Synthesis of graphene-oxadiazole-2-thiol (RGS) / PVA composite and studying Its electric properties
Main Article Content
Abstract
In this work focused on preparing novel nanocompound Reduce graphene-oxadiazole-2-thiol (RGS), is a derivative of graphene, Which was obtained through a series of reactions on graphene oxide (GO). Incorporating (RGS) in PVA via non-covalent afforded RGS/PVA composites with different weight of RGS. the RGS/PVA composite and pure PVA were identified by different techniques, FTIR measurements, The scanning electron
Article Details

This work is licensed under a Creative Commons Attribution 4.0 International License.
Tikrit Journal of Pure Science is licensed under the Creative Commons Attribution 4.0 International License, which allows users to copy, create extracts, abstracts, and new works from the article, alter and revise the article, and make commercial use of the article (including reuse and/or resale of the article by commercial entities), provided the user gives appropriate credit (with a link to the formal publication through the relevant DOI), provides a link to the license, indicates if changes were made, and the licensor is not represented as endorsing the use made of the work. The authors hold the copyright for their published work on the Tikrit J. Pure Sci. website, while Tikrit J. Pure Sci. is responsible for appreciate citation of their work, which is released under CC-BY-4.0, enabling the unrestricted use, distribution, and reproduction of an article in any medium, provided that the original work is properly cited.
References
[1] J. Lahiri, Y. Lin, P. Bozkurt, I.I. Oleynik, M. Batzill, Nature Nanotechnology, 5 (2010) 326-329.
[2] M. Terrones, O. Martin, M. Gonzalez, J. Pozuelo, B. Serrano, J.C. Cabanelas, S.M. Vega-Diaz, Advanced Materials, 10 (2011) 5302.
[3] H.O. Pierson, Handbook of carbon, graphite, diamond and fullerenes. NJ, USA: Noyes; (1993).
[4] L. Dai, D.W. Chang, J.B. Baek, W. Lu, Small, 8 (2012) 1130-1166.
[5] D.R. Dreyer, R.S. Ruoff, C.W. Bielawski, Angew Chem Int Ed, 51 (2012) 7640-7654.
[6] K.S. Novoselov, V.I. Falko, L. Colombo, P.R. Gellert, M.G. Schwab, K. Kim, Nature,490 (2012) 192-200.
[7] W. Choi, J-W. Lee, "Graphene: Synthesis and Applications", CRC Press, Taylor & Francis group, (2012).
[8] X. Wang, X. Li, L. Zhang, Y. Yoon, P. K. Weber, H. Wang, J. Guo, H. Dai, Science 324(5928) (2009) 768-771.
[9] K.S. Novoselov, A.K. Geim, S.V. Morozov, D. Jiang, Y. Zhang, S.V. Dubonos, I.V. Grigorieva, A.A. Firsov, Science, 306 (2004) 666-669.
[10] Y. Shao, S. Zhang, M. H. Engelhard, G. Li, G. Shao, Y. Wang, J. Liu, I. A. Aksay, Y. Lin, J. Mater. Chem. 20 (2010) 7491-7496.
[11] X. Wang, L. Zhi, K. M¨ullen, Nano Lett. 8(1) (2008) 323-327.
[12] D. Kim, D. Lee, Y. Lee, Adv. Funct. Mater. 23(40), (2013) 5049-5055.
[13] J. Ha, S. Park, D. Kim, J. Ryu, C. Lee, B. H. Hong, Y. Hong, Organic Electronics 14(9) (2013) 2324-2330.
[14] X. Michalet, F. F. Pinaud, L. A. Bentolila, J. M. Tsay, S. Doose, J. J. Li, G. Sundaresan, A. M. Wu, S. S. Gambhir, Science 307(5709) (2005) 538-544.
[15] B. D. Zdravkov, J. J. Cermak, M. Sefara, J. Jank, Cent. Eur. J. Chem., 5(2), (2007) 385-395.
[16] W.S. Hummers Jr., R.E. Offeman, Journal of the American Chemical Society 80 (6) (1958) 1339-1339.
[17] S. Stankovich, D.A. Dikin, R.D. Piner, K.A. Kohlhaas, A. Kleinhammes, Y. Jia, Y. Wu, S.T. Nguyen, R.S. Ruoff, Carbon, 45 (2007) 1558-1565.
[18] C.W.M. Yuen, S.K.A. Ku, P.S.R. Choi, C.W. Kan, RJTA, 9(2)(2005)26-38.
[19] P. Sungjin, A. Jinho, J.R. Potts, A. Velamakanni, S. Murali, R.S. Ruoff, Carbon, 49 (2011) 3019-3023.
[20] M.O. Danilov, I.A. Slobodyanyuk, I.A. Rusetskii1, G.I. Dovbeshko, Nanoscience and Nanotechnology Research, (2) (1) (2014) 12-17.
[21] B.W. Chieng, N.A. Ibrahim , W. M. Z. W. Yunus, M.Z. Hussein, Y.Y. Then, Y.Y. Loo, Polymers, 6 (2014) 2232-2246.
[22] J. Wang, X. Wang, C. Xu, M. Zhanga, Polym Int , 60 (2011) 816-822.
[23] X. Zhao, Q. Zhang, D. Chen, Macromolecules., 43(2010) 2357-2363.
[24] D. Wang, X. Zhang, J. Zha, J. Zhao, Z. Dang ,G. Hub, Polymer 54 (2013) 1916-1922.