4.8 Article

Fast Response, Vertically Oriented Graphene Nanosheet Electric Double Layer Capacitors Synthesized from C2H2

Journal

ACS NANO
Volume 8, Issue 6, Pages 5873-5882

Publisher

AMER CHEMICAL SOC
DOI: 10.1021/nn5009319

Keywords

graphene; EDLC; electrodes; RF-PECVD; AC filtering; energy storage

Funding

  1. Army Research Laboratory (ARL) [ARL W911QX-13-C-0056]
  2. Carderock Division of the Naval Surface Warfare Center's In-house Laboratory Independent Research Program [0601152N]

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The growth and electrical characteristics of vertically oriented graphene nanosheets grown by radio frequency plasma-enhanced chemical vapor deposition from C2H2 feedstock on nickel substrates and used as electrodes in symmetric electric double layer capacitors (EDLC) are presented. The nanosheets exhibited 2.7 times faster growth rate and much greater specific capacitance for a given growth time than CH4 synthesized films. Raman spectra showed that the intensity ratio of the D band to G band versus temperature initially decreased to a minimum value of 0.45 at a growth temperature of 750 degrees C, but increased rapidly with further temperature increase (1.15 at 850 degrees C). The AC specific capacitance at 120 Hz of these EDLC devices increased in a linear fashion with growth temperature, up to 265 mu F/cm(2) (2 mu m high film, 850 degrees C with 10 min growth). These devices exhibited ultrafast frequency response: the frequency response at -45 degrees phase angle reached over 20 kHz. Consistent with the increase in D band to G band ratio, the morphology of the films became less vertical, less crystalline, and disordered at substrate temperatures of 800 degrees C and above. This deterioration in morphology resulted in an increase in graphene surface area and defect density, which, in turn, contributed to the increased capacitance, as well as a slight decrease in frequency response. The low equivalent series resistance varied from 0.07 to 0.08 Omega and was attributed to the significant carbon incorporation into the Ni substrate.

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