Highly Ordered Graphene Polydopamine Composite Allowing Fast Motion of Cations: Toward a High‐Performance Microsupercapacitor

Author:

Bouzina Adnane1,Meng René1,Bazin Cyrille1,Perrot Hubert1ORCID,Sel Ozlem23ORCID,Debiemme‐Chouvy Catherine1ORCID

Affiliation:

1. Sorbonne University CNRS Laboratoire Interfaces et Systèmes Electrochimiques LISE UMR 8235 4 place Jussieu Paris F‐75005 France

2. Chimie du Solide et de l'Energie UMR 8260 Collège de France 11 Place Marcelin Berthelot Paris Cedex 05 F‐75231 France

3. Réseau sur le Stockage Electrochimique de l'Energie (RS2E) CNRS FR 3459 33 Rue Saint Leu Amiens Cedex F‐80039 France

Abstract

AbstractThe simple and eco‐friendly preparation of microsupercapacitor remains a great challenge. Here are presented the preparation and the characterizations of an all‐solid symmetric micro‐supercapacitor based on a new composite formed of highly ordered graphene sheets due to the presence of polydopamine between the layers, which present a d‐spacing of 0.356 nm. This graphene‐polydopamine composite is prepared by electroreduction of graphene oxide (GO) followed by the electrooxidation of dopamine added into the initial solution, i.e., after GO reduction. In Na2SO4 solution, this composite material shows excellent capacitance and stability even at a high scan rate (2 V s−1) and a very low relaxation time (τ0) of 62 ms. This value is in very good agreement with the high transfer kinetic and low transfer resistance values of the ions implied in the charge storage process (Na+·2H2O and Na+) determined by ac‐electrogravimetry. Finally, it is shown that the all‐solid micro‐supercapacitor (interdigitated electrodes obtained using a CO2 laser and Na2SO4/PVA hydrogel) prepared with this new composite delivers a remarkable energy density of 6.36 mWh cm−3 for a power density of 0.22 W cm−3 and exhibits excellent cycling stability (98% of retention after 10 000 cycles at 2 V s−1).

Publisher

Wiley

Subject

Mechanical Engineering,Mechanics of Materials

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