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Improving the cycling stability of lithium-sulfur batteries by hollow dual-shell coating.


ABSTRACT: Herein, a novel hybrid S@MnO2@C nanosphere, comprising sulfur nanoparticles encapsulated by a MnO2@C hollow dual-shell, is reported. Benefiting from a conductive C outer layer, the S@MnO2@C hybrid nanosphere provided highly efficient pathways for fast electron/ion transfer and sufficient free space for the expansion of the encapsulated sulfur nanoparticles. Moreover, the dual-shell composed of a MnO2 inner layer and a C outer layer coating on S not only improved the efficacious encapsulation of sulfur, but also significantly suppressed the dissolution of polysulfides during cycling. As a result, the S@MnO2@C electrode shows high capacity, high coulombic efficiency and excellent cycling stability. The S@MnO2@C cathode delivered a discharge capacity of 593 mA h g-1 in the fourth cycle and was able to maintain 573 mA h g-1 after 100 charge-discharge cycles at 1.0C, corresponding to a capacity retention of 96.6%.

SUBMITTER: Zhang J 

PROVIDER: S-EPMC9078604 | biostudies-literature | 2018 Feb

REPOSITORIES: biostudies-literature

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Improving the cycling stability of lithium-sulfur batteries by hollow dual-shell coating.

Zhang Jianhua J   Zou Rujia R   Liu Qian Q   He Shu-Ang SA   Xu Kaibing K   Hu Junqing J  

RSC advances 20180201 17


Herein, a novel hybrid S@MnO<sub>2</sub>@C nanosphere, comprising sulfur nanoparticles encapsulated by a MnO<sub>2</sub>@C hollow dual-shell, is reported. Benefiting from a conductive C outer layer, the S@MnO<sub>2</sub>@C hybrid nanosphere provided highly efficient pathways for fast electron/ion transfer and sufficient free space for the expansion of the encapsulated sulfur nanoparticles. Moreover, the dual-shell composed of a MnO<sub>2</sub> inner layer and a C outer layer coating on S not onl  ...[more]

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