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Cathode porosity is a missing key parameter to optimize lithium-sulfur battery energy density

机译:阴极孔隙度是优化锂硫电池能量密度的关键参数

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摘要

While high sulfur loading has been pursued as a key parameter to build realistic high-energy lithium-sulfur batteries, less attention has been paid to the cathode porosity, which is much higher in sulfur/carbon composite cathodes than in traditional lithium-ion battery electrodes. For high-energy lithium-sulfur batteries, a dense electrode with low porosity is desired to minimize electrolyte intake, parasitic weight, and cost. Here we report the profound impact on the discharge polarization, reversible capacity, and cell cycling life of lithium-sulfur batteries by decreasing cathode porosities from 70 to 40%. According to the developed mechanism-based analytical model, we demonstrate that sulfur utilization is limited by the solubility of lithium-polysulfides and further conversion from lithium-polysulfides to Li2S is limited by the electronically accessible surface area of the carbon matrix. Finally, we predict an optimized cathode porosity to maximize the cell level volumetric energy density without sacrificing the sulfur utilization.
机译:尽管已将高硫负荷作为构建现实的高能锂硫电池的关键参数,但对阴极孔隙率的关注却很少,与传统锂离子电池电极相比,硫/碳复合阴极的孔隙率要高得多。对于高能锂硫电池,期望具有低孔隙率的致密电极以最小化电解质摄入,寄生重量和成本。在这里,我们通过将阴极孔隙率从70%降低到40%,对锂-硫电池的放电极化,可逆容量和电池循环寿命产生了深远影响。根据已开发的基于机理的分析模型,我们证明了硫的利用受到锂-多硫化物的溶解度的限制,并且从锂-多硫化物到Li2S的进一步转化受到碳基质的电子可及表面积的限制。最后,我们预测了一个优化的阴极孔隙率,可以在不牺牲硫利用率的情况下最大化电池单元的体积能量密度。

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