Ford Hunter O, He Peng, Schaefer Jennifer L
Department of Chemical and Biomolecular Engineering, University of Notre Dame, Notre Dame, IN 46556, USA.
Chemphyschem. 2022 Apr 5;23(7):e202100881. doi: 10.1002/cphc.202100881. Epub 2022 Feb 23.
Metal-sulfur batteries are a promising next-generation energy storage technology, offering high theoretical energy densities with low cost and good sustainability. An active area of research is the development of electrolytes that address unwanted migration of sulfur and intermediate species known as polysulfides during operation of metal-sulfur batteries, a phenomenon that leads to low energy efficiency and short life-spans. A particular class of electrolytes, gel polymer electrolytes, are especially attractive for their ability to repel polysulfides on the basis of structure, electrostatics, and other polymer properties. Herein, within the context of magnesium- and lithium-sulfur batteries, we investigate the impact of gel polymer electrolyte cation solvation capacity, a property related to network dielectric constant and chemistry, on sulfur/polysulfide-polymer interactions, an understudied property-performance relationship. Polymers with lower cation solvation capacity are found to permanently absorb less polysulfide active material, which increases sulfur utilization for Li-S batteries and significantly increases charge efficiency and life-span for Li-S and Mg-S batteries.
金属硫电池是一种很有前景的下一代储能技术,具有高理论能量密度、低成本和良好的可持续性。一个活跃的研究领域是开发电解质,以解决金属硫电池运行过程中硫和称为多硫化物的中间物种的不必要迁移问题,这种现象会导致能量效率低下和寿命缩短。一类特殊的电解质,即凝胶聚合物电解质,因其基于结构、静电和其他聚合物特性排斥多硫化物的能力而特别有吸引力。在此,在镁硫电池和锂硫电池的背景下,我们研究了凝胶聚合物电解质阳离子溶剂化能力(一种与网络介电常数和化学性质相关的特性)对硫/多硫化物-聚合物相互作用的影响,这是一种研究较少的特性-性能关系。发现阳离子溶剂化能力较低的聚合物对多硫化物活性材料的永久吸收较少,这提高了锂硫电池的硫利用率,并显著提高了锂硫电池和镁硫电池的充电效率和寿命。