Yang Zhenzhen, Yang Mengxi, Hahn Nathan T, Connell Justin, Bloom Ira, Liao Chen, Ingram Brian J, Trahey Lynn
Chemical Sciences and Engineering Division, Argonne National Laboratory, Lemont, IL, United States.
Joint Center for Energy Storage Research, Argonne National Laboratory, Lemont, IL, United States.
Front Chem. 2022 Aug 12;10:966332. doi: 10.3389/fchem.2022.966332. eCollection 2022.
Reversible electrochemical magnesium plating/stripping processes are important for the development of high-energy-density Mg batteries based on Mg anodes. Ether glyme solutions such as monoglyme (G1), diglyme (G2), and triglyme (G3) with the MgTFSI salt are one of the conventional and commonly used electrolytes that can obtain the reversible behavior of Mg electrodes. However, the electrolyte cathodic efficiency is argued to be limited due to the enormous parasitic reductive decomposition and passivation, which is governed by impurities. In this work, a systematic identification of the impurities in these systems and their effect on the Mg deposition-dissolution processes is reported. The mitigation methods generally used for eliminating impurities are evaluated, and their beneficial effects on the improved reactivity are also discussed. By comparing the performances, we proposed a necessary conditioning protocol that can be easy to handle and much safer toward the practical application of MgTFSI/glyme electrolytes containing impurities.
可逆电化学镁电镀/脱镀过程对于基于镁阳极的高能量密度镁电池的发展至关重要。含有MgTFSI盐的醚类甘醇二甲醚溶液,如单甘醇二甲醚(G1)、二甘醇二甲醚(G2)和三甘醇二甲醚(G3),是能够实现镁电极可逆行为的传统常用电解质之一。然而,由于巨大的寄生还原分解和钝化现象(这由杂质控制),电解质阴极效率被认为是有限的。在这项工作中,报告了对这些体系中杂质的系统鉴定及其对镁沉积-溶解过程的影响。评估了通常用于去除杂质的缓解方法,并讨论了它们对提高反应活性的有益效果。通过比较性能,我们提出了一种必要的预处理方案,该方案易于操作,并且对于含有杂质的MgTFSI/甘醇二甲醚电解质的实际应用更加安全。