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Graphite intercalation compounds stage

Figure 8.16 Layer-plane sequence along the c-axis for graphite in various stage I -5 of alkali-metal graphite intercalation compounds. Comparison with Fig. 8.15 shows that the horizontal planes are being viewed diagonally across the figure. /,. is the interlayer repeat distance along the c-axis. Figure 8.16 Layer-plane sequence along the c-axis for graphite in various stage I -5 of alkali-metal graphite intercalation compounds. Comparison with Fig. 8.15 shows that the horizontal planes are being viewed diagonally across the figure. /,. is the interlayer repeat distance along the c-axis.
Billaud D., Henry F.X., Lelaurain M., and Willmann P. Revisited Structures of Dense and Dillute Stage II Lithium-Graphite intercalate Compounds. J. Phys. Chem Solids, 57, 775-781 (1996). [Pg.246]

Combined with appropriate amorphous carbon precursors graphite intercalation compounds could be used in one-stage process of production of carbon-carbon composites, which could possess attractive properties for such applications as supercapacitors elements, sorbents as well as catalyst supports and materials for energy- and gas-storage systems. [Pg.448]

Figure 8.5 Schematic representation of staging in graphite intercalation compounds (a) third stage (b) second stage and (c) first stage. Figure 8.5 Schematic representation of staging in graphite intercalation compounds (a) third stage (b) second stage and (c) first stage.
Fig. 16.4 Staging n graphite intercalation compounds, C j K Adchtkm of potassium proceeds through = 4.3. 2. to the h lrat in stage I Cij K - C K. From Whillingham, M. S. Dines, M. B. Surr. Prop. Chcm. 1980. 9, 55. Reproduced with permission. ... Fig. 16.4 Staging n graphite intercalation compounds, C j K Adchtkm of potassium proceeds through = 4.3. 2. to the h lrat in stage I Cij K - C K. From Whillingham, M. S. Dines, M. B. Surr. Prop. Chcm. 1980. 9, 55. Reproduced with permission. ...
Ohno, T. and H. Kamimura. 1983. Band structures and charge distributions along the c-axis of higher stage graphite intercalation compounds. J. Phys. Soc. Jpn. 52 223-232. [Pg.259]

Yang, M. H. and P. C. Eklund. 1988. Optical dielectric function of high-stage potassium graphite intercalation compounds Experiment and theory. Phys. Rev. B 38 3505-3516. [Pg.259]

Alstrom, P. 1986. Electronic properties of first-stage heavy alkali metal graphite intercalation compounds. Synth. Metals 15 311-322. [Pg.260]

Gunasekara, N., T. Takahashi, F. Maeda, T. Sagawa, and H. Suematsu. 1988. Angle-resolved ultraviolet photoemission study of first stage alkali-metal graphite intercalation compounds. Z. Phys. B 70 349-355. [Pg.260]

Delhaes P, Manceau KP, Guerard D. Physical properties of first and second stage lithium graphite intercalation compounds. Synth Met 1980 2 277-284. [Pg.499]

Figure 7-7 The various stages of graphite intercalation compounds. The letters A and B refer to the stacking pattern of carbon layers, and the two carbon layers flanking a guest layer are always equivalent, that is, have their carbon atoms superposed. Figure 7-7 The various stages of graphite intercalation compounds. The letters A and B refer to the stacking pattern of carbon layers, and the two carbon layers flanking a guest layer are always equivalent, that is, have their carbon atoms superposed.
Fig. 14. Structural details for the distribution of charges , and solvate acid molecules O in a graphite intercalation compound, first stage. Fig. 14. Structural details for the distribution of charges , and solvate acid molecules O in a graphite intercalation compound, first stage.

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Graphite, intercalation compounds staging

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