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首页> 外文期刊>Advanced energy materials >Understanding the Exceptional Performance of Lithium-Ion Battery Cathodes in Aqueous Electrolytes at Subzero Temperatures
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Understanding the Exceptional Performance of Lithium-Ion Battery Cathodes in Aqueous Electrolytes at Subzero Temperatures

机译:了解零以下温度下锂离子电池阴极在水性电解液中的出色性能

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Lithium-ion batteries with aqueous electrolytes can be excellent candidates for battery applications at low temperatures. In contrast to a common misconception, aqueous lithium ion batteries can operate at several tens of degrees below the freezing point of water when high concentration electrolyte solutions are utilized. Furthermore, it is reported here that the performance of intercalation cathodes in aqueous electrolytes is quite remarkable and superior to that in common organic electrolytes at very low temperatures down to about -40 degrees C. Here in the performance of water-based electrolyte solutions-based on three low-cost inorganic salts (LiNO3, Li2SO4, and LiCl) and that of the corresponding aqueous battery systems is studied in order to understand the rate-limiting step at sub-zero temperatures. It is found that the charge transfer resistance is the largest impedance contributor at low temperatures. However, layered cathodes in aqueous electrolytes do not exhibit a significant increase in the charge-transfer resistance, or a reduction in the accessible capacity during charging until the temperature is close to the solution freezing point. This is in sharp contrast to their behavior in organic electrolytes that do not support any performance below -20 degrees C. This different behavior explains the dramatically superior performance of lithium ion battery cathodes in water-based electrolytes at lower temperatures.
机译:具有水性电解质的锂离子电池可能是低温电池应用的极佳候选者。与常见的误解相反,当使用高浓度电解质溶液时,水性锂离子电池可以在水的冰点以下数十度的温度下工作。另外,据报道,在低至约-40℃的低温下,水性电解质中的嵌入阴极的性能非常显着并且优于普通有机电解质中的嵌入阴极。研究了三种低成本无机盐(LiNO3,Li2SO4和LiCl)以及相应的水性电池系统的盐,以了解低于零温度的限速步骤。发现在低温下电荷转移电阻是最大的阻抗贡献者。然而,直到温度接近溶液凝固点时,水性电解质中的分层阴极才显示电荷转移电阻没有显着增加,或者在充电过程中可及容量没有减少。这与它们在不支持低于-20摄氏度的任何性能的有机电解质中的行为形成鲜明对比。这种不同的行为说明了锂离子电池阴极在较低温度下在水基电解质中的卓越性能。

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