Hierarchical micro-/mesoporous N- and O-enriched carbon derived from disposable cashmere: a competitive cost-effective material for high-performance electrochemical capacitorsElectronic supplementary information (ESI) available: Contact angle of the product, electrochemical performance of the samples. See DOI: 10.1039/c4gc02032d

To obtain advanced carbon materials for next-generation electrochemical capacitors (ECs), it is critical to understand the synergetic effect of versatile carbon surface functionalities and the specific pore structure on their electrochemical performance. Herein, we developed a facile yet scalable fa...

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Bibliographic Details
Main Authors Zhou, Lu, Cao, Hui, Zhu, Siqi, Hou, Linrui, Yuan, Changzhou
Format Journal Article
LanguageEnglish
Published 07.04.2015
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Summary:To obtain advanced carbon materials for next-generation electrochemical capacitors (ECs), it is critical to understand the synergetic effect of versatile carbon surface functionalities and the specific pore structure on their electrochemical performance. Herein, we developed a facile yet scalable fabrication of N- and O-enriched carbon with nanoscale to mesoscale porous structures from the disposable cashmere. The hierarchical cashmere-derived micro-/mesoporous carbon (CDMMC) was endowed with a desirable specific surface area (SSA, 1358 m 2 g −1 ), hierarchical porosity with high microporosity of ∼45.5%, and high content of heteroatom functionalities (∼4 at% N and ∼15.5 at% O). Even better electrochemical capacitance of the resulting CDMMC was obtained in 1 M H 2 SO 4 , benefiting from the hierarchical micro-/mesoporosity, large effective SSA and remarkable heteroatom (N, O) doping effects, that is, the smart combination of double layer and Faradaic contributions, compared to that in KOH. Furthermore, larger energy density (∼17.9 Wh kg −1 ) of the CDMMC-based symmetric device was obtained with organic electrolytes, compared to those with aqueous electrolytes. Hierarchical cashmere-derived micro-/mesoporous carbon, as a competitive cost-effective material for advanced electrochemical capacitors, delivered excellent electrochemical capacitance at high rates.
Bibliography:10.1039/c4gc02032d
Electronic supplementary information (ESI) available: Contact angle of the product, electrochemical performance of the samples. See DOI
ISSN:1463-9262
1463-9270
DOI:10.1039/c4gc02032d