4.5 Article

Oxidative chemical vapor deposition of polypyrrole onto carbon fabric for flexible supercapacitive electrode material

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SYNTHETIC METALS
卷 298, 期 -, 页码 -

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ELSEVIER SCIENCE SA
DOI: 10.1016/j.synthmet.2023.117444

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Polypyrrole; Flexible supercapacitor; Oxidative chemical vapor deposition (CVD)

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Polypyrrole is a promising conjugated polymer for use in electrochemical energy storage devices, thanks to its pseudocapacitive behavior and ability to hybridize with traditional carbon-based materials. The processing condition for hybridization is critical for long-term electrode performance. Depositing polypyrrole onto 3D carbon fiber fabric using oxidative chemical vapor deposition allows for uniform and controlled thickness deposition. The stability of the polypyrrole-carbon fiber electrode was tested, and the results showed that electrode stability is thickness-dependent and tuning it in the correct voltage window is crucial for optimal long-term performance.
Polypyrrole has been a promising conjugated polymer for application in electrochemical energy storage devices. One primary feature is its pseudocapacitive behavior, which makes it suitable for hybridization with traditional carbon-based electrical double layer capacitive materials. The processing condition for such a hybridization is a critical aspect for the electrode performance in long term. Oxidative chemical vapor deposition was used to deposit polypyrrole onto 3D carbon fiber fabric. This allowed uniform and conformal deposition of polypyrrole on individual fibers as well as a control over its thickness depending on the reaction time. The obtained composite was characterized for electrochemical energy storage application using cyclic voltammetry and galvanostatic charge discharge measurements. Additionally, the stability of the polypyrrole-carbon fiber electrode was tested using microscopy and energy dispersive spectroscopy in order to obtain insights into physical and chemical degradation of polypyrrole during electrochemical aging. Results showed thickness-dependence of electrode stability, tuning of which in the correct voltage window is necessary for optimal long-term performance.

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