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双连续结构在用于高能量固态锂金属电池的弹性电解质中的作用。

Role of Bicontinuous Structure in Elastomeric Electrolytes for High-Energy Solid-State Lithium-Metal Batteries.

机构信息

Department of Chemical and Biomolecular Engineering, Korea Advanced Institute of Science and Technology (KAIST), Daejeon, 34141, Republic of Korea.

George W. Woodruff School of Mechanical Engineering, Georgia Institute of Technology, Atlanta, GA, 30332, USA.

出版信息

Adv Mater. 2023 Jan;35(1):e2205194. doi: 10.1002/adma.202205194. Epub 2022 Nov 27.

Abstract

Solid-state lithium (Li)-metal batteries (LMBs) are garnering attention as a next-generation battery technology that can surpass conventional Li-ion batteries in terms of energy density and operational safety under the condition that the issue of uncontrolled Li dendrite is resolved. In this study, various plastic crystal-embedded elastomer electrolytes (PCEEs) are investigated with different phase-separated structures, prepared by systematically adjusting the volume ratio of the phases, to elucidate the structure-property-electrochemical performance relationship of the PCEE in the LMBs. At an optimal volume ratio of elastomer phase to plastic-crystal phase (i.e., 1:1), bicontinuous-structured PCEE, consisting of efficient ion-conducting, plastic-crystal pathways with long-range connectivity within a crosslinked elastomer matrix, exhibits exceptionally high ionic conductivity (≈10 S cm ) at 20 °C and excellent mechanical resilience (elongation at break ≈ 300%). A full cell featuring this optimized PCEE, a 35 µm thick Li anode, and a high loading LiNi Mn Co O (NMC-83) cathode delivers a high energy density of 437 Wh kg . The established structure-property-electrochemical performance relationship of the PCEE for solid-state LMBs is expected to inform the development of the elastomeric electrolytes for various electrochemical energy systems.

摘要

固态锂(Li)金属电池(LMBs)作为下一代电池技术备受关注,在解决不受控制的 Li 枝晶问题的前提下,其能量密度和操作安全性可超越传统的锂离子电池。在这项研究中,通过系统调整各相的体积比,研究了具有不同相分离结构的各种塑料晶体嵌入弹性体电解质(PCEE),以阐明 LMB 中 PCEE 的结构-性能-电化学性能关系。在弹性体相与塑料晶体相的最佳体积比(即 1:1)下,由交联弹性体基质内具有长程连接的高效离子传导塑料晶体途径组成的双连续结构 PCEE,在 20°C 时表现出异常高的离子电导率(≈10 S cm )和出色的机械弹性(断裂伸长率≈300%)。具有这种优化的 PCEE、35 µm 厚的 Li 阳极和高负载量 LiNi Mn Co O(NMC-83)阴极的全电池提供了 437 Wh kg 的高能量密度。所建立的固态 LMB 用 PCEE 的结构-性能-电化学性能关系有望为各种电化学能量系统的弹性体电解质的发展提供信息。

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