Blocking Polysulfide with Co<sub>2</sub>B@CNT via "Synergetic Adsorptive Effect" toward Ultrahigh-Rate Capability and Robust Lithium-Sulfur Battery.
basic_science · Level V
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- Record sourced from PubMed, PMID 31184129.
- Also identified by DOI 10.1021/acsnano.9b01329.
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Abstract
Li-S batteries have attracted great interest as the next-generation secondary batteries due to their high energy density, being environmentally friendly, and low price. However, the road to commercialization of lithium-sulfur batteries remains limited owing to the "shuttle effect" of soluble polysulfides, which results in the inferior cycle stability. Herein, a potent functional separator is developed to restrain the "shuttle effect" by coating Co<sub>2</sub>B@carbon nanotube layer on the commercialized polypropylene separator. In merits of the coadsorption of Co sites and B sites, such Co<sub>2</sub>B shows highly efficient polysulfides block (11.67 mg/m<sup>2</sup> for Li<sub>2</sub>S<sub>6</sub>). Besides, the composite also exhibits obviously catalysis from Li<sub>2</sub>S<sub>8</sub> to Li<sub>2</sub>S. By combining the fast electron transportation along the carbon nanotube, a superior rate performance is achieved with the modified separator and common carbon-sulfur cathode. Typically, the cell with Co<sub>2</sub>B@CNT shows prominent cycling life with a capacity degradation of 0.0072% per cycle (3000 cycles) and ultrahigh-rate capability at 5 C current (1172.8 mAh/g), which outstands the previously reported polysulfides barrier layer. The cell with Co<sub>2</sub>B@CNT can exhibit electrochemical performance at areal capacity of 5.5 mAh/cm<sup>2</sup> (0.5 C) when the sulfur loading increased to 5.8 mg/cm<sup>2</sup>. This work defines an efficacious strategy to restrain the "shuttle effect" of polysulfides and shed light on the great potential of borides in Li-S battery.