Pavčnik Tjaša, Lozinšek Matic, Pirnat Klemen, Vizintin Alen, Mandai Toshihiko, Aurbach Doron, Dominko Robert, Bitenc Jan
National Institute of Chemistry, Hajdrihova 19, 1000 Ljubljana, Slovenia.
Faculty of Chemistry and Chemical Technology, University of Ljubljana, Večna pot 113, 1000 Ljubljana, Slovenia.
ACS Appl Mater Interfaces. 2022 Jun 15;14(23):26766-26774. doi: 10.1021/acsami.2c05141. Epub 2022 Jun 1.
High-performance electrolytes are at the heart of magnesium battery development. Long-term stability along with the low potential difference between plating and stripping processes are needed to consider them for next-generation battery devices. Within this work, we perform an in-depth characterization of the novel Mg[Al(hfip)] salt in different glyme-based electrolytes. Specific importance is given to the influence of water content and the role of additives in the electrolyte. Mg[Al(hfip)]-based electrolytes exemplify high tolerance to water presence and the beneficial effect of additives under aggravated cycling conditions. Finally, electrolyte compatibility is tested with three different types of Mg cathodes, spanning different types of electrochemical mechanisms (Chevrel phase, organic cathode, sulfur). Benchmarking with an electrolyte containing a state-of-the-art Mg[B(hfip)] salt exemplifies an improved performance of electrolytes comprising the Mg[Al(hfip)] salt and establishes Mg[Al(hfip)] as a new standard salt for the future Mg battery research.
高性能电解质是镁电池发展的核心。要将其用于下一代电池设备,需要具备长期稳定性以及电镀和剥离过程之间的低电位差。在这项工作中,我们对新型Mg[Al(hfip)]盐在不同基于甘醇二甲醚的电解质中进行了深入表征。特别关注了含水量的影响以及添加剂在电解质中的作用。基于Mg[Al(hfip)]的电解质体现出对水存在的高耐受性以及在恶劣循环条件下添加剂的有益效果。最后,测试了电解质与三种不同类型镁阴极的兼容性,这三种阴极涵盖不同类型的电化学机制( Chevrel相、有机阴极、硫)。与含有最先进Mg[B(hfip)]盐的电解质进行对比,证明了包含Mg[Al(hfip)]盐的电解质性能有所改善,并确立了Mg[Al(hfip)]作为未来镁电池研究的新基准盐。