首页> 美国卫生研究院文献>Advanced Science >Enhanced Sulfur Transformation by Multifunctional FeS2/FeS/S Composites for High‐Volumetric Capacity Cathodes in Lithium–Sulfur Batteries
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Enhanced Sulfur Transformation by Multifunctional FeS2/FeS/S Composites for High‐Volumetric Capacity Cathodes in Lithium–Sulfur Batteries

机译:多功能FeS2 / FeS / S复合材料增强锂硫电池中高容量容量阴极的硫转化率

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摘要

Lithium–sulfur batteries are currently being explored as promising advanced energy storage systems due to the high theoretical specific capacity of sulfur. However, achieving a scalable synthesis for the sulfur electrode material whilst maintaining a high volumetric energy density remains a serious challenge. Here, a continuous ball‐milling route is devised for synthesizing multifunctional FeS2/FeS/S composites for use as high tap density electrodes. These composites demonstrate a maximum reversible capacity of 1044.7 mAh g−1 and a peak volumetric capacity of 2131.1 Ah L−1 after 30 cycles. The binding direction is also considered here for the first time between dissolved lithium polysulfides (LiPSs) and host materials (FeS2 and FeS in this work) as determined by density functional theory calculations. It is concluded that if only one lithium atom of the polysulfide bonds with the sulfur atoms of FeS2 or FeS, then any chemical interaction between these species is weak or negligible. In addition, FeS2 is shown to have a strong catalytic effect on the reduction reactions of LiPSs. This work demonstrates the limitations of a strategy based on chemical interactions to improve cycling stability and offers new insights into the development of high tap density and high‐performance sulfur‐based electrodes.
机译:由于硫的高理论比容量,锂硫电池目前正被开发为有前途的先进储能系统。然而,在保持高体积能量密度的同时实现硫电极材料的可缩放合成仍然是严峻的挑战。在这里,设计了一条连续的球磨路线,以合成用作高抽头密度电极的多功能FeS2 / FeS / S复合材料。这些复合材料在30个循环后的最大可逆容量为1044.7 mAh g -1 ,最大体积容量为2131.1 Ah L -1 。由密度泛函理论计算确定,此处也是首次考虑了溶解的多硫化锂(LiPSs)与基质材料(本研究中的FeS2和FeS)之间的结合方向。结论是,如果多硫化物中只有一个锂原子与FeS2或FeS的硫原子键合,那么这些物质之间的任何化学相互作用都是弱的或可忽略的。另外,显示出FeS 2对LiPS的还原反应具有强烈的催化作用。这项工作证明了基于化学相互作用来提高循环稳定性的策略的局限性,并为开发高抽头密度和高性能硫基电极提供了新的见解。

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