Issue 31, 2015

A self-supported, flexible, binder-free pseudo-supercapacitor electrode material with high capacitance and cycling stability from hollow, capsular polypyrrole fibers

Abstract

Flexible energy devices with high performance and long-term stability are highly promising for applications in portable electronics, but remain challenging to develop. As an electrode material for pseudo-supercapacitors, conducting polymers typically show higher energy storage ability over carbon materials and larger conductivity than transition-metal oxides. However, conducting polymer-based supercapacitors often have poor cycling stability, attributable to the structural rupture caused by the large volume contrast between doping and de-doping states, which has been the main obstacle to their practical applications. Herein, we report a simple method to prepare a flexible, binder-free, self-supported polypyrrole (PPy) supercapacitor electrode with high cycling stability through using novel, hollow PPy nanofibers with porous capsular walls as a film-forming material. The unique fiber structure and capsular walls provide the PPy film with enough free-space to adapt to volume variation during doping/de-doping, leading to super-high cycling stability (capacitance retention > 90% after 11 000 charge–discharge cycles at a high current density of 10 A g−1) and high rate capability (capacitance retention ∼ 82.1% at a current density in the range of 0.25–10 A g−1).

Graphical abstract: A self-supported, flexible, binder-free pseudo-supercapacitor electrode material with high capacitance and cycling stability from hollow, capsular polypyrrole fibers

Supplementary files

Article information

Article type
Paper
Submitted
16 May 2015
Accepted
27 Jun 2015
First published
30 Jun 2015

J. Mater. Chem. A, 2015,3, 16162-16167

Author version available

A self-supported, flexible, binder-free pseudo-supercapacitor electrode material with high capacitance and cycling stability from hollow, capsular polypyrrole fibers

Z. Li, J. Cai, P. Cizek, H. Niu, Y. Du and T. Lin, J. Mater. Chem. A, 2015, 3, 16162 DOI: 10.1039/C5TA03585F

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