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A bio-derived sheet-like porous carbon with thin-layer pore walls for ultrahigh-power supercapacitors

机译:一种生物衍生的片状多孔碳,具有用于超高功率超级电容器的薄层孔壁

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摘要

Biomass-derived porous carbon materials have attracted considerable attention due to their abundance, low-cost, and rapid regeneration. Here, we report a sheet-like porous carbon prepared by the carbonization and activation of walnut shells for use in high power supercapacitors (SCs), whose pore walls consist of 1-2 carbon layers. This walnut shell based activated carbon (ACWS) has a high specific surface area (SSA) of up to 3577 m(2) g(-1) as well as a much better electrical conductivity (720 S m(-1)) than a typical commercial activated carbon (YP-80F, 93 S m(-1)). As a SC electrode material, the ACWS delivers an ultrahigh capacitance of 330 F g(-1) at a current density of 0.1 A g(-1) and a high capacitance retention of 81% with the current densities increasing from 0.5 to 100 A g(-1) in 6 M KOH, which is far higher than that of YP-80F. This can be attributed to optimum tortuosity for ion transport that is derived from its 2D pore structure. More promising, fully packaged devices based on ACWS achieve ultrahigh power and energy densities of 100 kW kg(-1) and 120 Wh kg(-1) respectively, in an ionic liquid electrolyte. Overall, this method is easily scalable and simple to prepare a biomass-based carbon with a tunable pore structure for ultrahigh-power SCs. We believe that the result reported here is suggestive of promoting the development of electrode materials for industrial SCs and opening new ways to produce high value-added products from abundant bio-waste.
机译:由于其丰富,低成本和快速再生,生物质衍生的多孔碳材料引起了相当大的关注。这里,我们报告了通过碳化和活化的薄片多孔碳,用于高功率超级电容器(SCS),其孔壁由1-2碳层组成。该核桃外壳的活性炭(ACWS)具有高达3577米(2)G(-1)的高比表面积(SSA),以及更好的导电性(720 s m(-1))典型的商业活性炭(yp-80f,93 s m(-1))。作为SC电极材料,ACW在电流密度为0.1Ag(-1)的电流密度,并且高电容保持81%的高电容保持从0.5到100 a增加G(-1)在6米KOH中,远高于YP-80F。这可以归因于离子传输的最佳曲折性,其源自其2D孔结构。更有希望,基于ACWS的完全包装的设备,在离子液体电解质中,基于ACWS的超高功率和能量密度分别在100kW kg(-1)和120phkg(-1)中。总的来说,这种方法很容易缩放,简单地制备生物质基碳,具有可调谐孔结构,用于超高功率SC。我们认为,这里报告的结果旨在促进工业SCS的电极材料的发展,并开设新的方法,从丰富的生物废物中生产高附加值产品。

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