Compatibility and conductivity of LiClO4 free and doped polyacrylate – poly(ethylene oxide) blends
Lai Har Sim, Seng Neon Gan, Chin Han Chan, Hans Werner Kammer, Rosiyah Binti Yahya
Abstract
Lai Har Sim, Seng Neon Gan, Chin Han Chan, Hans Werner Kammer, Rosiyah Binti Yahya
Abstract
Thermal behaviour of polyacrylate (PAc)/poly(ethylene oxide) (PEO) and PAc/PEO doped with LiClO4 were investigated by differential scanning calorimetry. The constituents, PAc and PEO, show immiscibility after glass transition temperature T g analysis. The addition of LiClO4 increases the T g's of neat PAc, PEO and their blends. The conductivities at 30°C of PAc, PAc/PEO 40 : 60 doped with 15 wt-% LiClO4 and PEO are 8·3 × 10–10, 1·2 × 10–6 and 7·9 × 10–6 S cm–1 respectively. Reasonably high conductivity of the PAc/PEO/LiClO4 blends makes it a potential polymer electrolyte.
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Thermal behaviour of polyacrylate (PAc)/poly(ethylene oxide) (PEO) and PAc/PEO doped with LiClO4 were investigated by differential scanning calorimetry. The constituents, PAc and PEO, show immiscibility after glass transition temperature T g analysis. The addition of LiClO4 increases the T g's of neat PAc, PEO and their blends. The conductivities at 30°C of PAc, PAc/PEO 40 : 60 doped with 15 wt-% LiClO4 and PEO are 8·3 × 10–10, 1·2 × 10–6 and 7·9 × 10–6 S cm–1 respectively. Reasonably high conductivity of the PAc/PEO/LiClO4 blends makes it a potential polymer electrolyte.
Key concepts: Materials science, Differential scanning calorimetry, Ethylene oxide, Glass transition, Oxide, Polymer, Doping, Chemical engineering