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Investigation of the ionic conduction mechanism of composite poly(ethyleneoxide) PEO-based polymer gel electrolytes including nano-size SiO2

TitoloInvestigation of the ionic conduction mechanism of composite poly(ethyleneoxide) PEO-based polymer gel electrolytes including nano-size SiO2
Tipo di pubblicazioneArticolo su Rivista peer-reviewed
Anno di Pubblicazione2002
AutoriAihara, Y., Appetecchi Giovanni Battista, Scrosati B., and Hayamizu K.
RivistaPhysical Chemistry Chemical Physics
Volume4
Paginazione3443-3447
ISSN14639076
Parole chiavearticle, carbonic acid derivative, diethylcarbonate, diffusion, Electrochemistry, electrolyte, Energy, ethylenecarbonate, Gel, ion conductance, ion transport, lithium derivative, lithium tetrafluoroborate, macrogol, measurement, Membrane, Nuclear magnetic resonance, polymer, Silicon Dioxide, unclassified drug, weight
Abstract

New types of polymer gel electrolytes have been prepared by swelling, in a mixed solvent of ethylenecarbonate (EC) and diethylcarbonate (DEC), a membrane composed of a 4 × 106 molecular weight linear poly(ethyleneoxide) (PEO) with the addition of lithium tetrafluoroborate (LiBF4) and fumed silica. The swelling procedure led to a membrane weight increase of 350%. These swelled membranes are optically and macroscopically homogeneous and show high ionic conductivity combined with low activation energy for lithium ion transport. The role of the solvents, the structures of the ions and of the matrix polymer in these swelled gel electrolytes have been investigated by pulsed gradient spin echo (PGSE) NMR measurements. The values of the self-diffusion coefficients suggest that the BF4 - anion diffuses faster than the Li+ ion due to the interaction of the latter with the polymer gel matrix. The effects of fumed silica on the ion diffusions are also discussed.

Note

cited By 16

URLhttps://www.scopus.com/inward/record.uri?eid=2-s2.0-0036308883&doi=10.1039%2fb201991b&partnerID=40&md5=6f46ed2010f831fcdef7c763a3256bbf
DOI10.1039/b201991b
Citation KeyAihara20023443