Dutoit Charles-E, Ahouari Hania, Denoyelle Quentin, Pondaven Simon, Vezin Hervé
Université Lille Nord de France, CNRS, UMR8516, LASIRE, 59655 Villeneuve d'Ascq, France.
Centre de Résonance Magnétique Electronique pour les Matériaux et l'Energie, Université Lille Nord de France, 59655 Villeneuve d'Ascq, France.
Magn Reson (Gott). 2024 Jun 25;5(1):87-93. doi: 10.5194/mr-5-87-2024. eCollection 2024.
We have investigated metallic lithium particle nucleation following lithiation and delithiation steps of the graphite electrode using X-band electron paramagnetic resonance (EPR). Metallic lithium aggregates like dendrites and/or filaments which are formed during electrochemical cycling on the graphite anode are complex structures which may lead to internal short-circuit and safety issues. Understanding and following, in real conditions, this nucleation process is necessary to improve the development of Li-ion batteries. The complexity to detect metallic lithium structures inside Li-ion batteries depends on the number of EPR lines and their linewidth. The presence of lithiated graphite phases affects the detection of micrometric Li-metal elements. Herein, we report a new approach using cw-EPR (continuous-wave EPR) spectroscopy and imaging, combining the first- and second-harmonic detection schemes to provide evidence for the metallic lithium aggregate nucleation in these negative electrodes. Although the first harmonic gives all the EPR signals present in the sample, it is found that the second-harmonic EPR signal is mainly sensitive to metallic lithium depositions.
我们使用X波段电子顺磁共振(EPR)研究了石墨电极锂化和脱锂步骤后的金属锂颗粒成核过程。在石墨阳极上进行电化学循环期间形成的树枝状和/或丝状等金属锂聚集体是复杂的结构,可能会导致内部短路和安全问题。在实际条件下了解并跟踪这一成核过程对于改进锂离子电池的发展至关重要。检测锂离子电池内部金属锂结构的复杂性取决于EPR谱线的数量及其线宽。锂化石墨相的存在会影响微米级锂金属元素的检测。在此,我们报告了一种使用连续波EPR光谱和成像的新方法,结合基波和二次谐波检测方案,为这些负极中的金属锂聚集体成核提供证据。虽然基波给出了样品中存在的所有EPR信号,但发现二次谐波EPR信号主要对金属锂沉积敏感。