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Bipolar stacked quasi-all-solid-state lithium secondary batteries with output cell potentials of over 6?V

机译:双极堆叠准全固态锂二次电池,输出电池电势超过6?V

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Designing a lithium ion battery (LIB) with a three-dimensional device structure is crucial for increasing the practical energy storage density by avoiding unnecessary supporting parts of the cell modules. Here, we describe the superior secondary battery performance of the bulk all-solid-state LIB cell and a multilayered stacked bipolar cell with doubled cell potential of 6.5?V, for the first time. The bipolar-type solid LIB cell runs its charge/discharge cycle over 200 times in a range of 0.1–1.0 C with negligible capacity decrease despite their doubled output cell potentials. This extremely high performance of the bipolar cell is a result of the superior battery performance of the single cell; the bulk all-solid-state cell has a charge/discharge cycle capability of over 1500 although metallic lithium and LiFePO4 are employed as anodes and cathodes, respectively. The use of a quasi-solid electrolyte consisting of ionic liquid and Al2O3 nanoparticles is considered to be responsible for the high ionic conductivity and electrochemical stability at the interface between the electrodes and the electrolyte. This paper presents the effective applications of SiO2, Al2O3, and CeO2 nanoparticles and various Li+ conducting ionic liquids for the quasi-solid electrolytes and reports the best ever known cycle performances. Moreover, the results of this study show that the bipolar stacked three-dimensional device structure would be a smart choice for future LIBs with higher cell energy density and output potential. In addition, our report presents the advantages of adopting a three-dimensional cell design based on the solid-state electrolytes, which is of particular interest in energy-device engineering for mobile applications.
机译:设计具有三维设备结构的锂离子电池(LIB)对于通过避免不必要的电池模块支撑部分来提高实际能量存储密度至关重要。在这里,我们首次描述了块状全固态LIB电池和具有6.5?V的双倍电池电势的多层堆叠双极电池的优异二次电池性能。双极型固体LIB电池在0.1–1.0 C的温度范围内可进行200次充电/放电循环,尽管输出电势增加了一倍,但容量下降却微不足道。双极电池的这种极高的性能是单电池出色的电池性能的结果。尽管金属锂和LiFePO 4 分别用作阳极和阴极,但大块全固态电池具有超过1500的充电/放电循环能力。人们认为,使用由离子液体和Al 2 O 3 纳米粒子组成的准固体电解质可导致高电导率和电化学稳定性。电极和电解质。本文介绍了SiO 2 ,Al 2 O 3 和CeO 2 纳米粒子以及各种Li的有效应用。 + 用于准固体电解质的离子液体,并报告了迄今为止已知的最佳循环性能。此外,这项研究的结果表明,对于具有更高电池能量密度和更高输出潜力的未来LIB,双极堆叠式三维器件结构将是明智的选择。此外,我们的报告还提出了采用基于固态电解质的三维电池设计的优势,这在移动应用的能源设备工程中尤为重要。

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