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首页> 外文期刊>Nature Materials >Cycle stability of conversion-type iron fluoride lithium battery cathode at elevated temperatures in polymer electrolyte composites
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Cycle stability of conversion-type iron fluoride lithium battery cathode at elevated temperatures in polymer electrolyte composites

机译:聚合物电解质复合材料中转化型氟化铁锂电池正极在高温下的循环稳定性

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摘要

Metal fluoride conversion cathodes offer a pathway towards developing lower-cost Li-ion batteries. Unfortunately, such cathodes suffer from extremely poor performance at elevated temperatures, which may prevent their use in large-scale energy storage applications. Here we report that replacing commonly used organic electrolytes with solid polymer electrolytes may overcome this hurdle. We demonstrate long-cycle stability for over 300 cycles at 50 degrees C attained in high-capacity (>450 mAh g(-1)) FeF2 cathodes. The absence of liquid solvents reduced electrolyte decomposition, while mechanical properties of the solid polymer electrolyte enhanced cathode structural stability. Our findings suggest that the formation of an elastic, thin and homogeneous cathode electrolyte interphase layer on active particles is a key for stable performance. The successful operation of metal fluorides at elevated temperatures opens a new avenue for their practical applications and future successful commercialization.
机译:金属氟化物转换阴极为开发低成本锂离子电池提供了一条途径。不幸的是,这种阴极在高温下的性能极差,这可能阻止它们在大规模能量存储应用中的使用。在这里,我们报道用固体聚合物电解质代替常用的有机电解质可以克服这一障碍。我们展示了在高容量(> 450 mAh g(-1))FeF2阴极在50摄氏度下超过300个循环的长循环稳定性。液体溶剂的缺乏减少了电解质的分解,而固体聚合物电解质的机械性能提高了阴极的结构稳定性。我们的发现表明,在活性颗粒上形成弹性,薄而均匀的阴极电解质相间层是稳定性能的关键。金属氟化物在高温下的成功运行为其实际应用和未来的成功商业化开辟了一条新途径。

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