Boyi Pang, Huanxin Li, Yiming Guo, Bochen Li, Feiran Li, Huw C W Parks, Liam R Bird, Thomas S Miller, Paul R Shearing, Rhodri Jervis, James B Robinson
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引用次数: 0
摘要
锂硫电池为先进的储能技术提供了较高的理论能量密度,但由于多硫化物穿梭效应和传统阴极中缓慢的动力学,阻碍了锂硫电池的实际应用。在这里,我们通过将Li₁₀GeP₂S₁₂(一种高离子导电性的固态电解质)直接集成到正极中来开发高速率硫阴极。我们系统地研究了溶剂体系和粘结剂对电化学性能的影响,同时优化了浆料铸造工艺。电化学测试表明,Li₁₀GeP₂S₁₂的加入改善了锂离子传输,降低了内阻,增强了反应动力学,从而获得了超过1400 mAh g-1的高初始容量。我们观察到高电流密度(1c)下的高容量保持,正极的稳定容量为800 mAh g-1,显著优于不含Li₁₀GeP₂S₁₂的对照样品。这项研究证实,将Li₁₀GeP₂S₁₂整合到正极中可以增强准固态锂硫电池的性能,为未来基于优化正极中锂离子导电途径的改进提供了潜力。
A quasi-solid-state high-rate lithium sulfur positive electrode incorporating Li10GeP2S12.
Lithium-sulfur batteries offer high theoretical energy density for advanced energy storage, but practical deployment is hindered by the polysulfide shuttle effect and sluggish kinetics in conventional catholytes. Here, we develop a high-rate sulfur cathode by integrating Li₁₀GeP₂S₁₂, a highly ion-conductive solid-state electrolyte, directly into the positive electrode. We systematically investigate the influence of solvent systems and binders on electrochemical performance, while optimising the slurry casting process. Electrochemical tests demonstrate that the addition of Li₁₀GeP₂S₁₂ improved lithium-ion transport, reduced internal resistance, and enhanced reaction kinetics, leading to a high initial capacity of over 1400 mAh g-1. We observe high-capacity retention at high current densities (1 C) with the positive electrode exhibiting a stable capacity of 800 mAh g-1, significantly outperforming control samples fabricated without Li₁₀GeP₂S₁₂. This study confirms that the integration of Li₁₀GeP₂S₁₂ into the positive electrode enhances the performance of quasi-solid-state lithium-sulfur batteries, offering potential for future improvements based on the optimisation of lithium-ion conducting pathways in the positive electrode.
期刊介绍:
Communications Materials, a selective open access journal within Nature Portfolio, is dedicated to publishing top-tier research, reviews, and commentary across all facets of materials science. The journal showcases significant advancements in specialized research areas, encompassing both fundamental and applied studies. Serving as an open access option for materials sciences, Communications Materials applies less stringent criteria for impact and significance compared to Nature-branded journals, including Nature Communications.