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Polyaniline graphite oxide

S. Higashika, K. Kimura, Y. Matsuo, and Y. Sugie, Synthesis of polyaniline-intercalated graphite oxide. Carbon, 37, 354—356 (1999). [Pg.287]

P. Xiao, M. Xiao, P. Liu, and K. Gong, Direct synthesis of a polyaniline-intercalated graphite oxide nanocomposite. Carbon, 38, 626-641 (2000). [Pg.288]

Liu, P.G., Gong, K.C., 1999. S5mthesis of polyaniline-intercalated graphite oxide by an in situ oxidative polymerization reaction. Carbon 37, 706—707. [Pg.229]

ZnO displays similar redox and alloying chemistry to the tin oxides on Li insertion [353]. Therefore, it may be an interesting network modifier for tin oxides. Also, ZnSnOs was proposed as a new anode material for lithium-ion batteries [354]. It was prepared as the amorphous product by pyrolysis of ZnSn(OH)6. The reversible capacity of the ZnSn03 electrode was found to be more than 0.8 Ah/g. Zhao and Cao [356] studied antimony-zinc alloy as a potential material for such batteries. Also, zinc-graphite composite was investigated [357] as a candidate for an electrode in lithium-ion batteries. Zinc parhcles were deposited mainly onto graphite surfaces. Also, zinc-polyaniline batteries were developed [358]. The authors examined the parameters that affect the life cycle of such batteries. They found that Zn passivahon is the main factor of the life cycle of zinc-polyaniline batteries. In recent times [359], zinc-poly(anihne-co-o-aminophenol) rechargeable battery was also studied. Other types of batteries based on zinc were of some interest [360]. [Pg.751]

Shaidarova, L. G., A. V. Gedmina, I. A. Chelnokova, and G. K. Budnikov. 2006. Electrocatalytic oxidation and flow-injection determination of ascorbic acid at a graphite electrode modified with a polyaniline film containing electrodeposited palladium./. Anal. Chem. 61 601-608. [Pg.348]


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