Influence of barium titanate nanofiller on PEO/PVdF-HFP blend-based polymer electrolyte membrane for Li-battery applications

Organic-inorganic hybrid membranes based on poly(ethylene oxide) (PEO) 6.25 wt%/poly(vinylidene fluoride hexa fluoro propylene) [P(VdF-HFP)] 18.75 wt% were prepared by using various concentration of nanosized barium titanate (BaTiO 3 ) filler. Structural characterizations were made by X-ray diffract...

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Veröffentlicht in:Journal of solid state electrochemistry 2017-05, Vol.21 (5), p.1273-1285
Hauptverfasser: Prabakaran, Pradeepa, Manimuthu, Ramesh Prabhu, Gurusamy, Sowmya
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Sprache:eng
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Zusammenfassung:Organic-inorganic hybrid membranes based on poly(ethylene oxide) (PEO) 6.25 wt%/poly(vinylidene fluoride hexa fluoro propylene) [P(VdF-HFP)] 18.75 wt% were prepared by using various concentration of nanosized barium titanate (BaTiO 3 ) filler. Structural characterizations were made by X-ray diffraction and Fourier transform infrared spectroscopy, which indicate the inclusion of BaTiO 3 in to the polymer matrix. Addition of filler creates an effective route of polymer-filler interface and promotes the ionic conductivity of the membranes. From the ionic conductivity results, 6 wt% of BaTiO 3 -incorporated composite polymer electrolyte (CPE) showed the highest ionic conductivity (6 × 10 −3  Scm −1 at room temperature). It is found that the filler content above 6 wt% rendered the membranes less conducting. Morphological images reveal that the ceramic filler was embedded over the membrane. Thermogravimetric and differential thermal analysis (TG-DTA) of the CPE sample with 6 wt% of the BaTiO 3 shows high thermal stability. Electrochemical performance of the composite polymer electrolyte was studied in LiFePO 4 /CPE/Li coin cell. Charge-discharge cycle has been performed for the film exhibiting higher conductivity. These properties of the nanocomposite electrolyte are suitable for Li-batteries.
ISSN:1432-8488
1433-0768
DOI:10.1007/s10008-016-3477-z