电化学
阳极
碳酸乙烯酯
分离器(采油)
阴极
材料科学
电极
无机化学
化学工程
化学
碳纤维
碳酸盐
分析化学(期刊)
电解质
环境化学
有机化学
复合材料
物理化学
工程类
物理
复合数
热力学
作者
Michael Metzger,Cyril Marino,Johannes Sicklinger,Dominik Haering,Hubert A. Gasteiger
出处
期刊:Journal of The Electrochemical Society
[The Electrochemical Society]
日期:2015-01-01
卷期号:162 (7): A1123-A1134
被引量:156
摘要
The anodic oxidation stability of battery components like the conductive carbon black (Super C65) and the co-solvent ethylene carbonate (EC) is of great relevance, especially with regards to high-voltage cathode materials. In this study, we use On-line Electrochemical Mass Spectrometry (OEMS) to deconvolute the CO and CO2 evolution from the anodic oxidation of carbon and electrolyte by using a fully 13C-isotope labeled electrolyte based on ethylene carbonate with 2 M LiClO4. We present a newly developed two-compartment cell, which provides a tight seal between anode and cathode compartment via a solid Li+-ion conducting separator, and which thus allows us to examine the effect of trace amounts of water on the anodic oxidation of carbon (12C) and ethylene carbonate (13C) at high potentials (> 4.5 V) and 10 to 60°C. Moreover, we report on the temperature dependence of the water-driven hydrolysis of ethylene carbonate accompanied by CO2 evolution. Finally, by quantifying the evolution rates of 12CO/12CO2 and 13CO/13CO2 at 5.0 V, we demonstrate that the anodic oxidation of carbon and electrolyte can be substantial, especially at high temperature and in the presence of trace water, posing significant challenges for the implementation of 5 V cathode materials.
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