Xu Zelin, Liu Ziqiang, Gu Zhi, Zhao Xiaolei, Guo Dingcheng, Yao Xiayin
Ningbo Institute of Materials Technology and Engineering, Chinese Academy of Sciences, Ningbo315201, P. R. China.
Center of Material Science and Optoelectronics Engineering, University of Chinese Academy of Sciences, Beijing100049, P. R. China.
ACS Appl Mater Interfaces. 2023 Feb 8;15(5):7014-7022. doi: 10.1021/acsami.2c22694. Epub 2023 Jan 27.
Metal-air batteries have attracted wide interest owing to their ultrahigh theoretical energy densities, particularly for lithium-oxygen batteries. One of the challenges inhibiting the practical application of lithium-oxygen batteries is the unavoidable liquid electrolyte evaporation accompanying oxygen fluxion in the semi-open system, which leads to safety issues and poor cyclic performance. To address these issues, we propose a solid-state polyimide based gel polymer electrolyte (PI@GPE), immobilizing and reserving a liquid electrolyte in the gelled polymer substrate. The liquid electrolyte uptake of PI@GPE is measured to be 842%, 6 times higher than that of the commercial glass fiber separator, contributing to a high ionic conductivity of 0.44 mS cm. Additionally, PI@GPE possesses an enhanced lithium transference number of 0.596 as well as superior interfacial compatibility with lithium metals. Under 0.1 mA cm and 0.25 mA h cm, PI@GPE-based lithium-oxygen batteries demonstrate distinguished long-cycling stability of 366 cycles, 4 times more than that with a glass fiber separator and liquid electrolyte. Our work provides a unique solid-state gel polymer electrolyte to mitigate liquid electrolyte leakage, exhibiting promising potential application in highly safe lithium-oxygen batteries with a long-cycling life.
金属空气电池因其超高的理论能量密度而备受关注,尤其是锂氧电池。阻碍锂氧电池实际应用的挑战之一是在半开放系统中,随着氧气流动不可避免地会出现液体电解质蒸发,这会导致安全问题和较差的循环性能。为了解决这些问题,我们提出了一种基于固态聚酰亚胺的凝胶聚合物电解质(PI@GPE),将液体电解质固定并保留在凝胶聚合物基质中。测得PI@GPE的液体电解质吸收率为842%,比商用玻璃纤维隔膜高6倍,有助于实现0.44 mS cm的高离子电导率。此外,PI@GPE具有增强的锂迁移数0.596以及与锂金属优异的界面相容性。在0.1 mA cm和0.25 mA h cm条件下,基于PI@GPE的锂氧电池表现出366次循环的卓越长循环稳定性,是使用玻璃纤维隔膜和液体电解质时的4倍。我们的工作提供了一种独特的固态凝胶聚合物电解质来减轻液体电解质泄漏,在具有长循环寿命的高安全性锂氧电池中展现出有前景的潜在应用。