Synthesis and Fabrication of Graphene and Graphene Oxide

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A. Adetayo, D. Runsewe [15] Xiong, R., et al. (2016) Ultrarobust Transparent Cellulose Nanocrystal-Graphene Membranes with High Electrical Conductivity. Advanced Materials, 28, 1501-1509. https://doi.org/10.1002/adma.201504438 [16] Eda, G., Fanchini, G. and Chhowalla, M. (2008) Large-Area Ultrathin Films of Re- duced Graphene Oxide as a Transparent and Flexible Electronic Material. Nature Nanotechnology, 3, 270-274. https://doi.org/10.1038/nnano.2008.83 [17] Gilje, S., Han, S., Wang, M., Wang, K.L. and Kaner, R.B. (2007) A Chemical Route to Graphene for Device Applications. Nano Letters, 7, 3394-3398. [18] Li, X., Wang, X., Zhang, L., Lee, S. and Dai, H. (2008) Chemically Derived, Ultras- mooth Graphene Nanoribbon Semiconductors. Science, 319, 1229-1232. https://doi.org/10.1126/science.1150878 [19] Yoo, E., Kim, J., Hosono, E., Zhou, H., Kudo, T. and Honma, I. (2008) Large Re- versible Li Storage of Graphene Nanosheet Families for Use in Rechargeable Li- thium Ion Batteries. Nano Letters, 8, 2277-2282. https://doi.org/10.1021/nl800957b [20] Tung, T.T., et al. (2016) Graphene Oxide-Assisted Liquid Phase Exfoliation of Gra- phite into Graphene for Highly Conductive Film and Electromechanical Sensors. ACS Applied Materials & Interfaces, 8, 16521-16532. https://doi.org/10.1021/acsami.6b04872 [21] Cai, W., Zhu, Y., Li, X., Piner, R.D. and Ruoff, R.S. (2009) Large Area Few-Layer Graphene/Graphite Films as Transparent Thin Conducting Electrodes. Applied Physics Letters, 95, 123115. https://doi.org/10.1063/1.3220807 [22] Li, X., et al. (2009) Transfer of Large-Area Graphene Films for High-Performance Transparent Conductive Electrodes. Nano Letters, 9, 4359-4363. [23] Stoller, M.D., Park, S., Zhu, Y., An, J. and Ruoff, R.S. (2008) Graphene-Based Ul- tracapacitors. Nano Letters, 8, 3498-3502. [24] Sharma, V., Jain, Y., Kumari, M., Gupta, R., Sharma, S.K. and Sachdev, K. (2017) Synthesis and Characterization of Graphene Oxide (GO) and Reduced Graphene Oxide (rGO) for Gas Sensing Application. Macromolecular Symposia, 376, 1-5. https://doi.org/10.1002/masy.201700006 [25] Liu, Z., Robinson, J.T., Sun, X. and Dai, H. (2008) PEGylated Nanographene Oxide for Delivery of Water-Insoluble Cancer Drugs. Journal of Amercain Chemical So- ciety, 130, 10876-10877. https://doi.org/10.1021/ja803688x [26] Das, S. and Drucker, J. (2017) Nucleation and Growth of Single Layer Graphene on Electrodeposited Cu by Cold Wall Chemical Vapor Deposition. Nanotechnology, 28, Article ID: 105601. [27] Wei, D., Liu, Y., Wang, Y., Zhang, H., Huang, L. and Yu, G. (2009) Synthesis of N-Doped Graphene by Chemical Vapor Deposition and Its Electrical Properties. Nano Letters, 9, 1752-1758. https://doi.org/10.1021/nl803279t [28] Seyller, T., et al. (2008) Epitaxial Graphene: A New Material. Physica Status Solidi, 245, 1436-1446. [29] Paredes, J.I., Villar-Rodil, S., Solís-Fernández, P., Martínez-Alonso, A. and Tascón, J.M.D. (2009) Atomic Force and Scanning Tunneling Microscopy Imaging of Gra- phene Nanosheets Derived from Graphite Oxide. Langmuir, 25, 5957-5968. https://doi.org/10.1021/la804216z [30] Park, S. and Ruoff, R.S. (2009) Chemical Methods for the Production of Graphenes. Nature Nanotechnology, 4, 217-224. [31] Allen, M.J., Tung, V.C. and Kaner, R.B. (2010) Honeycomb Carbon: A Review of Graphene. Chemical Reviews, 110, 132-145. DOI: 10.4236/ojcm.2019.92012 224 Open Journal of Composite Materials

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