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YAMAMOTO 2 Solid electrolyte batteries

In 1968, Argue and Owens reported the advanced solid electrolyte cell, [Pg.295]

4Ag + 2Rbl3 = 3AgI + RbjAglj. Above 27 °C, the reaction would be [Pg.295]

More recently, Takada, Kanbara, Yamamura and Kondo (1990) have [Pg.295]

Ag VjOj is a vanadium bronze with a composition range of 0.3 x 1.0, the bronze with x = 0.29-0.41 has the / -phase structure and that with X = 0.67-0.89 the 5-phase one. The 5-phase shows good reversibility for silver intercalation and deintercalation. The typical charge-discharge curves at a constant current of 0.3 mA cm for cell [11.3] are shown in Fig. 11.3. No significant deterioration was observed for several hundred [Pg.296]

The structure of the copper Chevrel phase is shown in Fig. 7.7. It is based on Mo Sg building blocks which stack in three dimensions. A [Pg.299]


Hagenmuller P, Van Gool W (eds) (1978) Solid electrolytes. Academic, New York Huggins RA (2009) Advanced batteries. Springer, New York Maier J (2004) Physical chemistry of ionic materials. Wiley, Chichester Rieger PH (1994) Electrochemistry, vol 2. Chapman and Hall, New York Wakihara M, Yamamoto O (eds) (1998) Lithium ion batteries. VCH, Weinheim Zhang SS (ed) (2007) Advanced materials and methods for lithium-ion batteries. Transworld Research Network, Trivandrum... [Pg.92]

Kotobuki, M., Suzuki, Y Munakata, H Kanamura, K., Sato, Y Yamamoto, K., and Yoshida, T. (2011) Effect of sol composition on solid electrode/solid electrolyte interface for all-solid-state lithium ion battery. Electrochim. Acta,... [Pg.1115]

S. Kondo, All solid-state lithium secondary battery with highly ion conductive glassy electrolyte, in M. Wakihara, O. Yamamoto, (eds.). Lithium Ion Batteries Fundamentals and Performance, Wiley-VCH, 1998, pp. 199-217. [Pg.220]


See other pages where YAMAMOTO 2 Solid electrolyte batteries is mentioned: [Pg.334]    [Pg.293]    [Pg.398]    [Pg.403]    [Pg.297]    [Pg.789]    [Pg.580]    [Pg.210]   


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