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首页> 外文期刊>Journal of Materials Chemistry, A. Materials for energy and sustainability >An advanced construction strategy of all-solid-state lithium batteries with excellent interfacial compatibility and ultralong cycle life
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An advanced construction strategy of all-solid-state lithium batteries with excellent interfacial compatibility and ultralong cycle life

机译:全固态锂电池的先进建设策略,具有优异的界面兼容性和超龙循环寿命

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摘要

The inferior cycle performance of All-solid-state lithium batteries (ASSLBs) resulting from the low mixed ionic and electronic conductivity in the electrodes, as well as the large interfacial resistance between the electrodes and the electrolyte need to be overcome urgently for commercial applications. Here, an advanced cell construction strategy has been proposed, in which a cohesive and highly conductive poly(oxyethylene) (PEO)-based electrolyte is employed both in the cathode layer and in the interface of the electrolyte/anode, leading to an ASSLB with superior interfacial contact between the electrolyte and the electrodes, and forming a three-dimensional ionic conductive network in the cathode layer. Especially, the NASICON-type ionic conductor covered with the PEO-based polymer, integrating the advantages of an inorganic electrolyte and organic electrolyte, presents an enhanced electrochemical stability and an excellent compatibility with the Li electrode. Consequently, the ASSLBs of LiFePO4 (LFP)/Li with this advanced construction strategy exhibit excellent interfacial compatibility, ultralong cycle life and high capacity, i. e., a reversible discharge capacity maintained at 127.8 mA h g(-1) for the 1000th cycle at 1C with a retention of 96.6%, and an initial discharge capacity of 153.4 mA h g(-1) with a high retention of 99.9% after 200 cycles at 0.1C. Besides, the high-voltage monopolar stacked batteries with a bipolar structure can be fabricated conveniently, showing an open circuit voltage (OCV) of 6.63 V with a good cycle performance. In particular, the ASSLBs present outstanding safety in terms of nail penetration and burning in fire. Therefore, this advanced cell construction strategy may generate tremendous opportunities in the search for novel emerging solid-state lithium metal batteries.
机译:由电极低混合离子和电子电导率产生的全固态锂电池(Asslbs)的下循环性能,以及电极和电解质之间的大界面电阻需要迫切地用于商业应用。这里,已经提出了一种先进的细胞构造策略,其中在阴极层和电解质/阳极的界面中使用粘性和高导电聚(氧乙烯)(PEO)的电解质,导致ASSLB电解质和电极之间的卓越界面接触,并在阴极层中形成三维离子导电网络。特别地,用PEO基聚合物覆盖的Nasicon型离子导体,整合无机电解质和有机电解质的优点,具有增强的电化学稳定性和与Li电极的优异相容性。因此,具有这种先进的建筑策略的LiFepo4(LFP)/ Li的Asslbs表现出优异的界面互补性,超强循环寿命和高容量,即即,可逆放电容量保持在127.8 mA Hg(-1)的1c循环,保留为96.6%,初始放电容量为153.4 mA hg(-1),高保留为99.9% 200次0.1℃。此外,具有双极结构的高压单极堆叠电池可以方便地制造,显示6.63 V的开路电压(OCV),循环性能良好。特别是,ASSLBS在指甲渗透和火灾中燃烧的卓越安全性。因此,这种先进的细胞建设策略可能会在寻找新出现的固态锂金属电池中产生巨大的机会。

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    Chinese Acad Sci Ningbo Inst Mat Technol &

    Engn Ningbo 315201 Zhejiang Peoples R China;

    Chinese Acad Sci Ningbo Inst Mat Technol &

    Engn Ningbo 315201 Zhejiang Peoples R China;

    Chinese Acad Sci Ningbo Inst Mat Technol &

    Engn Ningbo 315201 Zhejiang Peoples R China;

    Chinese Acad Sci Ningbo Inst Mat Technol &

    Engn Ningbo 315201 Zhejiang Peoples R China;

    Chinese Acad Sci Ningbo Inst Mat Technol &

    Engn Ningbo 315201 Zhejiang Peoples R China;

    Chinese Acad Sci Ningbo Inst Mat Technol &

    Engn Ningbo 315201 Zhejiang Peoples R China;

    Chinese Acad Sci Ningbo Inst Mat Technol &

    Engn Ningbo 315201 Zhejiang Peoples R China;

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  • 正文语种 eng
  • 中图分类 工程材料学;
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