Karunarathna, R., Ranasinghe Arachchige, H., Karunarathne, S., Wijesinghe, W. P. S. L., Sandaruwan, C., Mantilaka, M. M. M. P. G., Kannangara, Y. Y. and Abdelkader, A. M., 2024. Intercalating Graphite-Based Na-Ion Battery Anodes with Integrated Magnetite. Small Science. (In Press)
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Abstract
Graphite is known as the most successful anode material found for Li-ion batteries. However, unfortunately, graphite delivers an ordinary capacity as anode material for the next-generation Na-ion batteries (SIBs) due to difficulties in intercalating larger Na+ ions in between the layers of graphene due to incompatible d-spacing. The methodologies investigated in deriving suitable anode structures for SIBs are found to be either less effective, expensive, or rather too complex in most cases. Herein, a simple strategy is introduced to derive suitable anode materials for SIBs through a modified electrochemical exfoliation of graphite. The introduced exfoliation process is able to graft Fe3O4 (magnetite) on graphite allowing the structure to expand, supporting a swift intercalation and deintercalation of Na ions. The synthesized magnetite-functionalized graphene nanoplatelets are identified as a well-suited anode material for SIBs, with its efficient intercalation obtained through the expanded interlayer spacing of 3.9 Å and the surface redox pseudocapacitive activity attained through the surface-grafted magnetite. The effectiveness of the synthesized is reflected in the obtained high discharge capacitance of 420 mAh g−1, with 96% capacitive retention over 1000 cycles. The study opens new opportunities for prospective low-cost anode materials for energy storage applications.
Item Type: | Article |
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ISSN: | 2688-4046 |
Uncontrolled Keywords: | electrochemical magnetite functionalization; expanded interlayer spacing; intercalating graphite anodes; sodium-ion batteries |
Group: | Faculty of Science & Technology |
ID Code: | 40670 |
Deposited By: | Symplectic RT2 |
Deposited On: | 08 Jan 2025 11:16 |
Last Modified: | 08 Jan 2025 11:16 |
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