Effects of Concentrated Salt and Resting Protocol on Solid Electrolyte Interface Formation for Improved Cycle Stability of Anode-Free Lithium Metal Batteries

电解质 材料科学 阳极 化学工程 锂(药物) 电池(电) 盐(化学) 电极 化学 有机化学 医学 物理 工程类 内分泌学 物理化学 功率(物理) 量子力学
作者
Tamene Tadesse Beyene,Bikila Alemu Jote,Zewdu Tadesse Wondimkun,Bizualem Wakuma Olbassa,Chen−Jui Huang,Balamurugan Thirumalraj,Chia‐Hsin Wang,Wei‐Nien Su,Hongjie Dai,Bing‐Joe Hwang
出处
期刊:ACS Applied Materials & Interfaces [American Chemical Society]
卷期号:11 (35): 31962-31971 被引量:103
标识
DOI:10.1021/acsami.9b09551
摘要

The combined effect of concentrated electrolyte and cycling protocol on the cyclic performance of the anode-free battery (AFB) is evaluated systematically. In situ deposition of Li in the AFB configuration in the presence of a concentrated electrolyte containing fluorine-donating salt and resting the deposit enables the formation of stable and uniform SEI. The SEI intercepts the undesirable side reaction between the deposit and solvent in the electrolyte and reduces electrolyte and Li consumption during cycling. The synergy between the laboratory-prepared concentrated 3 M LiFSI in the ester-based electrolyte and our resting protocol significantly enhanced cyclic performances of AFBs in comparison to the commercial carbonate-based dilute electrolyte, 1 M LiPF 6 . Benefitting from the combined effect, Cu∥LiFePO 4 cells delivered excellent cyclic performance at 0.5 mA/cm 2 with an average CE of up to 98.78%, retaining a reasonable discharge capacity after 100 cycles. Furthermore, the AFB can also be cycled at a high rate up to 1.0 mA/cm 2 with a high average CE and retaining the encouraging discharge capacity after 100 cycles. The fast cycling and stable performance of these cells are attributed to the formation of robust, flexible, and tough F-rich conductive SEI on the surface of the in situ-deposited Li by benefiting from the combined effect of the resting protocol and the concentrated electrolyte. A condescending understanding of the mechanism of SEI formation and material choice could facilitate the development of AFBs as future advanced energy storage devices.
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