Highly porous nitrogen-doped carbon for superior electric double-layer capacitors

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Abstract

In recent years, the research of doping heteroatoms in a carbon framework for supercapacitive electrodes has drawn tremendous attention due to the highly active electrochemical performance characteristics of the resulting materials. Here, we present a method to synthesize highly porous nitrogen-doped carbon nanomaterials derived from a polyvinylpyrrolidone (PVP) material via a relatively low-temperature simultaneous activation/calcination process. PVP fine powder was mixed with sodium hydroxide as a carbon-activation agent and calcined at a relatively low temperature of 600 °C for one hour under a nitrogen atmosphere. By this process, we obtained a highly porous nitrogen-doped carbon material, possessing a specific surface area of 2400 m2 g-1, which was formed with an amorphous and graphitic structure incorporating ultrathin large sheets. The resultant material displays an excellent specific capacitance (478 F g-1 at 1 A g-1) and a high retention rate of 99.6% after 10000 cycles at 10 A g-1. The symmetric supercapacitor exhibits high energy densities of 14.2 W h kg-1 and 5.7 W h kg-1 at power densities of 720 W kg-1 and 6035 W kg-1, respectively.

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APA

Jeong, D. S., Yun, J. M., & Kim, K. H. (2017). Highly porous nitrogen-doped carbon for superior electric double-layer capacitors. RSC Advances, 7(71), 44735–44742. https://doi.org/10.1039/c7ra09272e

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