Interconnected Carbon nanosheets derived from hemp for ultrafast supercapacitors with high energy

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dc.contributor.author King’ondu, Cecil K.
dc.contributor.author Wang, Huanlei
dc.contributor.author Xu, Zhanwei
dc.contributor.author Kohandehghan, Alireza
dc.contributor.author Li, Zhi
dc.contributor.author Cui, Kai
dc.contributor.author Tan, Xuehai
dc.contributor.author Stephenson, Tyler J.
dc.contributor.author Holt, Chris M. B.
dc.contributor.author Olsen, Brian C.
dc.contributor.author Tak, Jin K.
dc.contributor.author Harfield, Don
dc.contributor.author Anyia, Anthony O.
dc.contributor.author Mitlin, David
dc.date.accessioned 2015-04-14T07:38:19Z
dc.date.available 2015-04-14T07:38:19Z
dc.date.issued 2013
dc.identifier.citation ACS Nano, 2013, 7 (6), pp 5131–5141 en_US
dc.identifier.uri http://pubs.acs.org/doi/abs/10.1021/nn400731g
dc.identifier.uri http://repository.seku.ac.ke/handle/123456789/1154
dc.description DOI: 10.1021/nn400731g en_US
dc.description.abstract We created unique interconnected partially graphitic carbon nanosheets (10–30 nm in thickness) with high specific surface area (up to 2287 m2 g–1), significant volume fraction of mesoporosity (up to 58%), and good electrical conductivity (211–226 S m–1) from hemp bast fiber. The nanosheets are ideally suited for low (down to 0 °C) through high (100 °C) temperature ionic-liquid-based supercapacitor applications: At 0 °C and a current density of 10 A g–1, the electrode maintains a remarkable capacitance of 106 F g–1. At 20, 60, and 100 °C and an extreme current density of 100 A g–1, there is excellent capacitance retention (72–92%) with the specific capacitances being 113, 144, and 142 F g–1, respectively. These characteristics favorably place the materials on a Ragone chart providing among the best power–energy characteristics (on an active mass normalized basis) ever reported for an electrochemical capacitor: At a very high power density of 20 kW kg–1 and 20, 60, and 100 °C, the energy densities are 19, 34, and 40 Wh kg–1, respectively. Moreover the assembled supercapacitor device yields a maximum energy density of 12 Wh kg–1, which is higher than that of commercially available supercapacitors. By taking advantage of the complex multilayered structure of a hemp bast fiber precursor, such exquisite carbons were able to be achieved by simple hydrothermal carbonization combined with activation. This novel precursor-synthesis route presents a great potential for facile large-scale production of high-performance carbons for a variety of diverse applications including energy storage. en_US
dc.language.iso en en_US
dc.subject biomass en_US
dc.subject carbon nanosheets en_US
dc.subject ionic liquid en_US
dc.subject supercapacitor en_US
dc.subject energy storage en_US
dc.title Interconnected Carbon nanosheets derived from hemp for ultrafast supercapacitors with high energy en_US
dc.type Article en_US


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