Hydrogels for flexible and compressible free standing cellulose supercapacitors

[Display omitted] •Symmetric supercapacitors are prepared using carboxymethyl cellulose hydrogels.•The supercapacitors are lightweight, robust, portable, flexible and compressible.•Conduction paths in the hydrogel-based electrodes are made with a conducting polymer.•Hydrogels from electrodes and sup...

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Veröffentlicht in:European polymer journal 2019-09, Vol.118, p.347-357
Hauptverfasser: Saborío, Maricruz G., Svelic, Petra, Casanovas, Jordi, Ruano, Guillem, Pérez-Madrigal, Maria M., Franco, Lourdes, Torras, Juan, Estrany, Francesc, Alemán, Carlos
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Sprache:eng
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Zusammenfassung:[Display omitted] •Symmetric supercapacitors are prepared using carboxymethyl cellulose hydrogels.•The supercapacitors are lightweight, robust, portable, flexible and compressible.•Conduction paths in the hydrogel-based electrodes are made with a conducting polymer.•Hydrogels from electrodes and supporting electrolyte are assembled. Cellulose-based supercapacitors display important advantages in comparison with devices fabricated with other materials, regarding environmental friendliness, flexibility, cost and versatility. Recent progress in the field has been mainly focused on the utilization of cellulose fibres as: structural mechanical reinforcement of electrodes; precursors of electrically active carbon-based materials; or primary electrolytes that act as reservoirs of secondary electrolytes. In this work, a flexible, lightweight, robust, portable and manageable all-carboxymethyl cellulose symmetric supercapacitor has been obtained by assembling two electrodes based on carboxymethyl cellulose hydrogels to a solid electrolytic medium formulated with the same material. Hydrogels, which were made by cross-linking carboxymethyl cellulose paste with citric acid in water, rendered not only effective solid electrolytic media by simply loading NaCl but also electroactive electrodes. For the latter, conducting polymer microparticles, which were loaded into the hydrogel network during the physical cross-linking step, were appropriately connected through the in situ anodic polymerization of a similar conducting polymer in aqueous medium, thus creating conduction paths. The performance of the assembled supercapacitors has been proved by cyclic voltammetry, galvanostatic charge-discharge and electrochemical impedance spectroscopy. This design opens a new window for the green and mass production of flexible cellulose-based supercapacitors.
ISSN:0014-3057
1873-1945
DOI:10.1016/j.eurpolymj.2019.06.011