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3 Interaction of Molten Salts with Graphite
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(1994)
24. M. Rusop, X.M. Tian, T. Kinugawa, T. Soga, T. Jimbo, M. Umeno, Preparation and characterization of boron-incorporated amorphous carbon films from a natural source of camphoric
carbon as a precursor material. Appl. Surf. Sci. 252, 1693–1703 (2005)
25. H. Honda, K. Egi, S. Toyoda, Y. Sanada, T. Furuta, Electronic properties of heat treated coals.
Carbon 1, 155–164 (1964)
26. D. Gonzalez, M.A. Montes-Moran, R.J. Young, A.B. Garcia, Effect of temperature on the
graphitization process of a semianthracite. Fuel Process. Technol. 79, 245–250 (2002)
27. J.R. Hahn, H. Kang, S.M. Lee, Y.H. Lee, Mechanistic study of defect-induced oxidation of
graphite. J. Phys. Chem. B 103, 9944–9951 (1999)
28. E.J. Hippo, N. Murdie, A. Hyjazie, The role of active sites in the inhibition of gas-carbon
reactions. Carbon 27, 689–695 (1989)
29. X.W. Luo, J.C. Robin, S.Y. Yu, Effect of temperature on graphite oxidation behaviour. Nucl.
Eng. Des. 227, 273–280 (2004)
30. W.M. Guo, H.N. Xiao, G.J. Zhang, Kinetics and mechanisms of non-isothermal oxidation of
graphite in air. Corros. Sci. 50, 2007–2011 (2008)
31. R. Hui, K. Feiyu, J. Qing-jie, S. Wanci, Synthesis criterion for a metal chloride-graphite
intercalation compound by a molten salt method. New Carbon Mater. 24, 18–22 (2009)
32. N.I. Alekseev, O.V. Arapov, I.M. Belozerov, Y.G. Osipov, K.N. Semenov, S.V. Polovtsev et al.,
Formation of carbon nanostructures in electrolytic production of alkali metals. Rus. J. Appl.
Chem. 78, 1944–1947 (2005)
33. N.I. Alekseev, Y.G. Osipov, K.N. Semenov, S.V. Polovtsev, N.A. Charykov, O.V. Arapov,
Carbon nanostructures in the industrial production of alkali metals by electrolysis. Tech. Phys.
51, 278–280 (2006)
34. Y. Zhang, X. Sun, Synthesis of carbon nanofibers and foam by catalytic chemical vapor
deposition using a water-soluble alkali salt catalyst. Adv. Mater. 19, 961–964 (2007)
35. P. Chen, H.B. Zhang, G.D. Lin, Q. Hong, K.R. Tsm, Growth of carbon nanotubes by catalytic
decomposition of CH 4 or CO on a Ni–MgO catalyst. Carbon 35, 1495–1501 (1997)
3 Interaction of Molten Salts with Graphite
23. J.F. Freire, C.A. Achete, G. Mariotto, R. Canteri, Amorphous nitrogenated carbon films: Structural modifications induced by thermal annealing. J. Vac. Sci. Technol., A 12, 3048–3053
(1994)
24. M. Rusop, X.M. Tian, T. Kinugawa, T. Soga, T. Jimbo, M. Umeno, Preparation and characterization of boron-incorporated amorphous carbon films from a natural source of camphoric
carbon as a precursor material. Appl. Surf. Sci. 252, 1693–1703 (2005)
25. H. Honda, K. Egi, S. Toyoda, Y. Sanada, T. Furuta, Electronic properties of heat treated coals.
Carbon 1, 155–164 (1964)
26. D. Gonzalez, M.A. Montes-Moran, R.J. Young, A.B. Garcia, Effect of temperature on the
graphitization process of a semianthracite. Fuel Process. Technol. 79, 245–250 (2002)
27. J.R. Hahn, H. Kang, S.M. Lee, Y.H. Lee, Mechanistic study of defect-induced oxidation of
graphite. J. Phys. Chem. B 103, 9944–9951 (1999)
28. E.J. Hippo, N. Murdie, A. Hyjazie, The role of active sites in the inhibition of gas-carbon
reactions. Carbon 27, 689–695 (1989)
29. X.W. Luo, J.C. Robin, S.Y. Yu, Effect of temperature on graphite oxidation behaviour. Nucl.
Eng. Des. 227, 273–280 (2004)
30. W.M. Guo, H.N. Xiao, G.J. Zhang, Kinetics and mechanisms of non-isothermal oxidation of
graphite in air. Corros. Sci. 50, 2007–2011 (2008)
31. R. Hui, K. Feiyu, J. Qing-jie, S. Wanci, Synthesis criterion for a metal chloride-graphite
intercalation compound by a molten salt method. New Carbon Mater. 24, 18–22 (2009)
32. N.I. Alekseev, O.V. Arapov, I.M. Belozerov, Y.G. Osipov, K.N. Semenov, S.V. Polovtsev et al.,
Formation of carbon nanostructures in electrolytic production of alkali metals. Rus. J. Appl.
Chem. 78, 1944–1947 (2005)
33. N.I. Alekseev, Y.G. Osipov, K.N. Semenov, S.V. Polovtsev, N.A. Charykov, O.V. Arapov,
Carbon nanostructures in the industrial production of alkali metals by electrolysis. Tech. Phys.
51, 278–280 (2006)
34. Y. Zhang, X. Sun, Synthesis of carbon nanofibers and foam by catalytic chemical vapor
deposition using a water-soluble alkali salt catalyst. Adv. Mater. 19, 961–964 (2007)
35. P. Chen, H.B. Zhang, G.D. Lin, Q. Hong, K.R. Tsm, Growth of carbon nanotubes by catalytic
decomposition of CH 4 or CO on a Ni–MgO catalyst. Carbon 35, 1495–1501 (1997)
