4.8 Article

Sulfurized solid electrolyte interphases with a rapid Li+ diffusion on dendrite-free Li metal anodes

期刊

ENERGY STORAGE MATERIALS
卷 10, 期 -, 页码 199-205

出版社

ELSEVIER
DOI: 10.1016/j.ensm.2017.03.008

关键词

Li metal; Anode; Dendrite; Sulfurized solid electrolyte interphase; Battery; Polycrystalline nanostructures

资金

  1. National Key Research and Development Program [2016YFA0202500]
  2. Natural Scientific Foundation of China [21422604, 21676160, 21276141]

向作者/读者索取更多资源

The notorious growth of Li dendrites significantly shortens the longevity and raises safety concerns of highenergy-density Li metal batteries. We proposed a sulfurized solid electrolyte interphase (SEI) to protect Li metal anode in a working Li metal battery. By incorporating Li2S into the interphase, a polycrystalline and mosaic SEI film with poor crystallinity was achieved. Li2S, Li2O, Li3N, LiNO3, and LiF nanoparticles were embedded in the sulfurized SEI. A high ionic conductivity of 3.1x10(-7) S cm(-1) was achieved for the sulfurized SEI, around one magnitude higher than that of the routine SEI (4.2x10(-8) S cm(-1)). Therefore, uniform plating/stripping of the Li metal was achieved without Li dendrite formation. The sulfurized SEI enabled stable cycling of Li vertical bar Li cells for 500 h at 1.0 mA cm(-2) and for 150 h at 5.0 mA cm(-2). With the protection of a sulfurized SEI film, Li metal anode exhibited a high Coulombic efficiency of 98% during 200 cycles at 1.0 mA cm(-2), while the Coulombic efficiency drastically dropped to 70% at the 200th cycle on Li metal anode with routine SEI. The pouch cells exhibited a plating resistance of -331 and -108 mV, a stripping resistance of 67 and 54 mV on Li metal anode with routine and sulfurized SEI films, respectively. The sharply decreased resistance, endowed by the sulfurized SEI, futher suggested the rapid Li ion diffusion in working Li-metal batteries. This affords new insights into the SEI structure and its critical role in Li metal protection, and sheds a fresh light on the rational design of electrolyte additives and SEI film in a working Li metal battery.

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