Article ID Journal Published Year Pages File Type
1617690 Journal of Alloys and Compounds 2011 5 Pages PDF
Abstract

Carbon-coated Li1.1V0.9O2 powder was prepared by dissolving pure crystalline Li1.1V0.9O2 powder in an ethanol solution containing 10 wt% sucrose and sintering it under an argon atmosphere. The structures of the bare and carbon-coated Li1.1V0.9O2 powders were analyzed using X-ray diffraction, Raman spectroscopy, scanning electron microscopy, and transmission electron microscopy. These powders were used as anode active materials for lithium ion batteries in order to determine the electrochemical properties via cyclic voltammetry (CV) and constant current methods. CV revealed the carbon-coated Li1.1V0.9O2 anode to have better reversibility during cycling than the bare Li1.1V0.9O2 anode. Carbon-coated Li1.1V0.9O2 also showed a higher specific discharge and charge capacities, as well as lower electrolyte and interfacial resistance properties. The observed specific discharge and charge capacities of the carbon-coated Li1.1V0.9O2 anode were 330 mAh/g and 250 mAh/g, respectively, in the first cycle. In addition, the cyclic efficiency of this cell was 75.8% in the first cycle. After 20 cycles, the specific capacity of the Li1.1V0.9O2 anode was reduced to approximately 50% of its initial capacity, irrespective of the presence of a carbon coating.

Graphical abstractFigure optionsDownload full-size imageDownload as PowerPoint slideResearch highlights▶ The carbon-coated Li1.1V0.9O2 anode showed a better reversible reaction than the bare Li1.1V0.9O2 anode. ▶ The specific charge/discharge capacity of carbon-coated Li1.1V0.9O2 anode was higher than that of the bare Li1.1V0.9O2 anode. ▶ The observed specific discharge capacity and charge capacity of the carbon-coated Li1.1V0.9O2 anode were 330 mAh/g and 250 mAh/g in the first cycle.

Related Topics
Physical Sciences and Engineering Materials Science Metals and Alloys
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