References
35
References
1. R. Taylo, K.E. Gilchrist, L.J. Poston, Thermal conductivity of polycrystalline graphite. Carbon
6, 537–544 (1968)
2. G. Cui, Q. Bi, S. Zhu, J. Yang, W. Liu, Tribological properties of bronze–graphite composites
under sea water condition. Tribol. Int. 53, 76–86 (2012)
3. C. Ayache, I.L. Spain, Thermoelectric and thermomagnetic properties of graphite—I: The
cylindrical band model. Carbon 17, 277–291 (1979)
4. J.H. Lee, Y.H. Kang, S.C. Hwang, J.B. Shim, E.H. Kim, S.W. Park, Application of graphite as
a cathode material for electrorefining of uranium. Nucl. Technol. 162, 135–143 (2008)
5. D. Wang, X. Jina, G.Z. Chen, Solid state reactions: An electrochemical approach in molten
salts. Annu. Rep. Prog. Chem. Sect. C 104, 189–234 (2008)
6. P. Hejzlar, B.T. Mattingly, N.E. Todreas, M.J. Driscoll, Advanced fuel elements for passive
pressure tube light water reactors. Nucl. Eng. Des. 167, 375–392 (1997)
7. J. Uhlir, Chemistry and technology of Molten Salt Reactors—history and perspectives. J. Nucl.
Mater. 360, 6–11 (2007)
8. A. Cammi, V. Di Marcello, L. Luzzi, V. Memoli, M.E. Ricotti, A multi-physics modelling
approach to the dynamics of Molten Salt Reactors. Ann. Nucl. Energy 38, 1356–1372 (2011)
9. K. Nagarajan, B.P. Reddy, S. Ghosh, G. Ravisankar, K.S. Mohandas, U.K. Mudali et al.,
Development of pyrochemical reprocessing for spent metal fuels. Energy Procedia 7, 431–436
(2011)
10. V. Bernardet, S. Gomes, S. Delpeux, M. Dubois, K. Guérin, D. Avignant D et al., Protection
of nuclear graphite toward fluoride molten salt by glassy carbon deposit. J. Nucl. Mater. 384,
292–302 (2009)
11. J. Sure, A.R. Shankar, S. Ramya, U.K. Mudali, Molten salt corrosion of high density graphite
and partially stabilized zirconia coated high density graphite in molten LiCl–KCl salt. Ceram.
Int. 38, 2803–2812 (2012)
12. A. Rezaei, A.R. Kamali, Green production of carbon nanomaterials in molten salts, mechanisms
and applications. Diam. Relat. Mater. 83, 146–161 (2018)
13. A.R. Kamali, D.J. Fray, Electrochemical interaction between graphite and molten salts to
produce nanotubes, nanoparticles, graphene and nanodiamonds. J. Mater. Sci. 51, 569–576
(2016)
14. A.R. Kamali, D.J. Fray, Molten salt corrosion of graphite as a possible way to make carbon
nanostructures. Carbon 56, 121–131 (2013)
15. A.R. Kamali, D.J. Fray, C. Schwandt, Thermokinetic characteristics of lithium chloride. J.
Therm. Anal. Calorim. 104, 619–626 (2011)
16. J.I. Langford, A.J.C. Wilson, Scherrer after sixty years: A survey and some new results in the
determination of crystallite size. J. Appl. Crystallogr. 11, 102–113 (1978)
17. A.R. Kamali, C. Schwandt, D.J. Fray, On the oxidation of electrolytic carbon nanomaterials,
Corros. Sci. 54, 307–313 (2012)
18. A.R. Kamali, G. Divitini, C. Schwandt, D.J. Fray, Correlation between microstructure and
thermokinetic characteristics of electrolytic carbon nanomaterials. Corros. Sci. 64, 90–97
(2012)
19. W.W. Liu, S.P. Chai, A.R. Mohamed, U. Hashim, Synthesis and characterization of graphene
and carbon nanotubes: A review on the past and recent developments. J. Ind. Eng. Chem. 20,
1171–1185 (2014)
20. M.S. Dresselhaus, A. Jorio, R. Saito R. characterizing graphene, graphite, and carbon nanotubes
by Raman spectroscopy, Annu. Rev. Cond. Mat. Phys. 1, 89–108 (2010)
21. Q.Q. Dillon, J.A. Woollam, V. Katkanant, Use of Raman scattering to investigate disorder and
crystallite formation in as-deposited and annealed carbon films. Phys. Rev. B 29, 3482–3489
(1984)
22. N.C. Cho, D.K. Veirs, J.W. Ager, M.D. Rubin, C.B. Hooper, D.B. Bogy, Effects of substrate
temperature on chemical structure of amorphous carbon films. J. Appl. Phys. 71, 2243–2248
(1992)
35
References
1. R. Taylo, K.E. Gilchrist, L.J. Poston, Thermal conductivity of polycrystalline graphite. Carbon
6, 537–544 (1968)
2. G. Cui, Q. Bi, S. Zhu, J. Yang, W. Liu, Tribological properties of bronze–graphite composites
under sea water condition. Tribol. Int. 53, 76–86 (2012)
3. C. Ayache, I.L. Spain, Thermoelectric and thermomagnetic properties of graphite—I: The
cylindrical band model. Carbon 17, 277–291 (1979)
4. J.H. Lee, Y.H. Kang, S.C. Hwang, J.B. Shim, E.H. Kim, S.W. Park, Application of graphite as
a cathode material for electrorefining of uranium. Nucl. Technol. 162, 135–143 (2008)
5. D. Wang, X. Jina, G.Z. Chen, Solid state reactions: An electrochemical approach in molten
salts. Annu. Rep. Prog. Chem. Sect. C 104, 189–234 (2008)
6. P. Hejzlar, B.T. Mattingly, N.E. Todreas, M.J. Driscoll, Advanced fuel elements for passive
pressure tube light water reactors. Nucl. Eng. Des. 167, 375–392 (1997)
