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用于识别锂离子电池降解机制的高温气体分析

High temperature gas analysis for identifying degradation mechanisms of lithium-ion batteries.

作者信息

Schmidt Leon, Hankins Kie, Bläubaum Lars, Gerasimov Michail, Krewer Ulrike

机构信息

Institute for Applied Materials - Electrochemical Technologies, Karlsruhe Institute of Technology Adenauerring 20b Karlsruhe Germany

出版信息

Chem Sci. 2025 Feb 12;16(12):5118-5128. doi: 10.1039/d4sc08105f. eCollection 2025 Mar 19.

DOI:10.1039/d4sc08105f
PMID:39975769
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC11834935/
Abstract

The primary safety concern associated with lithium-ion batteries is the risk of thermal runaway. The components of the cells can react under heat release when exposed to external or internal heat sources, potentially leading to large-scale fires and explosions. This process is initiated by the decomposition and/or reformation of the Solid Electrolyte Interphase (SEI) and electrolyte; the precise underlying reaction network remains unclear due to insufficient availability of chemical analysis methods during thermal abuse. Herein, we present a method based on high-temperature feasible online electrochemical mass spectrometry that is used to investigate these mechanisms and propose a reaction network of SEI formation and degradation. For a graphite/NMC cell with ethylene carbonate/dimethyl carbonate/LiPF electrolyte, added vinylene carbonate concentration and formation current are shown to impact the composition of the SEI both before and during the thermal stress test up to 132 °C. Higher amounts of the additive vinylene carbonate suppress the evolution of CH during thermal abuse, suggesting a reduced presence of the organic SEI component lithium ethylene dicarbonate. Our results indicate that the conductive salt decomposition is amplified by the amount of lithium carbonate and reduced by lithium ethylene glycol. This connects the presence of certain SEI compounds directly to the formation of hazardous species. The work highlights the importance of identifying the underlying degradation pathways and for the understanding of the processes that give rise to thermal runaway.

摘要

与锂离子电池相关的主要安全问题是热失控风险。电池组件在暴露于外部或内部热源时,会在放热情况下发生反应,可能导致大规模火灾和爆炸。这个过程由固体电解质界面(SEI)和电解质的分解和/或重整引发;由于热滥用期间化学分析方法的可用性不足,精确的潜在反应网络仍不清楚。在此,我们提出一种基于高温可行在线电化学质谱的方法,用于研究这些机制,并提出SEI形成和降解的反应网络。对于具有碳酸亚乙酯/碳酸二甲酯/LiPF电解质的石墨/NMC电池,在高达132°C的热应力测试之前和期间,添加的碳酸亚乙烯酯浓度和形成电流均显示会影响SEI的组成。较高量的添加剂碳酸亚乙烯酯会抑制热滥用期间CH的逸出,这表明有机SEI组分碳酸亚乙烯基锂的存在减少。我们的结果表明,导电盐的分解因碳酸锂的量而加剧,并因乙二醇锂而减少。这将某些SEI化合物的存在与危险物种的形成直接联系起来。这项工作突出了识别潜在降解途径以及理解导致热失控过程的重要性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/3f04/11921426/a152fa2780c1/d4sc08105f-f5.jpg
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https://cdn.ncbi.nlm.nih.gov/pmc/blobs/3f04/11921426/a152fa2780c1/d4sc08105f-f5.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/3f04/11921426/8928c26a1eef/d4sc08105f-f1.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/3f04/11921426/35335b69fc47/d4sc08105f-f2.jpg
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本文引用的文献

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Small. 2024 Nov;20(46):e2406110. doi: 10.1002/smll.202406110. Epub 2024 Aug 8.
2
Impact of electrolyte impurities and SEI composition on battery safety.电解质杂质和固体电解质界面(SEI)组成对电池安全性的影响。
Chem Sci. 2023 Nov 3;14(47):13783-13798. doi: 10.1039/d3sc04186g. eCollection 2023 Dec 6.
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Solvent Degradation and Polymerization in the Li-Metal Battery: Organic-Phase Formation in Solid-Electrolyte Interphases.
锂金属电池中的溶剂降解与聚合:固体电解质界面中的有机相形成
ACS Appl Mater Interfaces. 2022 Jan 19;14(2):2817-2824. doi: 10.1021/acsami.1c20487. Epub 2022 Jan 7.
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In situ observation of thermal-driven degradation and safety concerns of lithiated graphite anode.锂化石墨负极热驱动降解的原位观察及安全问题
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Current and future lithium-ion battery manufacturing.当前及未来的锂离子电池制造
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Clarification of Decomposition Pathways in a State-of-the-Art Lithium Ion Battery Electrolyte through C-Labeling of Electrolyte Components.通过对电解质成分进行碳-14标记来阐明先进锂离子电池电解质中的分解途径
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Theoretical studies to understand surface chemistry on carbon anodes for lithium-ion batteries: how does vinylene carbonate play its role as an electrolyte additive?理解锂离子电池碳负极表面化学的理论研究:碳酸亚乙烯酯作为电解质添加剂是如何发挥作用的?
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