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Modelling transport-limited discharge capacity of lithium-sulfur cells

机译:模拟运输限制锂 - 硫电池的放电容量

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摘要

Lithium-sulfur (Li-S) battery could bring a step-change in battery technology with a potential specific energy density of 500 - 600 Wh/kg. A key challenge for further improving the specific energy-density of Li-S cells is to understand the mechanisms behind reduced sulfur utilisation at low electrolyte loadings and high discharge currents. While several Li-S models have been developed to explore the discharge mechanisms of Li-S cells, they so far fail to capture the discharge profiles at high currents. In this study, we propose that the slow ionic transport in concentrated electrolyte is limiting the rate capability of Li-S cells. This transport-limitation mechanism is demonstrated through a one-dimensional Li-S model which qualitatively captures the discharge capacities of a sulfolane-based Li-S cell at different currents. Furthermore, our model predicts that a discharged Li-S cell is able regain some capacity with a short period of relaxation. This capacity recovery phenomenon is validated experimentally for different discharge currents and relaxation durations. The transport-limited discharge behavior of Li-S cells highlights the importance of optimizing the electrolyte loading and electrolyte transport property in Li-S cells.
机译:锂硫(Li-S)电池可以带来潜在的比能量密度为500-600 Wh / kg的电池技术变化。进一步提高Li-S电池的比能量密度的关键挑战是要了解在低电解质负荷和高放电电流下硫利用率降低的机理。尽管已经开发了几种Li-S模型来探索Li-S电池的放电机理,但到目前为止,它们仍无法捕获高电流下的放电曲线。在这项研究中,我们建议在浓电解质中缓慢的离子传输限制了Li-S电池的速率能力。通过一维Li-S模型证明了这种运输限制机制,该模型定性地捕获了环丁砜基Li-S电池在不同电流下的放电容量。此外,我们的模型预测放电的Li-S电池能够在短期内恢复一定容量。对于不同的放电电流和弛豫持续时间,通过实验验证了这种容量恢复现象。 Li-S电池的运输受限放电行为凸显了优化Li-S电池中电解质负荷和电解质运输性能的重要性。

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