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Design of a Porous Cathode for Ultrahigh Performance of a Li-ion Battery: An Overlooked Pore Distribution

机译:用于锂离子电池超高性能的多孔阴极的设计:覆盖的孔隙分布

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Typical cathode materials of Li-ion battery suffer from a severe loss in specific capacity, and this problem is regarded as a major obstacle in the expansion of newer applications. To overcome this, porous cathodes are being extensively utilized. However, although it seems that the porosity in the cathode would be a panacea for high performance of LIBs, there is a blind point in the cathode consisting of porous structures, which makes the porous design to be a redundant. Here, we report the importance of designing the porosity of a cathode in obtaining ultrahigh performance with the porous design or a degraded performance even with increase of porosity. Numerical simulations show that the cathode with 40% porosity has 98% reduction in the loss of specific capacity when compared to the simple spherical cathode when the C-rate increases from 2.5 to 80?C. In addition, the loss over total cycles decreases from 30% to only about 1% for the cathode with 40% porosity under 40?C. Interestingly, however, the specific capacity could be decreased even with the increase in porosity unless the pores were evenly distributed in the cathode. The present analysis provides an important insight into the design of ultrahigh performance cathodes.
机译:锂离子电池的典型阴极材料遭受特定容量的严重损失,并且该问题被认为是较新应用的扩展中的主要障碍。为了克服这一点,广泛利用多孔阴极。然而,尽管似乎阴极中的孔隙率为Libs的高性能的灵涂,但是阴极中的盲点包括多孔结构,这使得多孔设计是冗余的。在这里,我们报告了设计阴极孔隙率的重要性,即使孔隙率的增加,也能用多孔设计获得超高性能或降低的性能。数值模拟表明,当C速率从2.5升至80Ω·C时,具有40%孔隙率的阴极在与简单的球形阴极相比的比较时的损失有98%。此外,对于40%孔隙度以下40%孔隙率的阴极,总循环的损失从30%降低至仅约1%。然而,有趣的是,即使在孔隙率的增加,除非孔均匀分布在阴极中,甚至可以降低特定容量。本分析提供了对超高性能阴极设计的重要见解。

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