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首页> 外文期刊>Journal of Nanostructure in Chemistry >Fungus bran-derived nanoporous carbon with layered structure and rime-like support for enhanced symmetric supercapacitors
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Fungus bran-derived nanoporous carbon with layered structure and rime-like support for enhanced symmetric supercapacitors

机译:真菌Bran衍生的纳米多孔碳,具有层叠结构和峰值载体,用于增强的对称超级电容器

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摘要

Integrating and utilizing natural resources rationally is an important strategy for sustainable development. Herein, a novel nanoporous carbon material with rime scenery-like support was firstly established, in which waste biomass fungus bran was skillfully selected as the layered structure carbon skeletons for loading carboxymethyl cellulose derived carbon particles. The dual biomass-derived carbon with the aid of activating by KMnO_(4)has a unique structure and favorable electrical conductivity. The resulting sample also has a high micropore ratio, which is optimum for the formation of double layer in aqueous electrolyte. Profiting from hierarchical nanopore structure and nitrogen self-doping, the optimized carbon electrode exhibited excellent specific capacitance of 407 F g~(?1)at 0.5 A g~(?1), remarkable rate characteristic, and superior cycling performance (96.9% remained after 5000 cycles). More importantly, the assembled symmetric supercapacitor exhibited a high energy density of 11.4 Wh kg~(?1)and outstanding electrochemical performance in aqueous electrolyte, which benefited from well-connected networks and multipath channels. This research realizes the utilization of waste biomass in carbon-based electrodes and offers the basis of preparation method for the next generation of sustainable energy storage devices. Graphic abstract The fabricated rime scenery-like nanoporous carbon materials exhibit ultra-high specific capacitance and the symmetric supercapacitor possesses a high energy density and power density.
机译:合理整合和利用自然资源是可持续发展的重要战略。这里,首先建立了一种新的纳米多孔碳材料,其具有铃声状载体,其中巧妙地选择废物生物质真菌麸皮作为用于装载羧甲基纤维素衍生的碳颗粒的层状结构碳骨架。双生物质衍生的碳借助于通过KMNO_(4)的激活具有独特的结构和良好的导电性。所得样品还具有高微孔比,其在水性电解质中形成双层的最佳选择。从等级纳米孔结构和氮自掺杂的利用,优化的碳电极在0.5Ag〜(α1),显着的速率特征和优异的循环性能下表现出优异的407 f g〜(Δ1)的优异特定电容(96.9% 5000次循环)。更重要的是,组装的对称超级电容器表现出11.4WH kg〜(α1)的高能量密度和水性电解质中出色的电化学性能,其受益于连接良好的网络和多径通道。该研究实现了在碳基电极中利用废物生物量,为下一代可持续能量存储装置提供了制备方法的基础。图形摘要制造的铃声风景如纳米孔碳材料表现出超高比电容,对称超级电容器具有高能量密度和功率密度。

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