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A sulfur host based on titanium monoxide@carbon hollow spheres for advanced lithium-sulfur batteries.


ABSTRACT: Lithium-sulfur batteries show advantages for next-generation electrical energy storage due to their high energy density and cost effectiveness. Enhancing the conductivity of the sulfur cathode and moderating the dissolution of lithium polysulfides are two key factors for the success of lithium-sulfur batteries. Here we report a sulfur host that overcomes both obstacles at once. With inherent metallic conductivity and strong adsorption capability for lithium-polysulfides, titanium monoxide@carbon hollow nanospheres can not only generate sufficient electrical contact to the insulating sulfur for high capacity, but also effectively confine lithium-polysulfides for prolonged cycle life. Additionally, the designed composite cathode further maximizes the lithium-polysulfide restriction capability by using the polar shells to prevent their outward diffusion, which avoids the need for chemically bonding all lithium-polysulfides on the surfaces of polar particles.

SUBMITTER: Li Z 

PROVIDER: S-EPMC5080434 | biostudies-literature | 2016 Oct

REPOSITORIES: biostudies-literature

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A sulfur host based on titanium monoxide@carbon hollow spheres for advanced lithium-sulfur batteries.

Li Zhen Z   Zhang Jintao J   Zhang Jintao J   Guan Buyuan B   Wang Da D   Liu Li-Min LM   Liu Li-Min LM   Lou Xiong Wen David XW  

Nature communications 20161020


Lithium-sulfur batteries show advantages for next-generation electrical energy storage due to their high energy density and cost effectiveness. Enhancing the conductivity of the sulfur cathode and moderating the dissolution of lithium polysulfides are two key factors for the success of lithium-sulfur batteries. Here we report a sulfur host that overcomes both obstacles at once. With inherent metallic conductivity and strong adsorption capability for lithium-polysulfides, titanium monoxide@carbon  ...[more]

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