7. J. Uhlir, Chemistry and technology of Molten Salt Reactors—history and perspectives. J. Nucl.
Mater. 360, 6–11 (2007)
8. A. Cammi, V. Di Marcello, L. Luzzi, V. Memoli, M.E. Ricotti, A multi-physics modelling
approach to the dynamics of Molten Salt Reactors. Ann. Nucl. Energy 38, 1356–1372 (2011)
9. K. Nagarajan, B.P. Reddy, S. Ghosh, G. Ravisankar, K.S. Mohandas, U.K. Mudali et al.,
Development of pyrochemical reprocessing for spent metal fuels. Energy Procedia 7, 431–436
(2011)
10. V. Bernardet, S. Gomes, S. Delpeux, M. Dubois, K. Guérin, D. Avignant D et al., Protection
of nuclear graphite toward fluoride molten salt by glassy carbon deposit. J. Nucl. Mater. 384,
292–302 (2009)
11. J. Sure, A.R. Shankar, S. Ramya, U.K. Mudali, Molten salt corrosion of high density graphite
and partially stabilized zirconia coated high density graphite in molten LiCl–KCl salt. Ceram.
Int. 38, 2803–2812 (2012)
12. A. Rezaei, A.R. Kamali, Green production of carbon nanomaterials in molten salts, mechanisms
and applications. Diam. Relat. Mater. 83, 146–161 (2018)
13. A.R. Kamali, D.J. Fray, Electrochemical interaction between graphite and molten salts to
produce nanotubes, nanoparticles, graphene and nanodiamonds. J. Mater. Sci. 51, 569–576
(2016)
14. A.R. Kamali, D.J. Fray, Molten salt corrosion of graphite as a possible way to make carbon
nanostructures. Carbon 56, 121–131 (2013)
15. A.R. Kamali, D.J. Fray, C. Schwandt, Thermokinetic characteristics of lithium chloride. J.
Therm. Anal. Calorim. 104, 619–626 (2011)
16. J.I. Langford, A.J.C. Wilson, Scherrer after sixty years: A survey and some new results in the
determination of crystallite size. J. Appl. Crystallogr. 11, 102–113 (1978)
17. A.R. Kamali, C. Schwandt, D.J. Fray, On the oxidation of electrolytic carbon nanomaterials,
Corros. Sci. 54, 307–313 (2012)
18. A.R. Kamali, G. Divitini, C. Schwandt, D.J. Fray, Correlation between microstructure and
thermokinetic characteristics of electrolytic carbon nanomaterials. Corros. Sci. 64, 90–97
(2012)
19. W.W. Liu, S.P. Chai, A.R. Mohamed, U. Hashim, Synthesis and characterization of graphene
and carbon nanotubes: A review on the past and recent developments. J. Ind. Eng. Chem. 20,
1171–1185 (2014)
20. M.S. Dresselhaus, A. Jorio, R. Saito R. characterizing graphene, graphite, and carbon nanotubes
by Raman spectroscopy, Annu. Rev. Cond. Mat. Phys. 1, 89–108 (2010)
21. Q.Q. Dillon, J.A. Woollam, V. Katkanant, Use of Raman scattering to investigate disorder and
crystallite formation in as-deposited and annealed carbon films. Phys. Rev. B 29, 3482–3489
(1984)
22. N.C. Cho, D.K. Veirs, J.W. Ager, M.D. Rubin, C.B. Hooper, D.B. Bogy, Effects of substrate
temperature on chemical structure of amorphous carbon films. J. Appl. Phys. 71, 2243–2248
(1992)
