Electric Double-Layer Capacitor Based on an Ionic Clathrate Hydrate

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Herein, we suggest a new approach to an electric double-layer capacitor (EDLC) that is based on a proton-conducting ionic clathrate hydrate (ICH). The ice-like structures of clathrate hydrates, which are comprised of host water molecules and guest ions, make them suitable for applications in EDLC electrolytes, owing to their high proton conductivities and thermal stabilities. The carbon materials in the ICH Me4NOH5H2O show a high specific capacitance, reversible charge-discharge behavior, and a long cycle life. The ionic-hydrate complex provides the following advantages in comparison with conventional aqueous and polymer electrolytes: 1)The ICH does not cause leakage problems under normal EDLC operating conditions. 2)The hydrate material can be utilized itself, without requiring any pre-treatments or activation for proton conduction, thus shortening the preparation procedure of the EDLC. 3)The crystallization of the ICH makes it possible to tailor practical EDLC dimensions because of its fluidity as a liquid hydrate. 4)The hydrate solid electrolyte exhibits more-favorable electrochemical stability than aqueous and polymer electrolytes. Therefore, ICH materials are expected to find practical applications in versatile energy devices that incorporate electrochemical systems.
Publisher
WILEY-V C H VERLAG GMBH
Issue Date
2013-07
Language
English
Article Type
Article
Keywords

TETRAMETHYLAMMONIUM HYDROXIDE PENTAHYDRATE; CONDUCTIVITY

Citation

CHEMISTRY-AN ASIAN JOURNAL, v.8, no.7, pp.1569 - 1573

ISSN
1861-4728
DOI
10.1002/asia.201300089
URI
http://hdl.handle.net/10203/175083
Appears in Collection
CBE-Journal Papers(저널논문)
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