Issue 16, 2015

Improved functionality of graphene and carbon nanotube hybrid foam architecture by UV-ozone treatment

Abstract

Optimization of the electrode/electrolyte double-layer interface is a key factor for improving electrode performance of aqueous electrolyte based supercapacitors (SCs). Here, we report the improved functionality of carbon materials via a non-invasive, high-throughput, and inexpensive UV generated ozone (UV-ozone) treatment. This process allows precise tuning of the graphene and carbon nanotube hybrid foam (GM) transitionally from ultrahydrophobic to hydrophilic within 60 s. The continuous tuning of surface energy can be controlled by simply varying the UV-ozone exposure time, while the ozone-oxidized carbon nanostructure maintains its integrity. Symmetric SCs based on the UV-ozone treated GM foam demonstrated enhanced rate performance. This technique can be readily applied to other CVD-grown carbonaceous materials by taking advantage of its ease of processing, low cost, scalability, and controllability.

Graphical abstract: Improved functionality of graphene and carbon nanotube hybrid foam architecture by UV-ozone treatment

Supplementary files

Article information

Article type
Communication
Submitted
17 Nov 2014
Accepted
04 Feb 2015
First published
06 Feb 2015

Nanoscale, 2015,7, 7045-7050

Author version available

Improved functionality of graphene and carbon nanotube hybrid foam architecture by UV-ozone treatment

W. Wang, I. Ruiz, I. Lee, F. Zaera, M. Ozkan and C. S. Ozkan, Nanoscale, 2015, 7, 7045 DOI: 10.1039/C4NR06795A

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