Department of Mechanical and Materials Engineering, Florida International University , Miami, Florida 33174, United States.
ACS Appl Mater Interfaces. 2017 Oct 4;9(39):33819-33826. doi: 10.1021/acsami.7b08448. Epub 2017 Sep 19.
Gel polymer electrolytes (GPE) and composite GPE (cGPE) using one-dimensional glass microfillers have been developed for their use in lithium-oxygen batteries. Using glass microfillers, tetraglyme solvent, UV-curable polymer, and lithium salt at various concentrations, the preparation of cGPE yielded free-standing films. These cGPEs, with 1 wt % of microfillers, demonstrated increased ionic conductivity and lithium transference number over GPEs at various concentrations of lithium salt. Improvements as high as 50% and 28% in lithium transference number were observed for 0.1 and 1.0 mol kg salt concentrations, respectively. Lithium-oxygen batteries containing cGPE similarly showed superior charge/discharge cycling for 500 mAh g cycle capacity with as high as 86% and 400% increase in cycles for cGPE with 1.0 and 0.1 mol kg over GPE. Results using electrochemical impedance spectroscopy, Raman spectroscopy, and scanning electron microscopy revealed that the source of the improvement was the reduction of the rate of lithium carbonates formation on the surface of the cathode. This reduction in formation rate afforded by cGPE-containing batteries was possible due to the reduction of the rate of electrolyte decomposition. The increase in solvated to paired Li ratio at the cathode, afforded by increased lithium transference number, helped reduce the probability of superoxide radicals reacting with the tetraglyme solvent. This stabilization during cycling helped prolong the cycling life of the batteries.
已开发出使用一维玻璃微填料的凝胶聚合物电解质 (GPE) 和复合 GPE (cGPE),用于锂氧电池。使用玻璃微填料、四甘醇溶剂、紫外光可固化聚合物和不同浓度的锂盐,制备了具有独立支撑膜的 cGPE。在不同浓度的锂盐下,含 1wt%微填料的 cGPE 的离子电导率和锂离子迁移数高于 GPE。在 0.1 和 1.0 mol kg 盐浓度下,锂离子迁移数分别提高了高达 50%和 28%。含有 cGPE 的锂氧电池同样显示出优异的充放电循环性能,对于 500 mAh g 循环容量,在 1.0 和 0.1 mol kg 盐浓度下,cGPE 的循环次数分别增加了高达 86%和 400%。电化学阻抗谱、拉曼光谱和扫描电子显微镜的结果表明,改进的原因是减少了阴极表面碳酸锂的形成速度。由于电解质分解速度的降低,含 cGPE 的电池能够实现这种形成速度的降低。由于锂离子迁移数的增加,使溶剂化的 Li 与成对 Li 的比例增加,这有助于减少超氧化物自由基与四甘醇溶剂反应的可能性。这种在循环过程中的稳定性有助于延长电池的循环寿命。