为高能量密度锂离子电池设计具有稳定原位聚合物电解质界面的介结构铁 (II) 氟化物

IF 42.9 Q1 ELECTROCHEMISTRY
Lidong Sun , Yong Wang , Lingchen Kong , Shaoshan Chen , Cong Peng , Jiahui Zheng , Yu Li , Wei Feng
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引用次数: 0

摘要

作为高能正极材料,转换型金属氟化物为开发下一代锂离子电池提供了一条前景广阔的途径。然而,由于在循环过程中结构持续破坏和活性材料溶解,它们的性能衰减严重,在温度升高时情况更加恶化。在此,我们设计了一种新型 FeF2 阴极,并采用原位聚合固态电解质系统,以增强金属氟化物在 60 °C 下的循环能力。具有介孔结构(meso-FeF2)的新型 FeF2 改善了 Li+ 的扩散,缓解了通常在交替转换反应中发生的体积变化。原位聚合固态电解质增强了介孔 FeF2 阴极的结构稳定性,防止了传统液态电解质不可避免的粉碎和离子溶解现象。在这种原位聚合固态电解质和介质 FeF2 的介孔结构的双重作用下,活性材料在长时间充放电循环后仍能保持完整的 SEI 层和部分介孔结构,在高温下表现出优异的循环稳定性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Designing mesostructured iron (II) fluorides with a stable in situ polymer electrolyte interface for high-energy-density lithium-ion batteries

Designing mesostructured iron (II) fluorides with a stable in situ polymer electrolyte interface for high-energy-density lithium-ion batteries

Designing mesostructured iron (II) fluorides with a stable in situ polymer electrolyte interface for high-energy-density lithium-ion batteries

As high-energy cathode materials, conversion-type metal fluorides provide a prospective pathway for developing next-generation lithium-ion batteries. However, they suffer from severe performance decay owing to continuous structural destruction and active material dissolution upon cycling, which worsen at elevated temperatures. Here, we design a novel FeF2 cathode with in situ polymerized solid-state electrolyte systems to enhance the cycling ability of metal fluorides at 60 ​°C. Novel FeF2 with a mesoporous structure (meso-FeF2) improves Li+ diffusion and relieves the volume change that typically occurs during the alternating conversion reactions. The structural stability of the meso-FeF2 cathode is strengthened by an in situ polymerized solid-state electrolyte, which prevents the pulverization and ion dissolution that are inevitable for conventional liquid electrolytes. Under the double action of this in situ polymerized solid-state electrolyte and the meso-FeF2's mesoporous structure, the active material maintains an intact SEI layer and part of the mesoporous structure after long charge–discharge cycling, showing excellent cycling stability at high temperatures.

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