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Morphology lithium polymer batteries

Conductive Polymers. EFTEM was used to follow the distribution of ions inside me polymer and me ion-exchange processes as well as to study me elemental distributions in the polymer nanofibers [124], me distribution of lithium ions in solid copolymer electrolytes for limium batteries [125] and me particle morphology of copolymers [116]. [Pg.415]

The electrolyte can be fabricated in the form of a thin solid film, thereby eliminating the need of a separator element requirement. The very thin electrolyte, combined with a thin electrode structures, could allow electrode high rate performance and improved lithium everlasting morphology. The possibility of greater intrinsic safety combined with improved rate capability makes the polymer electrolyte battery system a viable candidate for a high-performance battery. Major advantages of polymer electrolyte batteries can be summarized as follows ... [Pg.32]

In the 1980s, several authors proposed the use of composite polymer electrolytes. The solutions they proposed depended on the electrochemical application, i.e. lithium batteries, fuel cells, etc., which determined the properties required. This chapter reviews the development and properties of composite polymer electrolytes used in lithium batteries and proton exchange membrane fuel cells (PEMFC). The effects of fillers on electrolyte properties are discussed in terms of electrochemical performance, and also in terms of polymer matrix morphology and dynamics. Data from the literature are compared in order to determine the effects of the manufacturing... [Pg.129]


See other pages where Morphology lithium polymer batteries is mentioned: [Pg.302]    [Pg.419]    [Pg.357]    [Pg.345]    [Pg.345]    [Pg.117]    [Pg.67]    [Pg.356]    [Pg.1438]    [Pg.419]    [Pg.1031]    [Pg.171]    [Pg.383]    [Pg.380]    [Pg.379]    [Pg.451]    [Pg.95]    [Pg.229]    [Pg.19]    [Pg.652]    [Pg.427]    [Pg.479]    [Pg.129]   


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