石墨电极充电过程中锂离子吸附、插层和镀的机理研究。

ACS electrochemistry Pub Date : 2025-04-22 eCollection Date: 2025-05-01 DOI:10.1021/acselectrochem.4c00079
Brian Chen, Niya Hope-Glenn, Amanda Wright, Robert J Messinger, Alexander Couzis
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引用次数: 0

摘要

低温和快速充电的锂离子电池仍然具有挑战性,因为在这些条件下石墨阳极上不希望镀上锂。在这里,我们提出了在低温和快速的石墨电极上支持电化学Li+阳离子插入和Li金属电镀反应的动力学机制。可变温度(30°C至-40°C)和可变速率(0.1至10 mA/cm2)恒流测量在由锂金属计数器、石墨工作电极和锂金属参考电极组成的三电极电池以及双电极电池上进行。电位分布中的局部最小值,通常与石墨上镀锂金属的成核过电位有关,必须与反电极上锂金属剥离的贡献分开。三电极测量石墨电位的差容量分析表明,当温度低于-20℃时,电化学Li+阳离子的插层程度急剧下降。从恒流测量中确定的经验定义的Li+阳离子插入和Li电镀的速率常数的温度依赖关系表明Li+阳离子插入的非Arrhenius行为表明两步预平衡机制,而典型的Li电镀的Arrhenius行为表明单分子单步过程。基于Langmuir吸附的动力学模型表明,吸附在石墨活性位点上的Li+阳离子的界面浓度是决定充电过程动力学的关键。我们发现,在充电过程中,不同的温度和速率表现出速率限制,要么是吸附限制,要么是表面反应限制。结果对Li+阳离子在石墨电极上的嵌入和镀的电化学竞争机制有了新的认识,这是温度和充电速率的函数。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Mechanistic Understanding of Lithium-Ion Adsorption, Intercalation, and Plating during Charging of Graphite Electrodes.

Low-temperature and fast-charging lithium (Li)-ion batteries remain challenging due to the undesirable Li plating on graphite anodes under these conditions. Here, we present a kinetic mechanism that underpins electrochemical Li+ cation intercalation and Li metal plating reactions on graphite electrodes at low temperatures and fast rates. Variable-temperature (30 °C to -40 °C) and variable-rate (0.1 to 10 mA/cm2) constant-current measurements were conducted on three-electrode cells comprised of Li metal counter, graphite working, and Li metal reference electrodes, as well as two-electrode cells. The local minima in the potential profiles, often associated with the nucleation overpotential for Li metal plating on graphite, must be disentangled from contributions from Li metal stripping at the counter electrode. Differential capacity analyses of three-electrode measurements of graphite potential show that the extent of electrochemical Li+ cation intercalation drops precipitously as temperature decreases below -20 °C. The temperature dependence of empirically defined rate constants for Li+ cation intercalation and Li plating determined from constant-current measurements revealed non-Arrhenius behavior for Li+ cation intercalation that suggests a two-step pre-equilibration mechanism, while typical Arrhenius behavior for Li plating suggests a unimolecular single-step process. A kinetic model based on Langmuir adsorption shows that the interfacial concentration of Li+ cations adsorbed on graphite active sites is critical in dictating the kinetics of the charging process. We show that rate limitations, either adsorption-limited or surface reaction-limited, manifest at different temperatures and rates during the charging process. The results yield new mechanistic understanding of how Li+ cations electrochemically compete for intercalation into and plating on graphite electrodes, as a function of temperature and charge rate.

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