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Lithium highly conductive polymer electrolytes

MURATA K (1995), An overview of the research and development of solid polymer electrolyte batteries , Electrochim Acta, 40 2177-2184 NiSHiMOTO A, WATANABE M, iKEDA Y and KOHJiYA s (1998), High ionic conductivity of new polymer electrolytes based on high molecular weight polyether comb polymers , Electrochim Acta, 43(10-11) 1177-1184 OH B and KIM Y R (1999), Evaluation and characteristics of a blend polymer for a solid polymer electrolyte . Solid State Ionics, 124 83-89 OMATA T and MAKOTO K (1998), Lithium ion-conductive polymer electrolyte and lithium ion battery , European Patent No.0854527 OWENS B B and Osaka t (1997), Panel discussion future prospects of lithium batteries , J Power Sources, 68 173-186... [Pg.580]

The lithium polymer battery (LPB), shown schematically in Fig. 7.21, is an all-solid-state system which in its most common form combines a lithium ion conducting polymer separator with two lithium-reversible electrodes. The key component of these LPBs is the polymer electrolyte and extensive work has been devoted to its development. A polymer electrolyte should have (1) a high ionic conductivity (2) a lithium ion transport number approaching unity (to avoid concentration polarization) (3) negligible electronic conductivity (4) high chemical and electrochemical stability with respect to the electrode materials (5) good mechanical stability (6) low cost and (7) a benign chemical composition. [Pg.219]

Kumar et al. [36] recently published a report on solid-state lithium-air batteries. The lithium-ion, conductive solid electrolyte membrane is based on glass-ceramic (GC) and polymer-ceramic materials. This solid electrolyte is used as the ionic conductive membrane between the lithium electrode and the air electrode. It also is used in the soHd composite air cathode prepared from high-surface-area carbon. The cell exhibited excellent thermal stabihty in the 30-105 °C temperature range... [Pg.784]

Lithium polymer electrolytes formed by dissolving a lithium salt LiX (where X is preferably a large soft anion) in poly(ethylene oxide) PEO can find useful application as separators in lithium rechargeable polymer batteries.Thin films must be used due to the relatively high ionic resistivity of these polymers. For example, the lithium-ion conductivity of PEO—Li salt complexes at 100 °C is still only about Viooth the conductivity of a typical aqueous solution. [Pg.202]

For using lithium batteries (which generally have high energy densities) under extreme conditions, more durable and better conducting electrolytes are necessary. Salt-in-polymer electrolytes discovered by Angell et al. (1993) seem to provide the answer. Polypropylene oxide or polyethylene oxide is dissolved in low melting point mixtures of lithium salts to obtain rubbery materials which are excellent lithium-ion conductors at ambient temperatures. [Pg.436]


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Conductance electrolytes

Conductance, electrolytic

Conductance, electrolytical

Electrolytic conduction

Electrolytic conductivity

Highly conducting polymers

Highly conductive polymer electrolyte

Highly conductive polymer electrolyte solid-state lithium batteries

Lithium conductivity

Lithium electrolyte

Lithium polymer

Polymer electrolyte conducting

Polymer electrolytes conducting polymers

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