Interfacial engineering in SnO2-embedded graphene anode materials for high performance lithium-ion batteries

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Abstract

Tin dioxide is regarded as an alternative anode material rather than graphite due to its high theoretical specific capacity. Modification with carbon is a typical strategy to mitigate the volume expansion effect of SnO2 during the charge process. Strengthening the interface bonding is crucial for improving the electrochemical performance of SnO2/C composites. Here, SnO2-embedded reduced graphene oxide (rGO) composite with a low graphene content of approximately 5 wt.% was in situ synthesized via a cetyltrimethylammonium bromide (CTAB)-assisted hydrothermal method. The structural integrity of the SnO2/rGO composite is significantly improved by optimizing the Sn–O–C electronic structure with CTAB, resulting a reversible capacity of 598 mAh g−1 after 200 cycles at a current density of 1 A g−1. CTAB-assisted synthesis enhances the rate performance and cyclic stability of tin dioxide/graphene composites, and boosts their application as the anode materials for the next-generation lithium-ion batteries.

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Li, X., Zhao, Z., Deng, Y., Ouyang, D., Yang, X., Chen, S., & Liu, P. (2024). Interfacial engineering in SnO2-embedded graphene anode materials for high performance lithium-ion batteries. Scientific Reports, 14(1). https://doi.org/10.1038/s41598-024-67647-w

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