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高分子科学观点100周年:用于锂电池阴极电极的固体聚合物电解质。当前挑战与未来机遇

100th Anniversary of Macromolecular Science Viewpoint: Solid Polymer Electrolytes in Cathode Electrodes for Lithium Batteries. Current Challenges and Future Opportunities.

作者信息

Patel Shrayesh N

机构信息

Pritzker School of Molecular Engineering, University of Chicago, Chicago, Illinois 60637, United States.

Joint Center for Energy Storage Research and Center for Molecular Engineering, Argonne National Laboratory, Lemont, Illinois 60647, United States of America.

出版信息

ACS Macro Lett. 2021 Jan 19;10(1):141-153. doi: 10.1021/acsmacrolett.0c00724. Epub 2021 Jan 4.

Abstract

Solid polymer electrolytes (SPEs) are an important class of ion-transporting materials for enabling safe and high-energy-density all-solid lithium batteries. Within the composite cathode electrode (CCE), an SPE plays a critical role as both binder material for mechanical integrity and electrolyte to facilitate ion transport. The inclusion of an SPE within the CCE leads to the formation of distinctive heterogeneous SPE/solid interfaces that are not present in traditional liquid electrolyte-containing CCE. Here, the viewpoint emphasizes the importance of understanding the interfacial behavior of SPEs in all-solid CCEs. Challenges and opportunities are highlighted in achieving and maintaining good interfacial contact, and the role of interfacial dynamics and nanoconfinement on ion transport. Additionally, routes to achieving high-voltage electrochemical stability through stabilization of interfaces and the development of SPEs with inherently higher oxidative stability are discussed. SPEs with high-voltage stability will provide a pathway to using cathode active materials operating at 4.5 V versus Li/Li and beyond, which are essential to attaining next-generation higher-energy batteries. Overall, the viewpoint clarifies the importance of targeted research and development of SPEs for enabling all-solid CCEs for lithium batteries.

摘要

固态聚合物电解质(SPEs)是一类重要的离子传输材料,可用于实现安全且高能量密度的全固态锂电池。在复合阴极电极(CCE)中,SPE既作为保证机械完整性的粘结剂材料,又作为促进离子传输的电解质,发挥着关键作用。在CCE中加入SPE会导致形成独特的非均相SPE/固体界面,而传统含液体电解质的CCE中不存在这种界面。在此,该观点强调了理解全固态CCE中SPE界面行为的重要性。在实现和维持良好的界面接触方面,突出了挑战与机遇,以及界面动力学和纳米限域对离子传输的作用。此外,还讨论了通过界面稳定化实现高电压电化学稳定性以及开发具有固有更高氧化稳定性的SPE的途径。具有高电压稳定性的SPE将为使用相对于Li/Li而言工作电压在4.5 V及以上的阴极活性材料提供一条途径,这对于实现下一代更高能量的电池至关重要。总体而言,该观点阐明了针对SPE进行有针对性的研发对于实现用于锂电池的全固态CCE的重要性。

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