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Gel polymer electrolyte lithium-ion cells with improved low temperature performance

机译:具有改善的低温性能的凝胶聚合物电解质锂离子电池

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For a number of NASA's future planetary and terrestrial applications, high energy density rechargeable lithium batteries that can operate at very low temperature are desired. In the pursuit of developing Li-ion batteries with improved low temperature performance, we have also focused on assessing the viability of using gel polymer systems, due to their desirable form factor and enhanced safety characteristics. In the present study we have evaluated three classes of promising liquid low-temperature electrolytes that have been impregnated into gel polymer electrolyte carbon-LiMn_2O_4-based Li-ion cells (manufactured by LG Chem. Inc.), consisting of: (a) binary EC + EMC mixtures with very low EC-content (10%), (b) quaternary carbonate mixtures with low EC-content (16-20%), and (c) ternary electrolytes with very low EC-content (10%) and high proportions of ester co-solvents (i.e., 80%). These electrolytes have been compared with a baseline formulation (i.e., 1.0 M LiPF_6 in EC + DEC + DMC (1:1:1%, v/v/v), where EC, ethylene carbonate, DEC, diethyl carbonate, and DMC, dimethyl carbonate). We have performed a number of characterization tests on these cells, including: determining the rate capacity as a function of temperature (with preceding charge at room temperature and also at low temperature), the cycle life performance (both 100% DOD and 30% DOD low earth orbit cycling), the pulse capability, and the impedance characteristics at different temperatures. We have obtained excellent performance at low temperatures with ester-based electrolytes, including the demonstration of > 80% of the room temperature capacity at -60℃ using a C/20 discharge rate with cells containing 1.0 M LiPF_6 in EC + EMC + MB (1:1:8%, v/v/v) (MB, methyl butyrate) and 1.0M LiPF_6 in EC + EMC + EB (1:1:8%, v/v/v) (EB, ethyl butyrate) electrolytes. In addition, cells containing the ester-based electrolytes were observed to support 5C pulses at -40℃, while still maintaining a voltage > 2.5 V at 100 and 80% state-of-charge (SOC).
机译:对于许多NASA未来的行星和地面应用,需要能够在非常低的温度下运行的高能量密度可充电锂电池。在追求开发具有改善的低温性能的锂离子电池时,由于它们具有理想的形状因数和增强的安全性,我们还专注于评估使用凝胶聚合物系统的可行性。在本研究中,我们评估了三类有前途的液态低温电解质,它们已浸渍到凝胶聚合物电解质碳-LiMn_2O_4基的锂离子电池(由LG Chem。Inc.制造)中,包括:(a)二元EC含量极低(10%)的EC + EMC混合物,(b)EC含量极低(16-20%)的季碳酸盐混合物以及(c)EC含量极低(10%)的三元电解质和高比例的酯助溶剂(即80%)。这些电解质已与基准配方(即EC + DEC + DMC中的1.0 M LiPF_6(1:1:1%,v / v / v))进行了比较,其中EC,碳酸亚乙酯,DEC,碳酸二乙酯和DMC,碳酸二甲酯)。我们已经对这些电池进行了许多表征测试,包括:确定速率容量与温度的函数关系(室温和低温下均需预先充电),循环寿命性能(100%DOD和30%DOD)低地球轨道循环),脉冲能力和不同温度下的阻抗特性。我们使用酯基电解质在低温下获得了出色的性能,包括在C / 20放电速率下,在EC + EMC + MB中包含1.0 M LiPF_6的电池中,证明了在-60℃室温下> 80%的室温容量。 1:1:8%,v / v / v)(MB,丁酸甲酯)和1.0M LiPF_6在EC + EMC + EB(1:1:8%,v / v / v)(EB,丁酸乙酯)电解质中。此外,观察到含有酯基电解质的电池在-40℃时可支持5C脉冲,而在100%和80%的荷电状态(SOC)时仍保持> 2.5 V的电压。

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