Department of Chemical Engineering, National Cheng Kung University , Tainan, Taiwan 70101, Republic of China.
ACS Appl Mater Interfaces. 2016 Jun 22;8(24):15216-24. doi: 10.1021/acsami.6b02345. Epub 2016 Jun 7.
In this work, a composite gel electrolyte comprising ceramic cross-linker and poly(ethylene oxide) (PEO) matrix is shown to have superior resistance to lithium dendrite growth and be applicable to gel polymer lithium batteries. In contrast to pristine gel electrolyte, these nanocomposite gel electrolytes show good compatibility with liquid electrolytes, wider electrochemical window, and a superior rate and cycling performance. These silica cross-linkers allow the PEO to form the lithium ion pathway and reduce anion mobility. Therefore, the gel not only features lower polarization and interfacial resistance, but also suppresses electrolyte decomposition and lithium corrosion. Further, these nanocomposite gel electrolytes increase the lithium transference number to 0.5, and exhibit superior electrochemical stability up to 5.0 V. Moreover, the lithium cells feature long-term stability and a Coulombic efficiency that can reach 97% after 100 cycles. The SEM image of the lithium metal surface after the cycling test shows that the composite gel electrolyte with 20% silica cross-linker forms a uniform passivation layer on the lithium surface. Accordingly, these features allow this gel polymer electrolyte with ceramic cross-linker to function as a high-performance lithium-ionic conductor and reliable separator for lithium metal batteries.
在这项工作中,展示了一种包含陶瓷交联剂和聚(环氧乙烷)(PEO)基质的复合凝胶电解质,具有优异的抗锂枝晶生长能力,适用于凝胶聚合物锂电池。与原始凝胶电解质相比,这些纳米复合凝胶电解质与液体电解质具有良好的相容性、更宽的电化学窗口以及更优异的倍率和循环性能。这些二氧化硅交联剂允许 PEO 形成锂离子通道并降低阴离子迁移率。因此,凝胶不仅具有更低的极化和界面电阻,而且还抑制了电解质的分解和锂的腐蚀。此外,这些纳米复合凝胶电解质将锂离子迁移数提高到 0.5,并表现出优异的电化学稳定性,高达 5.0V。此外,锂电池具有长期稳定性,在 100 次循环后库仑效率可达 97%。循环测试后锂金属表面的 SEM 图像表明,含有 20%二氧化硅交联剂的复合凝胶电解质在锂表面形成了均匀的钝化层。因此,这些特性使得这种具有陶瓷交联剂的凝胶聚合物电解质可以作为高性能的锂离子导体和可靠的锂金属电池隔板。