Abstract
Metal sulfides have been extensively studied as alternative anodes for lithium-ion batteries (LIBs) due to their high specific capacity, which comes from their combined conversion and alloying/de-alloying reactions with lithium, forming Li2S and corresponding lithium alloys, respectively. However, the large volume fluctuation during cycling, low electronic/ionic conductivities of both metal sulfides and Li2S, and the electrochemical inactivity of Li2S lead to poor reversibility and stability. Here, we report a facile way to synthesize a three-dimensional carbon-coated stannous sulfide-molybdenum disulfide composite (3D SnS-MoS2@C) which is proposed to alleviate the aforementioned problems. 3D SnS-MoS2@C exhibits a highly porous structure, which enhances the contact between the electrode and the electrolyte, promotes the transport of both electrons and Li+, and buffers the volume change during cycling. MoS2 contributes to the specific capacity and catalyzes the oxidation of Li2S. The 3D SnS-MoS2@C anode demonstrates a capacity of 887.1 mA h g-1 for the first cycle at 200 mA g-1 and achieves a capacity retention of 97.1% over 200 cycles. In addition, the ternary composite exhibits a superior rate performance and cycling lifespan, achieving a gravimetric capacity of 651.2 mA h g-1 at 1000 mA g-1 after 500 cycles. The proposed facile and effective strategy could be universally applied to other metal sulfide-based electrodes. This journal is
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CITATION STYLE
Luo, Y., Chen, C., Sun, W., Shi, L., Lin, Y., Cong, G., … Xu, J. (2020). 3D carbon-coated stannous sulfide-molybdenum disulfide anodes for advanced lithium-ion batteries. Materials Advances, 1(7), 2323–2331. https://doi.org/10.1039/d0ma00493f
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