Rechargeable lithium semi-flow battery using Li sub(7)P sub(3)S sub(11)

Rechargeable batteries play a pivotal role in conversion of chemical energy to electrical energy and energy storage. Lithium batteries have been considered as promising power supply for various electric vehicles and grid storage systems. However, the formation of lithium dendrites and use of liquid...

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Veröffentlicht in:Solid state ionics 2016-05, Vol.288, p.253-256
Hauptverfasser: Rao, RPrasada, Yuen, J M, Adams, S
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Sprache:eng
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Zusammenfassung:Rechargeable batteries play a pivotal role in conversion of chemical energy to electrical energy and energy storage. Lithium batteries have been considered as promising power supply for various electric vehicles and grid storage systems. However, the formation of lithium dendrites and use of liquid electrolytes turned out to be the major impediment in realising the potential of these batteries. To overcome these challenges here we demonstrate the use of various fast-ion conducting solids as solid electrolytes in semi-flow Li-S batteries containing catholyte slurries. Lithium conducting Li sub(7)P sub(3)S sub(11) was prepared using ball- milling followed by annealing at 250 degree C. Rietveld refinements of compounds indicated that the product is Li sub(7)P sub(3)S sub(11) with space group P-1 and lattice parameters of a = 12.42(2) Aa, b = 6.066(9) Aa, c = 12.52(8) Aa. The Li sub(7)P sub(3)S sub(11) produced exhibits an ionic conductivity of the order of 7.1 10 super(- 4) S/cm at 30 degree C. Here, we investigate the stability of these solid electrolytes in contact with catholytes consisting of polysulfide, Li sub(2)S sub(8), dissolved in monoglyme. Li sub(2)S sub(8)/Li sub(7)P sub(3)S sub(11)/Li semi-flow rechargeable battery exhibited an initial discharge specific capacity of 1268 mAh/g at 1 C rate and retained 748 mAh/g after the 10th cycle.
ISSN:0167-2738
DOI:10.1016/j.ssi.2016.01.015