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Tuning Transition Metal Oxide–Sulfur Interactions for Long Life Lithium Sulfur Batteries: The “Goldilocks” Principle

Advanced Energy Materials · 2015 · Vol. 6(6)
Xiao LiangChun Yuen KwokFernanda Lodi‐MarzanoQuanquan PangMarine CuisinierHe HuangConnor J. HartDiane HoutardeKavish KaupHeino SommerTorsten BrezesinskiJürgen JanekLinda F. Nazar

Abstract

The lithium‐sulfur battery is a compelling energy storage system because its high theoretical energy density exceeds Li‐ion batteries at much lower cost, but applications are thwarted by capacity decay caused by the polysulfide shuttle. Here, proof of concept and the critical metrics of a strategy to entrap polysulfides within the sulfur cathode by their reaction to form a surface‐bound active redox mediator are demonstrated. It is shown through a combination of surface spectroscopy and cyclic voltammetry studies that only materials with redox potentials in a targeted window react with polysulfides to form active surface‐bound polythionate species. These species are directly correlated to superior Li‐S cell performance by electrochemical studies of high surface area oxide cathodes with redox potentials below, above, and within this window. Optimized Li‐S cells yield a very low fade rate of 0.048% per cycle. The insight gained into the fundamental surface mechanism and its correlation to the stability of the electrochemical cell provides a bridge between mechanistic understanding and battery performance essential for the design of high performance Li‐S cells.

Advanced Battery Materials and TechnologiesAdvancements in Battery MaterialsAdvanced battery technologies researchPolysulfideRedoxMaterials scienceElectrochemistrySulfurCathodeCyclic voltammetryOxideBattery (electricity)Lithium (medication)

Funding

  • Canada Research Chairs
  • Natural Sciences and Engineering Research Council of Canada
Citations
738
FWCI
34.83
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References
48
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