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High-energy plasma activation of renewable carbon for enhanced capacitive performance of supercapacitor electrode

机译:可再生碳的高能等离子体激活,提高超级电容器电极的电容性能

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High cost and environmentally unfavourable considerations are the major obstacles that prohibit renewable energy storage from many applications. To solve these issues, novel renewable materials such as biomass-derived carbon that have low cost, ecofriendly, and deliver high-energy storage performance should be employed. In this work, renewable carbon YP-50, biochar synthesized from coconut, was activated using different plasma gases including methane (CH4), carbon dioxide (CO2), hydrogen (H-2), and argon (Ar). Compared with the conventional activation method, plasma treatment takes less time and effort. A significant increase in the specific surface area (SSA) and improvement in the specific capacitance (SC) were found with different plasma treatments. Specifically, the CH4 plasma-treated YP-50 exhibited the highest SC of 181.6 F g(-1) at 0.05 A g(-)(1) compared with other gases. In addition, the highest energy density of 25.3 Wh kg(-1) was obtained at the specific power of 0.12 kW kg(-1) for CH4 treated biochar. This enhancement of charge storage capacity is highly associated with the distribution of a variety of pore sizes and a large surface area. Furthermore, the charge transfer resistance reduced from 21.7 Omega to 1.4 Omega after CH4 treatment, and high capacitance retention was achieved due to its excellent electrochemical stability and good performance. Hence, this high-energy plasma treatment with a short time opens p a new opportunity for the efficient activation of carbon materials of supercapacitors with high electro-chemical performances. (C) 2020 Elsevier Ltd. All rights reserved.
机译:高成本和环境不利的考虑是禁止许多应用中可再生能源存储的主要障碍。为了解决这些问题,应采用新的可再生材料,如生物量衍生的碳,具有低成本,Ecofriendly,以及提供高能存储性能。在该工作中,使用包括甲烷(CH 4),二氧化碳(CO2),氢气(H-2)和氩气(AR)的不同等离子体气体激活来自椰子的可再生碳YP-50,从椰子中合成的生物炭。与传统的活化方法相比,等离子体治疗需要更少的时间和精力。在不同的等离子体处理中发现了比表面积(SSA)的显着增加和特定电容(SC)的改善。具体地,与其他气体相比,CH 4等离子体处理的YP-50在0.05Ag( - )(1)时显示出181.6fg(-1)的最高SC。另外,在0.12kW kg(-1)的特定功率下,获得最高能量密度为25.3WHkg(-1),用于CH4处理的生物炭。这种电荷存储容量的增强与各种孔径的分布和大表面积高度相关。此外,在CH4处理后,电荷转移阻力从21.7ωω降低至1.4ω,并且由于其优异的电化学稳定性和良好的性能而实现了高电容滞留。因此,这种高能量等离子体处理具有短时间的高能量等离子体处理P一个新的机会,用于高电化学性能的超级电容器的碳材料的有效激活。 (c)2020 elestvier有限公司保留所有权利。

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