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Abstrakty
Boron-, tin- and antimony-based graphite composites were studied as the potential materials for negative electrodes in lithium-ion batteries. The materials were prepared by reactive milling the mixtures of graphite (90 wt%) with boron nitride (10 wt%), tin (10 wt%) or antimony (10 wt%). Milling was performed during 2h, 4h, 6h and 8h. The composites were characterized by X-ray diffraction and nitrogen adsorption at 77K (BET). A gradual development of surface area with milling was observed as well as an appearance of amorphous form. The galvanostatic characteristics of lithium insertion/deinsertion for these new composite materials were investigated. The graphite-tin composites exhibit the best reversible capacity. Modification by milling leads to a significant particle size reduction, good association of metallic phase with graphite crystal grains and, in consequence, to an increase of the reversible capacity. However, a significant enhancement of the irreversible capacity for the composites is also observed due to the development of specific surface area.
Słowa kluczowe
Wydawca
Czasopismo
Rocznik
Tom
Strony
813--820
Opis fizyczny
Bibliogr. 16 poz., rys., tab.
Twórcy
autor
autor
- Central Laboratory of Batteries and Cells, Forteczna 12, 61-362 Poznań, fracko@fct.put.poznan.plfracko@fct.put.poznan.pl
Bibliografia
- [1] GUÉRARD D., HÉROLD A., Carbon, 13 (1975), 337.
- [2] VINCENT C.A., SCROSATI B., Modern Batteries, Wiley, New York, 1997.
- [3] Lithium Ion Batteries – Fundamentals and Performance, M.Wakihara, O.Yamamoto (Eds.), Wiley, New York, 1998.
- [4] DISMA F., AYMARD L., DUPONT L., TARASCON J-M., J. Electrochem. Soc., 143 (1996), 3959.
- [5] CHEVALLIER F., AYMARD L., TARASCON J-M., J. Electrochem. Soc., 148 (2001), A1216.
- [6] AZAIS P., DUCLAUX L., FAUGERE A.-M., BÉGUIN F., Appl. Phys. Lett., 81 (2002), 775.
- [7] WU Y.P., RAHM E., HOLZE R., Electrochim. Acta, 47 (2002), 3491.
- [8] SHIRASAKI T., DERRÉ A., GUÉRIN K., FLANDROIS S., Carbon, 37 (1999), 1961.
- [9] MA X.,WANG Q.,CHEN L.-Q.,CERMIGNANI W., SCHOBERT H.H., PANTANO C.G., Carbon, 35 (1997), 1517.
- [10] MACHNIKOWSKI J., FRACKOWIAK E., KIERZEK K., WASZAK D., BENOIT R., BÉGUIN F., J. Phys. Chem. Solids, 65 (2004), 153.
- [11] FLANDROIS S., SIMON B., Carbon, 37 (1999), 165.
- [12] WU Y.P., RAHM E., HOLZE R., J. Power Sourc., 114 (2003), 228.
- [13] LIU Y., XIE J.Y., YANG J., J. Power Sourc., 119–121 (2003) 572.
- [14] DAILLY A., GHANBAJA J., WILLMANN P., BILLAUD D., Electrochim. Acta, 48 (2003), 977.
- [15] CHEVALLIER F., LETELLIER M., MORCRETTE M., TARASCON J-M., FRACKOWIAK E., ROUZAUD J-N., BÉGUIN F., Electrochem. Solid State Lett., 6 (2003), A225.
- [16] BÉGUIN F., CHEVALLIER F., VIX C., SAADALLAH S., ROUZAUD J-N., FRACKOWIAK E., J. Phys. Chem. Solids, 65 (2004), 211.
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-article-BPW1-0022-0050