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Graphene functionalized bio-carbon xerogel for achieving high-rate and high-stability supercapacitors

机译:石墨烯官能化生物碳Xerogel用于实现高速率和高稳定超级电容器

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摘要

Biomass carbons have attracted considerable attention in the pursuit of cheap and renewable electrode materials. However, a low-energy route (like hydrothermal carbonization) is still a challenge for achieving bio-carbon electrodes with high-performance. Herein, a high-rate and high stability supercapacitor was fabricated based on graphene functionalized bio-carbon xerogel. The supercapacitor shows comparable or even higher performance than reported supercapacitors derived from bio-carbons and graphene-based materials, which can be attributed to sandwich-like porous structure that carbon spheres interspersed between porous graphene nanoplatelets. It demonstrates a superior specific capacitance of 139?F?g?1?at a superhigh current of 100?A?g?1in an aqueous electrolyte, maintaining 73.5% of that at 1?A?g?1(189?F?g?1). More importantly, the device retains 100% of initial specific capacitance, energy density and power density after 10000 cycles at 5?A?g?1. This work paves the way to develop renewable supercapacitors based on low-cost biomass resources and low-energy fabrication.
机译:生物质碳碳在追求便宜和可再生电极材料方面引起了相当大的关注。然而,低能量途径(如水热碳化)仍然是实现具有高性能的生物碳电极的挑战。本文基于石墨烯官能化生物碳Xerogel制造了高速率和高稳定性超级电容器。超级电容器显示出与来自生物碳和石墨烯的材料的超级电容器相当或甚至更高的性能,这可以归因于夹层状多孔结构,碳球在多孔石墨烯纳米片之间散布。它展示了139°F 2的优异比电容为139?1?在100℃的超高流电流为100?1英寸的水电解质,保持73.5%在1?a?g?1(189.≤f?g ?1)。更重要的是,该装置在5°循环后保留100%的初始特定电容,能量密度和功率密度在5?a?g?1。这项工作铺设了基于低成本生物量资源和低能量制造的可再生超级电容器的方式。

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