Laboratory of High-efficiency Utilization of Coal and Green Chemical Engineering, College of Chemistry & Chemical Engineering, Ningxia University Yinchuan 750021 China

School of Chemistry and Chemical Engineering, Harbin Institute of Technology Harbin 150001 China.

出版信息

Nanoscale Adv. 2020 Jan 11;2(2):878-887. doi: 10.1039/c9na00761j. eCollection 2020 Feb 18.

Abstract

The energy and environmental crises have forced us to search for a new green energy source and develop energy storage and environmental restoration technologies. Fabrication of carbon functional materials derived from coal has attracted increasing attention in the energy storage and gas adsorption fields. In this study, an N, O-co-doped porous carbon/carbon nanotube composite was prepared by functionalizing coal-based porous carbon with carbon nanotubes (CNTs) and ionic liquid annealing. The resulting material not only inherited the morphology of CNTs and porous carbon, but also developed a three dimensional (3D) hierarchical porous structure with numerous heteroatom groups. The N, O co-doped porous carbon/CNT composite (N, O-PC-CNTs) showed a surface area of 2164 m g, and a high level of N/O dopants (8.0 and 3.0 at%, respectively). Benefiting from such merits, N, O-PC-CNTs exhibited a rather high specific capacitance of 287 F g at a current density of 0.2 A g and a high rate capability (70% and 64% capacitance retention at 10 and 50 A g, respectively) in a three electrode system. Furthermore, an N, O-PC-CNT symmetrical supercapacitor showed a high cycling stability with 95% capacitance retention after 20 000 cycles at 20 A g and an energy density of 4.5 W h kg at a power density of 12.5 kW kg in 6 mol L KOH electrolyte. As a CO adsorbent, N, O-PC-CNTs exhibited a high CO uptake of 5.7 and 3.7 mmol g at 1 bar at 273 and 298 K, respectively. Moreover, N, O-PC-CNTs showed cycling stability with 94% retention of the initial CO adsorption capacity at 298 K over 10 cycles. This report introduces a strategy to design a coal based porous carbon composite for use in efficient supercapacitor electrodes and CO adsorbents.

摘要

能源和环境危机迫使我们寻找新的绿色能源,并开发储能和环境修复技术。由煤制备碳功能材料在储能和气体吸附领域受到越来越多的关注。在本研究中,通过用碳纳米管(CNTs)对煤基多孔碳进行功能化处理和离子液体退火,制备了N、O共掺杂的多孔碳/碳纳米管复合材料。所得材料不仅继承了碳纳米管和多孔碳的形态,还形成了具有大量杂原子基团的三维(3D)分级多孔结构。N、O共掺杂的多孔碳/碳纳米管复合材料(N、O-PC-CNTs)的表面积为2164 m²/g,且N/O掺杂剂含量较高(分别为8.0和3.0 at%)。得益于这些优点,N、O-PC-CNTs在三电极体系中,在电流密度为0.2 A/g时表现出相当高的比电容287 F/g,以及高倍率性能(在10和50 A/g时电容保持率分别为70%和64%)。此外,N、O-PC-CNT对称超级电容器在20 A/g下经过20000次循环后表现出高循环稳定性,电容保持率为95%,在6 mol/L KOH电解液中,在功率密度为12.5 kW/kg时能量密度为4.

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/498a/9416891/1a117065a017/c9na00761j-f1.jpg

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