How To Improve Capacity and Cycling Stability for Next Generation Li–O2 Batteries: Approach with a Solid Electrolyte and Elevated Redox Mediator Concentrations

电解质 阳极 氧化还原 锂(药物) 材料科学 碳纤维 电极 化学工程 降级(电信) 阴极 无机化学 化学 复合材料 冶金 计算机科学 医学 物理化学 复合数 工程类 内分泌学 电信
作者
Benjamin Bergner,Martin R. Busche,Ricardo Pinedo,Balázs B. Berkes,Daniel Schröder,Jürgen Janek
出处
期刊:ACS Applied Materials & Interfaces [American Chemical Society]
卷期号:8 (12): 7756-7765 被引量:167
标识
DOI:10.1021/acsami.5b10979
摘要

Because of their exceptionally high specific energy, aprotic lithium oxygen (Li-O2) batteries are considered as potential future energy stores. Their practical application is, however, still hindered by the high charging overvoltages and detrimental side reactions. Recently, the use of redox mediators dissolved in the electrolyte emerged as a promising tool to enable charging at moderate voltages. The presented work advances this concept and distinctly improves capacity and cycling stability of Li-O2 batteries by combining high redox mediator concentrations with a solid electrolyte (SE). The use of high redox mediator concentrations significantly increases the discharge capacity by including the oxidation and reduction of the redox mediator into charge cycling. Highly efficient cycling is achieved by protecting the lithium anode with a solid electrolyte, which completely inhibits unfavored deactivation of oxidized species at the anode. Surprisingly, the SE also suppresses detrimental side reactions at the carbon electrode to a large extent and enables stable charging completely below 4.0 V over a prolonged period. It is demonstrated that anode and cathode communicate deleteriously via the liquid electrolyte, which induces degradation reactions at the carbon electrode. The separation of cathode and anode with a SE is therefore considered as a key step toward stable Li-O2 batteries, in conjunction with a concentrated redox mediator electrolyte.

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