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首页> 外文期刊>RSC Advances >A new strategy to tailor the structure of sustainable 3D hierarchical porous N-self-doped carbons from renewable biomass for high-performance supercapacitors and CO2 capture
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A new strategy to tailor the structure of sustainable 3D hierarchical porous N-self-doped carbons from renewable biomass for high-performance supercapacitors and CO2 capture

机译:用于量身定制可持续3D层次多孔N自掺杂碳的新策略,从可再生生物质进行高性能超级电容器和CO2捕获

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Hierarchical porous N-doped carbons show great potential applications in energy storage and CO _(2) capture. Renewable biomass chitosan, which is abundant and simultaneously contains large amounts of N and C, is an ideal alternative to fossil resources for sustainable and scale-up production of cost-effective N-self-doped carbons. In this work, we employed a new and effective strategy to obtain 3D hierarchical porous N-self-doped carbons from chitosan. The hierarchical porous structure of the N-self-doped carbons could be easily tailored to obtain nanorod interconnected and fiber-wall interconnected architectures without using any porogen, catalyst or activator. The nanorod interconnected porous carbon displayed a high specific surface area of 1408 m ~(2) g ~(?1) while the fiber-wall interconnected porous carbon exhibited an excellent specific capacitance of 261 F g ~(?1) (0.5 A g ~(?1) ) due to the desirable hierarchical framework. In addition, these hierarchical porous carbons had a good CO _(2) capture performance (3.07–3.44 mmol g ~(?1) at 25 °C). This unique method is supposed to be a new strategy to create novel 3D hierarchical porous carbons for promising applications in supercapacitors, lithium ion batteries, fuel cells and sorbents.
机译:等级多孔N掺杂的碳是储能和CO_(2)捕获中的巨大潜在应用。可再生生物量壳聚糖,其丰富且同时含有大量的N和C,是对可持续和扩大生产成本效益的N自掺杂碳的化石资源的理想替代品。在这项工作中,我们采用了一种新的有效的策略来获得来自壳聚糖的3D层次多孔N自掺杂碳。在不使用任何致孔剂,催化剂或活化剂的情况下,可以容易地定制N自掺杂碳的分层多孔结构以获得纳米棒互连和纤维壁互连的架构。纳米棒互连的多孔碳显示出高比表面积为1408m〜(2)g〜(α1),而纤维壁互连的多孔碳碳表现出261f g〜(α1)的优异比电容(0.5 a g 〜(?1))由于所需的分层框架。此外,这些等级多孔碳的良好CO _(2)捕获性能(25°C时3.07-3.44mmol g〜(α1))。这种独特的方法应该是创建新型3D层次多孔碳的新策略,用于在超级电容器,锂离子电池,燃料电池和吸附剂中有前途的应用。

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