Article ID | Journal | Published Year | Pages | File Type |
---|---|---|---|---|
7873474 | Synthetic Metals | 2018 | 9 Pages |
Abstract
A polypyrrole/montmorillonite-polyvinylidenedifluoride/polymethyl methacrylate (PPy/MMT-PVDF/PMMA) composite film was prepared by a solvent casting technique. The surface morphology and cross-sectional structure of the 12â¯wt.% PPy/MMT-PVDF/PMMA composite film exhibited porosity with high specific surface area and good adsorption capacity. The 12â¯wt.% PPy/MMT-PVDF/PMMA composite film shows good electrolyte uptake (241%) and electrochemical stability. The ionic conductivity of the 12â¯wt.% PPy/MMT-PVDF/PMMA composite film with LiPF6 organic electrolyte reaches 2.45â¯Ãâ¯10â3 Sâ¯cmâ1 at 20â¯Â°C. The Li/LiNi1/3Co1/3Mn1/3O2 cell assembled with the 12â¯wt.% PPy/MMT-PVDF/PMMA composite film and LiPF6 organic electrolyte exhibits good capacity retention and cycling performance at 1 C and 60â¯Â°C. At the same time, the nucleophilic substitution reacts with the PPy/MMT-PVDF/PMMA composite film and HF from hydrolysis by trace moisture of LiPF6 in the electrolyte solution, which can inhibit the disproportionation of Mn3+ in the LiNi1/3Co1/3Mn1/3O2 electrode material and decrease the internal resistance of the cell at high temperature. In conclusion, the PPy/MMT-PVDF/PMMA composite film can be employed in Li-ion batteries.
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Authors
Shuo Yang, Xuan Li, Huijun Li, Pei Yao,