...
首页> 外文期刊>Nanoscale >GO-induced assembly of gelatin toward stacked layer-like porous carbon for advanced supercapacitors
【24h】

GO-induced assembly of gelatin toward stacked layer-like porous carbon for advanced supercapacitors

机译:明胶对堆放的GO-induced装配先进的多孔碳层超级电容器

获取原文
获取原文并翻译 | 示例

摘要

Layer-like nanocarbons with high surface area and good conductivity are promising materials for super-capacitors due to their good ability for effective charge-transfer and mass-transfer. In this paper, stacked layer-like porous carbon containing RGO (reduced graphene oxides) (LPCG) was constructed via the GO-induced assembly of gelatin followed by carbonization and activation processes. Under suitable conditions, LPCG-based materials with a thickness of about 100 nm and a high specific surface area (up to 1476 m(2) g(-1)) could be obtained. In the materials, the closed combination of RGO and porous carbon can be observed, which is favourable for the development of the synergistic effects of both components. The presence of GO can not only enhance the conductivity of LPCG-based materials, but also is essential for the formation of a thin carbon sheet with a stacked structure. Otherwise, the plate-like, non-stacked carbon with a thickness of about 500 nm could be formed in the absence of RGO. The porous structure along with the presence of RGO allows rapid charge-transfer and easy access and diffusion of electrolyte ions. As a result, the materials exhibited a high discharge specific capacitance (455 F g-1 at 0.5 A g-1, 366 F g(-1) at 1 A g(-1)), good rate capability (221 F g(-1) at density 30 A g(-1)) and good cycling stability. In aqueous electrolytes, the energy density could be up to 9.32 W h kg(-1) at a relatively low power density of 500 W kg(-1) with a good cycling stability (> 96% over 5000 cycles). It was found that (1) the rational combination of RGO and porous carbon is essential for enhancing the capacitance performance and improving the cycling stability and (2) the high conductivity is favorable for improving the rate performance of the materials. The LPCG-based materials have extensive potential for practical applications in energy storage and conversion devices.
机译:层和高表面积和nanocarbons良好的导电率是很有前途的材料超级电容器由于其良好的能力有效的电荷转移和传质。本文堆叠层多孔碳包含RGO(降低石墨烯氧化物)(LPCG)建立了通过GO-induced组装的明胶碳化和活化紧随其后流程。材料厚度约100海里高的比表面积(最高可达1476 m (2)能获得g(1))。RGO和多孔碳可以关闭被观察到,这是有利的发展双方的协同效应组件。加强LPCG-based材料的导电性,还对薄的形成至关重要碳板堆叠结构。状,non-stacked碳了厚度约500海里可以形成的缺乏RGO。RGO允许快速的电荷转移的存在和容易访问和电解液的扩散离子。放电比电容(455 F (g - 1为0.5级g1, 366 F (g (1) 1 g(1)),良好率能力(221 F g(1)密度30 g (1))和良好的循环稳定性。电解质,能量密度9.32 W h公斤(1)在一个相对较低的功率密度500 W公斤(1)有一个很好的循环稳定性(>96% 5000周期)。RGO,多孔碳的合理组合对于提高电容性能和提高循环稳定性和(2)的高导电性是有利的改善材料的性能。LPCG-based材料有广泛的潜力在能源储存和实际应用转换设备。

著录项

相似文献

  • 外文文献
  • 中文文献
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号