Butzelaar Andreas J, Röring Philipp, Mach Tim P, Hoffmann Maxi, Jeschull Fabian, Wilhelm Manfred, Winter Martin, Brunklaus Gunther, Théato Patrick
Karlsruhe Institute of Technology (KIT), Institute for Chemical Technology and Polymer Chemistry (ITCP), Engesserstraße 18, 76131 Karlsruhe, Germany.
Helmholtz-Institute Münster, IEK-12, Forschungszentrum Jülich GmbH, Corrensstraße 46, 48149 Münster, Germany.
ACS Appl Mater Interfaces. 2021 Aug 25;13(33):39257-39270. doi: 10.1021/acsami.1c08841. Epub 2021 Aug 10.
Herein, we report the design of styrene-based poly(ethylene oxide) (PEO) side-chain block copolymers featuring a microphase separation and their application as solid polymer electrolytes in high-voltage lithium-metal batteries. A straightforward synthesis was established, overcoming typical drawbacks of PEO block copolymers prepared by anionic polymerization or ester-based PEO side-chain copolymers. Both the PEO side-chain length and the LiTFSI content were varied, and the underlying relationships were elucidated in view of polymer compositions with high ionic conductivity. Subsequently, a selected composition was subjected to further analyses, including phase-separated morphology, providing not only excellent self-standing films with intrinsic mechanical stability but also the ability to suppress lithium dendrite growth as well as good flexibility, wettability, and good contacts with the electrodes. Furthermore, good thermal and electrochemical stability was demonstrated. To do so, linear sweep and cyclic voltammetry, lithium plating/stripping tests, and galvanostatic overcharging using high-voltage cathodes were conducted, demonstrating stable lithium-metal interfaces and a high oxidative stability of around 4.75 V. Consequently, cycling of Li||NMC622 cells did not exhibit commonly observed rapid cell failure or voltage noise associated with PEO-based electrolytes in Li||NMC622 cells, attributed to the high mechanical stability. A comprehensive view is provided, highlighting that the combination of PEO and high-voltage cathodes is not impossible .
在此,我们报道了具有微相分离特性的苯乙烯基聚环氧乙烷(PEO)侧链嵌段共聚物的设计及其在高压锂金属电池中作为固体聚合物电解质的应用。我们建立了一种直接的合成方法,克服了通过阴离子聚合制备的PEO嵌段共聚物或基于酯的PEO侧链共聚物的典型缺点。我们改变了PEO侧链长度和LiTFSI含量,并从具有高离子电导率的聚合物组成的角度阐明了其内在关系。随后,对选定的组合物进行了进一步分析,包括相分离形态,该组合物不仅提供了具有固有机械稳定性的优异自支撑膜,还具有抑制锂枝晶生长的能力以及良好的柔韧性、润湿性和与电极的良好接触。此外,还证明了其良好的热稳定性和电化学稳定性。为此,进行了线性扫描和循环伏安法、锂电镀/剥离测试以及使用高压阴极的恒电流过充电测试,结果表明锂金属界面稳定,氧化稳定性高达约4.75V。因此,Li||NMC622电池的循环未表现出Li||NMC622电池中基于PEO的电解质常见的快速电池失效或电压噪声,这归因于其高机械稳定性。本文提供了一个全面的观点,强调了PEO与高压阴极的组合并非不可能。