Synthesis of Papercut-Like Carbon Sheets by a Simple Pyrolysis Method

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Abstract:

In this study, papercut-like carbon sheets with an average size of about 20 nm in thickness have been successfully synthesized by the pyrolysis of tetrachloromethane and calcium carbide in an autoclave in 600 °C in the existence of alloy (Fe-Co-Ni). The X-ray powder diffraction (XRD) reveals amorphous carbon nature of the as-prepared sample. The thermal stability of the as-prepared sample was also studied.

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Advanced Materials Research (Volumes 239-242)

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544-547

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May 2011

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© 2011 Trans Tech Publications Ltd. All Rights Reserved

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[1] H.W. Kroto, J. R. Heath, S. C. O'Brien, R. F. Curl, and R. E Smalley, Nature, 318, 162 (1985).

Google Scholar

[2] Y. Saito, T. Matsumoto, Nature, 92, 37(1998).

Google Scholar

[3] P.M. Ajayan, J.M. Nugent, R.W. Siegel, B. Wei, Ph. Kohler-Redlich, Nature, 404, 243 (2000).

DOI: 10.1038/35005161

Google Scholar

[4] J.W. Liu, W.J. Lin, X.Y. Chen, S.Y. Zhang, F.Q. Li, Y.T. Qian, Carbon, 42, 669 (2004).

Google Scholar

[5] Y. Xiao, Y.L. Liu, L.Q. Cheng, D.S. Yuan, J.X. Zhang, Y.L. Gu, et al., Carbon, 44,1589 (2006).

Google Scholar

[6] S. Liu, S. Boeshore, A. Fernandez, M.J. Sayagues, J.E. Fischer, Gedanken, J Phys Chem B., 105,7606(2001).

Google Scholar

[7] M.J. Bronikowski, Carbon, 44(13),2822(2006).

Google Scholar

[8] X.M. Sun, Y.D. Li, Angew Chem Int Ed., 43(5), 597(2004)

Google Scholar

[9] L.Q. Xu, J.W. Liu, J. Du, Y.Y. Peng, Y.T. Qian, Carbon, 43(7), 1560(2005).

Google Scholar

[10] X.Q. Chen, S. Motojima, H. Iwanaga, Carbon, 37,1825(1999).

Google Scholar

[11] Y. Ando, X. Zhao, M. Ohkohchi, Carbon, 35(1),153(1997).

Google Scholar

[12] M. Shim, A. Javey, N. W. S. Kam, and H. J. Dai, J. Am. Chem. Soc., 123, 11512(2001)

Google Scholar

[13] T. W. Ebbesen, H. J. Lezec, H. Hiura, J. W. Bennett, and H. F. Ghaemi, T. Thio, Nature, 382, 54 (1996).

DOI: 10.1038/382054a0

Google Scholar

[14] S. Frank, P. Poncharal, Z. L.Wang, and A. de Heer, Science, 280, 1744 (1998).

Google Scholar

[15] P. Kim and C. M. Lieber, Science, 286, 2148 (1999).

Google Scholar

[16] D.G. Mcculloch, S. Prawer, A. Hoffman, Phys Rev B., 50(9),5905 (1994).

Google Scholar

[17] A.N. Obraztsov, A.V. Tyurnina, E.A. Obraztsova, A.A. Zolotukhin, B.H. Liu, K.C. Chin, et al., Carbon, 46(6),963(2008).

DOI: 10.1016/j.carbon.2008.03.002

Google Scholar

[18] W. Jiang, G. Nadeau, K. Zaghib, and K. Kinoshita, Thermochim. Acta., 351, 85 (2000).

Google Scholar

[19] Y. Sato, R. Hagiwara, Y. Ito, Solid State Sci., 5, 1285 (2003).

Google Scholar

[20] K. H. An, W. S. Kim, Y. S. Park, J. M. Moon, D. J. Bae, S. C. Lim, Y. S. Lee, Y. H. Lee, Adv. Funct. Mater., 11, 387(2001).

Google Scholar