Synthesis and Fabrication of Graphene and Graphene Oxide

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A. Adetayo, D. Runsewe https://doi.org/10.1021/nn9014483 [79] Sutter, P.W., Flege, J.-I. and Sutter, E.A. (2008) Epitaxial Graphene on Ruthenium. Nature Materials, 7, 406-411. https://doi.org/10.1038/nmat2166 [80] Coraux, J., N’Diaye, A.T., Busse, C. and Michely, T. (2008) Structural Coherency of Graphene on Ir(111). Nano Letters, 8, 565-570. https://doi.org/10.1021/nl0728874 [81] Karu, A.E. and Beer, M. (1966) Pyrolytic Formation of Highly Crystalline Graphite Films. Journal of Applied Physics, 37, 2179-2181. https://doi.org/10.1063/1.1708759 [82] Perdereau, J. and Rhead, G.E. (1971) LEED Studies of Adsorption on Vicinal Cop- per Surfaces. Surface Science, 24, 555-571. https://doi.org/10.1016/0039-6028(71)90281-0 [83] Eizenberg, M. and Blakely, J.M. (1979) Carbon Monolayer Phase Condensation on Ni(111). Surface Science, 82, 228-236. https://doi.org/10.1016/0039-6028(79)90330-3 [84] Somani, P.R., Somani, S.P. and Umeno, M. (2006) Planer Nano-Graphenes from Camphor by CVD. Chemical Physics Letters, 430, 56-59. https://doi.org/10.1016/j.cplett.2006.06.081 [85] Obraztsov, A.N., Obraztsova, E.A., Tyurnina, A.V. and Zolotukhin, A.A. (2007) Chemical Vapor Deposition of Thin Graphite Films of Nanometer Thickness. Car- bon, 45, 2017-2021. https://doi.org/10.1016/j.carbon.2007.05.028 [86] Li, X., et al. (2009) Large-Area Synthesis of High-Quality and Uniform Graphene Films on Copper Foils. Science, 324, 1312-1314. [87] Lee, J., Zheng, X., Roberts, R.C. and Feng, P.X.L. (2015) Scanning Electron Micro- scopy Characterization of Structural Features in Suspended and Non-Suspended Graphene by Customized CVD Growth. Diamond and Related Materials, 54, 64-73. https://doi.org/10.1016/j.diamond.2014.11.012 [88] Shang, N.G., et al. (2008) Catalyst-Free Efficient Growth, Orientation and Biosens- ing Properties of Multilayer Graphene Nanoflake Films with Sharp Edge Planes. Advanced Functional Materials, 18, 3506-3514. https://doi.org/10.1002/adfm.200800951 [89] Zhu, M., et al. (2007) A Mechanism for Carbon Nanosheet Formation. Carbon, 45, 2229-2234. [90] Obraztsov, A.N., Zolotukhin, A.A., Ustinov, A.O., Volkov, A.P., Svirko, Y. and Je- fimovs, K. (2003) DC Discharge Plasma Studies for Nanostructured Carbon CVD. Diamond and Related Materials, 12, 917-920. https://doi.org/10.1016/s0925-9635(02)00338-2 [91] Wang, J.J., et al. (2004) Free-Standing Subnanometer Graphite Sheets. Applied Physics Letters, 85, 1265-1267. [92] Jǎsek, O., Synek, P., Zajíčkováa, L., Elíǎs, M. and Kudrle, V. (2010) Synthesis of carbon Nanostructures by Plasma Enhanced Chemical Vapour Deposition at At- mospheric Pressure. Journal of Electrical Engineering, 61, 311-313. https://doi.org/10.2478/v10187-011-0049-9 [93] Yuan, G.D., et al. (2009) Graphene Sheets via Microwave Chemical Vapor Deposi- tion. Chemical Physics Letters, 467, 361-364. [94] Lee, D.H., Lee, J.A., Lee, W.J., Choi, D.S., Lee, W.J. and Kim, S.O. (2010) Facile Fa- brication and Field Emission of Metal-Particle-Decorated Vertical N-Doped Carbon Nanotube/Graphene Hybrid Films. The Journal of Physical Chemistry C, 114, 21184-21189. https://doi.org/10.1021/jp1077714 [95] Subrahmanyam, K.S., Panchakarla, L.S., Govindaraj, A. and Rao, C.N.R. (2009) DOI: 10.4236/ojcm.2019.92012 228 Open Journal of Composite Materials

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