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A layered-nanospace-confinement strategy for the synthesis of two-dimensional porous carbon nanosheets for high-rate performance supercapacitors

  • Xiaoming Fan
  • , Chang Yu
  • , Juan Yang
  • , Zheng Ling
  • , Chao Hu
  • , Mengdi Zhang
  • , Jieshan Qiu
  • Dalian University of Technology

科研成果: 期刊稿件文章同行评审

410 引用 (Scopus)

摘要

A general approach is developed for the synthesis of 2D porous carbon nanosheets (PCNS) from bio-sources derived carbon precursors (gelatin) by an integrated procedure of intercalation, pyrolysis, and activation. Montmorillonite with layered nanospace is used as a nanotemplate or nanoreactor to confine and modulate the transformation of gelatin, further leading to the formation of 2D nanosheet-shaped carbon materials. The as-made 2D PCNS exhibits a significantly improved rate performance, with a high specific capacitance of 246 F g-1 and capacitance retention of 82% at 100 A g-1, being nearly twice that of microsized activated carbon particulates directly from gelatin (131 F g-1, 44%). The shortened ion transport distance in the nanoscaled dimension and modulated porous structure is responsible for such an enhanced superior rate capability. More importantly, the present strategy can be extended to other bio-sources to create 2D PCNS as electrode materials with high-rate performance. This will also provide a potential strategy for configuring 2D nanostructured carbon electrode materials with a short ion transport distance for supercapacitors and other carbon-related energy storage and conversion devices. 2D porous carbon nanosheets are generally fabricated using a combined process including layered-nanospace-confined pyrolysis of bio-sources and KOH activation. The unique 2D structure helps to enhance the rate capability for supercapacitors with a capacitance retention of about 80% at a high current density of 100 A g-1; this is twice that of the activated carbon particulates from bio-sources.

源语言英语
期刊论文编号1401761
期刊Advanced Energy Materials
5
7
DOI
出版状态已出版 - 1 4月 2015
已对外发布

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