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High capacity and high rate capability of nanostructured CuFeO2 anode materials for lithium-ion batteries

journal contribution
posted on 2024-11-16, 08:15 authored by Lin Lu, Jiazhao WangJiazhao Wang, Xuebin Zhu, Xuanwen Gao, Hua LiuHua Liu
Non-toxic, cheap, nanostructured ternary transition metal oxide CuFeO2 was synthesised using a simple sol–gel method at different temperatures. The effects of the processing temperature on the particle size and electrochemical performance of the nanostructured CuFeO2 were investigated. The electrochemical results show that the sample synthesised at 650 °C shows the best cycling performance, retaining a specific capacity of 475 mAh g−1 beyond 100 cycles, with a capacity fading of less than 0.33% per cycle. The electrode also exhibits good rate capability in the range of 0.5C–4C. At the high rate of 4C, the reversible capacity of CuFeO2 is around 170 mAh g−1. It is believed that the ternary transition metal oxide CuFeO2 is quite acceptable compared with other high performance nanostructured anode materials.

Funding

Development of inorganic-conducting polymer composites and ionic liquid-based electrolytes for rechargeable lithium batteries

Australian Research Council

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History

Citation

Lu, L., Wang, J., Zhu, X., Gao, X. Liu, H. K. (2011). High capacity and high rate capability of nanostructured CuFeO2 anode materials for lithium-ion batteries. Journal of Power Sources, 196 (16), 7025-7029. >

Journal title

Journal of Power Sources

Volume

196

Issue

16

Pagination

7025-7029

Language

English

RIS ID

34589

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