Article ID | Journal | Published Year | Pages | File Type |
---|---|---|---|---|
7724706 | Journal of Power Sources | 2018 | 8 Pages |
Abstract
In this work, the scalable ceramic-polymer composite electrolytes composed of Li6.4La3Zr1.4Ta0.6O12, poly (ethylene oxide), lithium bis(trifluoromethane)sulfonimide, and solid plasticizer succinonitrile are prepared in the form of flexible membranes. The ionic transport properties, electrochemical stability, and interfacial behaviors against lithium electrode of this electrolyte are systematically investigated. Among these electrolytes, the sample containing 60â¯wt.% Li6.4La3Zr1.4Ta0.6O12 and 10â¯wt.% succinonitrile presents a maximum conductivity of 1.22â¯Ãâ¯10â4â¯Sâ¯cm-1â¯at 30â¯Â°C, and exhibits a broadened electrochemical stability window of 5.5â¯V vs. Li/Li+. Moreover, the ionic transference number of this electrolyte is improved to 0.41, and the interfacial compatibility against lithium electrode is excellent under both static and dynamic conditions. Excellent cycling and rate performance of the Li/LiFePO4 cells are resulted from the enhanced ionic transport properties and improved interfacial contact between electrolyte and electrodes. The cell run at 0.5C delivers a discharge specific capacity of 151.1â¯mAh·gâ1 after 200 cycles under 60â¯Â°C, and retains 98% of the maximum specific capacity. Notably, this cell also can be successfully charged and discharged at 45â¯Â°C and still delivers a discharge capacity of 124.1â¯mAh·gâ1 after 70 cycles at 0.5â¯C.
Related Topics
Physical Sciences and Engineering
Chemistry
Electrochemistry
Authors
Wenping Zha, Fei Chen, Dunjie Yang, Qiang Shen, Lianmeng Zhang,