Abstract
SnS2 as a high energy anode material has attracted extensive research interest recently. However, the fast capacity decay and low rate performance in alkaline-ion batteries associated with repeated volume variation and low electrical conductivity plague them from practical application. Herein, we propose a facile method to solve this problem by synthesizing porous SnS2 microflowers with in-situ formed sulfur vacancies. The flexible porous nanosheets in the three-dimensional flower-like nanostructure provide facile strain relaxation to avoid stress concentration during the volume changes. Rich sulfur vacancies and porous structure enable the fast and efficient electron transport. The porous SnS2-x microflowers exhibit outstanding performance for lithium ion battery in terms of high capacity (1375 mAh g-1 at 100 mA g-1) and outstanding rate capability (827 mA h g-1 at high rate of 2 A g-1). For sodium ion battery, a high capacity (∼522 mAh g-1) can be achieved at 5 A g-1 after 200 cycles for SnS2-x microflowers. The rational design in nanostructures, as well as the chemical compositions, might create new opportunities in designing the new architecture for highly efficient energy storage devices.
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Zhang, L., Yao, B., Sun, C., Shi, S., Xu, W., & Zhao, K. (2020). Sulfur-deficient porous SnS2-x microflowers as superior anode for alkaline ion batteries. Materials, 13(2). https://doi.org/10.3390/ma13020443
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