Article ID | Journal | Published Year | Pages | File Type |
---|---|---|---|---|
7731267 | Journal of Power Sources | 2015 | 6 Pages |
Abstract
High capacity, stable Fe3O4/Fe nanocomposites for Li-ion battery anodes were manufactured via heat-treating Fe3O4-C (amorphous) nanoparticles that were made via a continuous hydrothermal flow synthesis (CHFS) reactor. Compared to analogous Fe3O4 nanoparticles, the Fe3O4/Fe nanocomposite anodes (vs. Li/Li+), displayed a high specific capacity of ca. 390 mAh gâ1 after 50 cycles, at a modest current rate of 200 mA gâ1 (at the highest Fe metal content). The performance of the Fe3O4/Fe materials at higher current rates was also excellent (ca. 260 mAh gâ1 at the highest current rate of 2000 mA gâ1), which confirms that the presence of Fe metallic particles can significantly improve cycling stability of Li-ion battery anodes by retaining structural metal oxide integrity.
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Authors
Mechthild Lübke, Neel M. Makwana, Robert Gruar, Chris Tighe, Dan Brett, Paul Shearing, Zhaolin Liu, Jawwad A. Darr,