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石榴石固态电解质保护的锂金属电池。

Garnet Solid Electrolyte Protected Li-Metal Batteries.

机构信息

University of Maryland Energy Research Center, University of Maryland , College Park, Maryland 20742, United States.

Department of Materials Science and Engineering, University of Maryland , College Park, Maryland 20742, United States.

出版信息

ACS Appl Mater Interfaces. 2017 Jun 7;9(22):18809-18815. doi: 10.1021/acsami.7b03887. Epub 2017 May 22.

Abstract

Garnet-type solid state electrolyte (SSE) is a promising candidate for high performance lithium (Li)-metal batteries due to its good stability and high ionic conductivity. One of the main challenges for garnet solid state batteries is the poor solid-solid contact between the garnet and electrodes, which results in high interfacial resistance, large polarizations, and low efficiencies in batteries. To address this challenge, in this work gel electrolyte is used as an interlayer between solid electrolyte and solid electrodes to improve their contact and reduce their interfacial resistance. The gel electrolyte has a soft structure, high ionic conductivity, and good wettability. Through construction of the garnet/gel interlayer/electrode structure, the interfacial resistance of the garnet significantly decreased from 6.5 × 10 to 248 Ω cm for the cathode and from 1.4 × 10 to 214 Ω cm for the Li-metal anode, successfully demonstrating a full cell with high capacity (140 mAh/g for LiFePO cathode) over 70 stable cycles in room temperature. This work provides a binary electrolyte consisting of gel electrolyte and solid electrolyte to address the interfacial challenge of solid electrolyte and electrodes and the demonstrated hybrid battery presents a promising future for battery development with high energy and good safety.

摘要

石榴石型固态电解质(SSE)因其良好的稳定性和高离子电导率,是高性能锂(Li)-金属电池的有前途的候选材料。石榴石固态电池的主要挑战之一是石榴石与电极之间的固-固接触不良,这导致电池的界面电阻高、极化大、效率低。为了解决这一挑战,本工作在固态电解质和固态电极之间使用凝胶电解质作为中间层,以改善它们的接触并降低它们的界面电阻。凝胶电解质具有柔软的结构、高离子电导率和良好的润湿性。通过构建石榴石/凝胶中间层/电极结构,石榴石的界面电阻从阴极的 6.5×10 显著降低到 248 Ω cm,从 Li 金属阳极的 1.4×10 降低到 214 Ω cm,成功地在室温下展示了具有高容量(LiFePO4 阴极为 140 mAh/g)的全电池,经过 70 次稳定循环。这项工作提供了一种由凝胶电解质和固态电解质组成的双元电解质,以解决固态电解质和电极的界面挑战,所展示的混合电池为具有高能量和良好安全性的电池发展提供了有前景的未来。

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