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基于异质硅基界面的稳定固态锂-氧电池。

A stable solid-state lithium-oxygen battery enabled by heterogeneous silicon-based interface.

机构信息

National Laboratory of Solid State Microstructures/School of Electronics Science and Engineering, Nanjing University, Nanjing, 210093, People's Republic of China.

College of Electrical and Information Engineering, Zhengzhou University of Light Industry, Zheng Zhou, 450002, People's Republic of China.

出版信息

Nanotechnology. 2023 Feb 9;34(16). doi: 10.1088/1361-6528/acb3cd.

Abstract

Solid-state lithium-metal batteries using inorganic solid-state electrolyte (SSE) instead of liquid-electrolyte, especially lithium-oxygen (Li-O) battery, have attracted much more attention due to their high-energy density and safety. However, the poor interface contact between electrodes and SSEs makes these batteries lose most of their capacity and power during cycling. Here we report that by coating a heterogeneous silicon carbide on lithium metal anode and LiAlGePO(LAGP)-SSE, a good interface contact is created between the electrode and electrolyte that can effectively reduce the interface impedance and improve the cycle performance of the assembled battery. As a result, the solid-sate Li-Obattery demonstrates a cycle lifespan of ∼78 cycles being at least 3-times higher than the solid-state Li-Obattery without silicon carbide with a capacity limitation of 1000 mAh gat 250 mA g. The characterization of discharge products indicates a typical two-electron convention of oxygen-to-lithium oxide for the solid-state Li-Obattery system. This work paves a way for developing high-energy long-cycle solid-state lithium-metal battery. The work provides insights into the interface between the Li-metal and SSE to develop high-energy long-cycle all solid-state Li-metal batteries.

摘要

使用无机固态电解质 (SSE) 代替液态电解质的固态锂金属电池,特别是锂-氧 (Li-O) 电池,由于其高能量密度和安全性而引起了更多关注。然而,电极和 SSE 之间较差的界面接触使得这些电池在循环过程中失去了大部分容量和功率。在这里,我们报告说,通过在锂金属阳极和 LiAlGePO(LAGP)-SSE 上涂覆异质碳化硅,可以在电极和电解质之间形成良好的界面接触,从而有效降低界面阻抗并改善组装电池的循环性能。结果,固态 Li-O 电池的循环寿命约为 78 次,比没有碳化硅的固态 Li-O 电池高至少 3 倍,其容量限制为 1000 mAh gat 250 mA g。放电产物的表征表明,固态 Li-O 电池系统中存在典型的两电子氧到氧化锂的转化。这项工作为开发高能量长循环固态锂金属电池铺平了道路。这项工作深入了解了 Li 金属和 SSE 之间的界面,以开发高能量长循环全固态 Li 金属电池。

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