Vapor Phase Polymerization Deposition of Conducting Polymer/Graphene Nanocomposites as High Performance Electrode Materials

Осаждение методом парофазной полимеризации нанокомпозитов проводящего полимера/графена для высокоэффективных электродных материалов
Shibin Li, Luning Zhang, Yadong Jiang, Yajie Yang, Jianhua Xu, Wenyao Yang
2013-04-26

PEDOT/graphene nanocompositesequivalent series resistance (ESR)mechanical protection of dielectric layersolid tantalum electrolyte capacitor cathodevapor phase polymerization
In this paper, we report chemical vapor phase polymerization (VPP) deposition of novel poly(3,4-ethylenedioxythiophene) (PEDOT)/graphene nanocomposites as solid tantalum electrolyte capacitor cathode films. The PEDOT/graphene films were successfully prepared on porous tantalum pentoxide surface as cathode films through the VPP procedure. The results indicated that the high conductivity nature of PEDOT/graphene leads to the decrease of cathode films resistance and contact resistance between PEDOT/graphene and carbon paste. This nanocomposite cathode film based capacitor showed ultralow equivalent series resistance (ESR) ca. 12 mΩ and exhibited better capacitance-frequency performance than the PEDOT based capacitor. The leakage current investigation revealed that the device encapsulation process does not influence capacitor leakage current, indicating the excellent mechanical strength of PEDOT-graphene films. The graphene showed a distinct protection effect on the dielectric layer from possible mechanical damage. This high conductivity and mechanical strength graphene based conducting polymer nanocomposites indicated a promising application future for organic electrode materials.
1
Capacitors using the PEDOT/graphene cathode film achieved ultralow equivalent series resistance (ESR) of approximately 12 mΩ.
2
Graphene in the nanocomposite protects the dielectric layer from mechanical damage and the encapsulation process does not increase leakage current, indicating excellent mechanical strength.
3
PEDOT/graphene capacitors exhibit better capacitance-frequency performance than capacitors with PEDOT-only cathodes.
4
PEDOT/graphene nanocomposite films were successfully deposited on porous tantalum pentoxide surfaces using chemical vapor phase polymerization (VPP).
5
PEDOT/graphene nanocomposites reduce cathode film resistance and contact resistance with carbon paste due to their high conductivity.

PEDOT/graphene nanocomposite cathode films deposited by vapor phase polymerization on porous tantalum pentoxide for solid tantalum electrolyte capacitors

Electrical and mechanical performance of the PEDOT/graphene nanocomposite cathode films—including conductivity, reduction of film and contact resistance, equivalent series resistance (ESR), capacitance–frequency behavior, leakage current stability, and mechanical protection of the dielectric

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2013-04-26
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Shibin Li
Luning Zhang
Yadong Jiang
Yajie Yang
Jianhua Xu
Wenyao Yang
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