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揭示锂硫电池中多硫化锂与锂金属负极之间的反应奥秘。

Unveiling the Reaction Mystery Between Lithium Polysulfides and Lithium Metal Anode in Lithium-Sulfur Batteries.

作者信息

Bi Chen-Xi, Yao Nan, Li Xi-Yao, Zhang Qian-Kui, Chen Xiang, Zhang Xue-Qiang, Li Bo-Quan, Huang Jia-Qi

机构信息

School of Materials Science and Engineering, Beijing Institute of Technology, Beijing, 100081, China.

Advanced Research Institute of Multidisciplinary Science, Beijing Institute of Technology, Beijing, 100081, China.

出版信息

Adv Mater. 2024 Oct;36(41):e2411197. doi: 10.1002/adma.202411197. Epub 2024 Aug 16.

Abstract

Lithium-sulfur (Li-S) batteries are widely regarded as one of the most promising next-generation high-energy-density energy storage devices. However, soluble lithium polysulfides (LiPSs) corrode Li metal and deteriorate the cycling stability of Li-S batteries. Understanding the reaction mechanism between LiPSs and Li metal anode is imperative. Herein, the reaction rate and products of LiPSs with Li metal anode, the composition and structure of the as-generated solid electrolyte interphase (SEI), and the mechanism of lithium nitrate (LiNO) additives for inhibiting the corrosion reactions are systematically unveiled. Concretely, LiPSs react with Li metal anode more rapidly than Li salt and generate a LiS-rich SEI. The LiS-rich SEI is highly reactive with LiPSs, which exacerbates the formation of dendritic Li and the continuous corrosion of active Li. LiNO functions dominantly by modulating the solvation structure of LiPSs and inherently reducing the reactivity of LiPSs, rather than the conventional understanding of LiNO participating in the formation of SEI. This work reveals the reaction mechanism between LiPSs and Li metal anode and inspires rational regulating of the solvation structure of LiPSs for stabilizing Li metal anode in Li-S batteries.

摘要

锂硫(Li-S)电池被广泛认为是最有前途的下一代高能量密度储能装置之一。然而,可溶性锂多硫化物(LiPSs)会腐蚀锂金属并降低Li-S电池的循环稳定性。了解LiPSs与锂金属阳极之间的反应机制势在必行。在此,系统地揭示了LiPSs与锂金属阳极的反应速率和产物、所生成的固体电解质界面(SEI)的组成和结构,以及硝酸锂(LiNO)添加剂抑制腐蚀反应的机制。具体而言,LiPSs与锂金属阳极的反应比锂盐更快,并生成富含LiS的SEI。富含LiS的SEI与LiPSs反应性很高,这加剧了枝晶锂的形成和活性锂的持续腐蚀。LiNO的主要作用是调节LiPSs的溶剂化结构并固有地降低LiPSs的反应性,而不是传统上认为LiNO参与SEI的形成。这项工作揭示了LiPSs与锂金属阳极之间的反应机制,并激发了对LiPSs溶剂化结构进行合理调控以稳定Li-S电池中锂金属阳极的研究。

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