多硫化物
电解质
硫黄
钝化
锂硫电池
阳极
电极
电池(电)
硫化铜
溶解
硫化物
阴极
无机化学
化学
铜
化学工程
材料科学
锂(药物)
图层(电子)
冶金
纳米技术
有机化学
工程类
量子力学
医学
物理
内分泌学
功率(物理)
物理化学
作者
Ke Sun,Dong Su,Qing Zhang,David C. Bock,Amy C. Marschilok,Kenneth J. Takeuchi,Esther S. Takeuchi,Hong Gan
摘要
Lithium-Sulfur (Li-S) battery has been a subject of intensive research in recent years due to its potential to provide much higher energy density and lower cost than the current state of the art lithiumion battery technology. In this work, we have investigated Cupric Sulfide (CuS) as a capacitycontributing conductive additive to the sulfur electrode in a Li-S battery. Galvanostatic charge/discharge cycling has been used to compare the performance of both sulfur electrodes and S:CuS hybrid electrodes with various ratios. We found that the conductive CuS additive enhanced the utilization of the sulfur cathode under a 1C rate discharge. However, under a C/10 discharge rate, S:CuS hybrid electrodes exhibited lower sulfur utilization in the first discharge and faster capacity decay in later cycles than a pure sulfur electrode due to the dissolution of CuS. The CuS dissolution is found to be the result of strong interaction between the soluble low order polysulfide Li2S3 and CuS. As a result, we identified the presence of conductive copper-containing sulfides at the cycled lithium anode surface, which may degrade the effectiveness of the passivation function of the solid-electrolyte-interphase (SEI) layer, accounting for the poor cycling performance of the S:CuS hybrid cells at low rate.
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