化学
电解质
相间
快离子导体
锂(药物)
饱和(图论)
金属锂
离子键合
金属
分析化学(期刊)
化学物理
核磁共振
电极
物理化学
离子
色谱法
有机化学
组合数学
生物
内分泌学
医学
遗传学
数学
物理
作者
David Columbus,Vaishali Arunachalam,Felix Glang,Liat Avram,Shira Haber,Arava Zohar,Moritz Zaiß,Michal Leskes
摘要
Lithium metal anodes offer a huge leap in the energy density of batteries, yet their implementation is limited by solid electrolyte interphase (SEI) formation and dendrite deposition. A key challenge in developing electrolytes leading to the SEI with beneficial properties is the lack of experimental approaches for directly probing the ionic permeability of the SEI. Here, we introduce lithium chemical exchange saturation transfer (Li-CEST) as an efficient nuclear magnetic resonance (NMR) approach for detecting the otherwise invisible process of Li exchange across the metal–SEI interface. In Li-CEST, the properties of the undetectable SEI are encoded in the NMR signal of the metal resonance through their exchange process. We benefit from the high surface area of lithium dendrites and are able, for the first time, to detect exchange across solid phases through CEST. Analytical Bloch-McConnell models allow us to compare the SEI permeability formed in different electrolytes, making the presented Li-CEST approach a powerful tool for designing electrolytes for metal-based batteries.
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