Shu Chaozhu, Long Jianping, Dou Shi-Xue, Wang Jiazhao
College of Materials and Chemistry and Chemical Engineering, Chengdu University of Technology, Dongsanlu, Erxianqiao, Chengdu, 610059, Sichuan, P. R. China.
Institute for Superconducting and Electronic Materials, University of Wollongong, Squires Way, North Wollongong, NSW, 2500, Australia.
Small. 2019 Feb;15(6):e1804701. doi: 10.1002/smll.201804701. Epub 2019 Jan 11.
High-performance flexible lithium-oxygen (Li-O ) batteries with excellent safety and stability are urgently required due to the rapid development of flexible and wearable devices. Herein, based on an integrated solid-state design by taking advantage of component-interaction between poly(vinylidene fluoride-co-hexafluoropropylene) and nanofumed silica in polymer matrix, a stable quasi-solid-state electrolyte (PS-QSE) for the Li-O battery is proposed. The as-assembled Li-O battery containing the PS-QSE exhibits effectively improved anodic reversibility (over 200 cycles, 850 h) and cycling stability of the battery (89 cycles, nearly 900 h). The improvement is attributed to the stability of the PS-QSE (including electrochemical, chemical, and mechanical stability), as well as the effective protection of lithium anode from aggressive soluble intermediates generated in cathode. Furthermore, it is demonstrated that the interaction among the components plays a pivotal role in modulating the Li-ion conducting mechanism in the as-prepared PS-QSE. Moreover, the pouch-type PS-QSE based Li-O battery also shows wonderful flexibility, tolerating various deformations thanks to its integrated solid-state design. Furthermore, holes can be punched through the Li-O battery, and it can even be cut into any desired shape, demonstrating exceptional safety. Thus, this type of battery has the potential to meet the demands of tailorability and comformability in flexible and wearable electronics.
由于柔性和可穿戴设备的快速发展,迫切需要具有优异安全性和稳定性的高性能柔性锂氧(Li-O₂)电池。在此,基于利用聚(偏二氟乙烯-共-六氟丙烯)与纳米气相二氧化硅在聚合物基体中的组分相互作用的集成固态设计,提出了一种用于锂氧电池的稳定准固态电解质(PS-QSE)。包含PS-QSE的组装好的锂氧电池表现出阳极可逆性(超过200次循环,850小时)和电池循环稳定性(89次循环,近900小时)的有效改善。这种改善归因于PS-QSE的稳定性(包括电化学、化学和机械稳定性),以及对锂阳极免受阴极中产生的侵蚀性可溶性中间体的有效保护。此外,证明了组分之间的相互作用在调节所制备的PS-QSE中的锂离子传导机制中起关键作用。此外,基于PS-QSE的软包型锂氧电池还表现出出色的柔韧性,由于其集成固态设计能够耐受各种变形。此外,可以在锂氧电池上打孔,甚至可以将其切割成任何所需形状,显示出卓越的安全性。因此,这种类型的电池有潜力满足柔性和可穿戴电子产品中定制性和贴合性的需求。