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Large Scale Graphene by Chemical Vapor Deposition: Synthesis, Characterization and Applications 183 approached via its use as a transparent conducting film and as the transparent electrode in flexible organic photovoltaic cells. CVD graphene solar cells demonstrated outstanding capability to operate under bending conditions, outperforming largely ITO-based cells which displayed cracks and irreversible failure under bending. In general, CVD graphene shows great potential as a mass production transparent conductive film for applications in rigid and flexible electronics at the nano and macro scales. 5. Acknowledgment The authors want to acknowledge support to the findings framed on this work from the National Science Foundation under Grant CCF-0702204. Authors also gratefully acknowledge Prof. M. Thompson and Prof. S. Cronin for kindly providing facilities and fruitful discussions. 6. References Arenz, M., K. J. J. Mayrhofer, et al. (2005). "The effect of the particle size on the kinetics of CO electrooxidation on high surface area Pt catalysts." Journal of the American Chemical Society 127(18): 6819-6829. Bolotin, K. I., K. J. Sikes, et al. (2008). "Ultrahigh electron mobility in suspended graphene." Solid State Communications 146(9-10): 351-355. Cancado, L. G., A. Reina, et al. (2008). "Geometrical approach for the study of G ' band in the Raman spectrum of monolayer graphene, bilayer graphene, and bulk graphite." Physical Review B 77(24). Du, X., I. Skachko, et al. (2008). "Approaching ballistic transport in suspended graphene." Nature Nanotechnology 3(8): 491-495. Eizenberg, M. and J. M. Blakely (1979). "Carbon Monolayer phase condensation on Ni(111) " Surface Science 82: 228-236. Ferrari, A. C., J. C. Meyer, et al. (2006). "Raman Spectrum of Graphene and Graphene Layers." Physical Review Letters 97(18): 187401. Forbeaux, I., J.-M. Themlin, et al. (1998). "Heteroepitaxial graphite on 6H-SiC(0001): Interface formation through conduction-band electronic structure." Physical Review B 58(24): 16396-16406. Geim, A. K. and K. S. Novoselov (2007). "The rise of graphene." Nat Mater 6(3): 183-191. Gilje, S., S. Han, et al. (2007). "A Chemical Route to Graphene for Device Applications." Nano Letters 7(11): 3394-3398. Gomez De Arco, L., Y. Zhang, et al. "Continuous, Highly Flexible, and Transparent Graphene Films by Chemical Vapor Deposition for Organic Photovoltaics." ACS Nano 4(5): 2865-2873. Gomez, L., Y. Zhang, et al. (2009). "Synthesis, Transfer and Devices of Single- and Few-Layer Graphene by Chemical Vapor Deposition." IEEE Transactions on Nanotechnology 8(2): 135-138. Gupta, A., G. Chen, et al. (2006). "Raman Scattering from High-Frequency Phonons in Supported n-Graphene Layer Films." Nano Letters 6(12): 2667-2673. Han, M. Y., Ouml, et al. (2007). "Energy Band-Gap Engineering of Graphene Nanoribbons." Physical Review Letters 98(20): 206805. Hayes, B. (2005). "Why W?" American Scientist 93: 104-108. Hwang, E. H., S. Adam, et al. (2007). "Transport in chemically doped graphene in the presence of adsorbed molecules." Physical Review B 76(19): 195421.PDF Image | GRAPHENE SYNTHESIS CHARACTERIZATION PROPERTIES
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