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After 500 cycles at 45 °C, in-plane and through-plane K-values of the high voltage cells reduced less vs. those for the wide voltage cells.
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However, traditional carbonates like EC and EMC have low potential limits, which make them unstable in high-voltage cells.
The interface is tested for a 100-kV high-voltage cell as a case study.
These synergistic coating effects of the multifunctional PI/carbon soft nanomatter significantly improve high-voltage cell performance and also mitigate interfacial exothermic reaction between cathode material and liquid electrolyte.
To reach a high-voltage cell, a hexacyanometallate with less negative redox potential, chromium hexacyanochromate (CrHCC), was employed as the active material of the anode and a hexacyanometallate with high positive redox potential, chromium hexacyanoferrate (CrHCF) was employed as the active material of the cathode.
As a result, the PI wrapping layer played a crucial role in improving the high-voltage cell performance and alleviating the interfacial exothermic reaction between charged LNMO and liquid electrolyte.
The excellent cycling performance in high voltage Li/Li1.15(Ni0.36Mn0.64)0.85O2 cells at elevated temperatures is attributed to the intrinsic oxidative stability and the compact and stable cathode-electrolyte interface (CEI) film derived from E60 electrolyte.
In this study, 1-methyl-1-butylpiperidinium bis trifluoromethanesulfonyl -imide (PP14TFSI)-sulfolane/lithium difluoro(oxalato)bis trifluoromethanesulfonyl -imidewith inherent thermal stability and low flammability are investigated as PP14TFSI -sulfolane/lithiumonventional LiPP14TFSI -sulfolane/lithiumn high voltage Li/Li1.15(Ni0.36Mn0.64)0.85O2 cells at elevatedifluoroatures.
"Thermal runaway occurred in the high voltage battery cells.
Its advantages are low cost, high voltage per cell, and good capacity life.
Together with a high voltage, this cell configuration enables a high energy density of 29 Wh kg−1 at a power density of 5145 W kg−1.
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