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In Situ Construction of 3D Interconnected FeS@Fe3C@Graphitic Carbon Networks for High-Performance Sodium-Ion Batteries

journal contribution
posted on 2024-11-16, 05:17 authored by Qinghong Wang, Wenchao Zhang, Can Guo, Yajie Liu, Chao Wang, Zaiping GuoZaiping Guo
Iron sulfides have been attracting great attention as anode materials for high-performance rechargeable sodium-ion batteries due to their high theoretical capacity and low cost. In practice, however, they deliver unsatisfactory performance because of their intrinsically low conductivity and volume expansion during charge-discharge processes. Here, a facile in situ synthesis of a 3D interconnected FeS at Fe 3 C at graphitic carbon (FeS at Fe 3 C at GC) composite via chemical vapor deposition (CVD) followed by a sulfuration strategy is developed. The construction of the double-layered Fe 3 C/GC shell and the integral 3D GC network benefits from the catalytic effect of iron (or iron oxides) during the CVD process. The unique nanostructure offers fast electron/Na ion transport pathways and exhibits outstanding structural stability, ensuring fast kinetics and long cycle life of the FeS at Fe 3 C at GC electrodes for sodium storage. A similar process can be applied for the fabrication of various metal oxide/carbon and metal sulfide/carbon electrode materials for high-performance lithium/sodium-ion batteries.

Funding

Exploration of Advanced Nanostructures for Sodium-ion Battery Application

Australian Research Council

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Citation

Wang, Q., Zhang, W., Guo, C., Liu, Y., Wang, C. & Guo, Z. (2017). In Situ Construction of 3D Interconnected FeS@Fe3C@Graphitic Carbon Networks for High-Performance Sodium-Ion Batteries. Advanced Functional Materials, 27 (41), 1703390 -1-1703390 -8.

Journal title

Advanced Functional Materials

Volume

27

Issue

41

Language

English

RIS ID

116459

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