Department of Chemistry and Biotechnology, Yokohama National University , 79-5 Tokiwadai, Hodogaya-ku, Yokohama 240-8501, Japan.
ACS Appl Mater Interfaces. 2016 Jun 29;8(25):16053-62. doi: 10.1021/acsami.6b03736. Epub 2016 Jun 20.
Lithium-ion sulfur batteries with a [graphite|solvate ionic liquid electrolyte|lithium sulfide (Li2S)] structure are developed to realize high performance batteries without the issue of lithium anode. Li2S has recently emerged as a promising cathode material, due to its high theoretical specific capacity of 1166 mAh/g and its great potential in the development of lithium-ion sulfur batteries with a lithium-free anode such as graphite. Unfortunately, the electrochemical Li(+) intercalation/deintercalation in graphite is highly electrolyte-selective: whereas the process works well in the carbonate electrolytes inherited from Li-ion batteries, it cannot take place in the ether electrolytes commonly used for Li-S batteries, because the cointercalation of the solvent destroys the crystalline structure of graphite. Thus, only very few studies have focused on graphite-based Li-S full cells. In this work, simple graphite-based Li-S full cells were fabricated employing electrolytes beyond the conventional carbonates, in combination with highly loaded Li2S/graphene composite cathodes (Li2S loading: 2.2 mg/cm(2)). In particular, solvate ionic liquids can act as a single-phase electrolyte simultaneously compatible with both the Li2S cathode and the graphite anode and can further improve the battery performance by suppressing the shuttle effect. Consequently, these lithium-ion sulfur batteries show a stable and reversible charge-discharge behavior, along with a very high Coulombic efficiency.
采用[石墨|溶剂化离子液体电解质|硫化锂(Li2S)]结构的锂离子硫电池被开发出来,以实现无需锂金属阳极的高性能电池。Li2S 最近作为一种很有前途的阴极材料出现,因为它具有 1166mAh/g 的高理论比容量,并且在开发无锂金属阳极(如石墨)的锂离子硫电池方面具有很大的潜力。不幸的是,在石墨中电化学 Li(+)的嵌入/脱嵌高度依赖于电解质:虽然在从锂离子电池继承而来的碳酸盐电解质中,该过程运行良好,但它不能在常用于 Li-S 电池的醚电解质中发生,因为溶剂的共嵌入破坏了石墨的结晶结构。因此,只有很少的研究集中在基于石墨的 Li-S 全电池上。在这项工作中,采用超越传统碳酸盐的电解质,结合高负载量的 Li2S/石墨烯复合阴极(Li2S 负载量:2.2mg/cm(2)),制备了简单的基于石墨的 Li-S 全电池。特别是,溶剂化离子液体可以作为单相电解质,同时与 Li2S 阴极和石墨阳极兼容,并通过抑制穿梭效应进一步提高电池性能。因此,这些锂离子硫电池表现出稳定、可逆的充放电行为,以及非常高的库仑效率。