Joint Center for Energy Storage Research , 9700 South Cass Avenue, Argonne, Illinois 60439, United States.
ACS Appl Mater Interfaces. 2017 Nov 15;9(45):39357-39370. doi: 10.1021/acsami.7b11566. Epub 2017 Nov 1.
We evaluate hydrofluoroether (HFE) cosolvents with varying degrees of fluorination in the acetonitrile-based solvate electrolyte to determine the effect of the HFE structure on the electrochemical performance of the Li-S battery. Solvates or sparingly solvating electrolytes are an interesting electrolyte choice for the Li-S battery due to their low polysulfide solubility. The solvate electrolyte with a stoichiometric ratio of LiTFSI salt in acetonitrile, (MeCN)-LiTFSI, exhibits limited polysulfide solubility due to the high concentration of LiTFSI. We demonstrate that the addition of highly fluorinated HFEs to the solvate yields better capacity retention compared to that of less fluorinated HFE cosolvents. Raman and NMR spectroscopy coupled with ab initio molecular dynamics simulations show that HFEs exhibiting a higher degree of fluorination coordinate to Li at the expense of MeCN coordination, resulting in higher free MeCN content in solution. However, the polysulfide solubility remains low, and no crossover of polysulfides from the S cathode to the Li anode is observed.
我们评估了不同氟化程度的氢氟醚 (HFE) 共溶剂在基于乙腈的溶剂化电解质中的作用,以确定 HFE 结构对 Li-S 电池电化学性能的影响。由于其低多硫化物溶解度,溶剂或稀溶剂化电解质是 Li-S 电池的一种有趣的电解质选择。具有乙腈中 LiTFSI 盐化学计量比的溶剂化电解质 (MeCN)-LiTFSI,由于 LiTFSI 浓度高,表现出有限的多硫化物溶解度。我们证明,与氟化程度较低的 HFE 共溶剂相比,向溶剂中添加高度氟化的 HFEs 可获得更好的容量保持率。拉曼和 NMR 光谱结合从头算分子动力学模拟表明,具有更高氟化程度的 HFEs 取代 MeCN 与 Li 配位,导致溶液中游离 MeCN 含量增加。然而,多硫化物的溶解度仍然很低,并且没有观察到多硫化物从 S 阴极到 Li 阳极的交叉。