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Sn 掺杂 InS 的电催化效应助力高性能硫/碳钠离子电池阴极

High performance sulfur/carbon cathode for Na-S battery enabled by electrocatalytic effect of Sn-doped InS.

机构信息

College of Materials Science and Engineering, Xi'an University of Architecture and Technology, Xi'an 710055, PR China; College of Chemistry and Environmental Engineering, Shenzhen University, Shenzhen 518060, PR China.

College of Chemistry and Environmental Engineering, Shenzhen University, Shenzhen 518060, PR China.

出版信息

J Colloid Interface Sci. 2023 Oct;647:546-553. doi: 10.1016/j.jcis.2023.05.142. Epub 2023 May 25.

Abstract

Room-temperature sodium-sulfur (RT Na-S) batteries have been attracting enormous interests due to their low-cost, high capacity and environmental benignity. However, the shuttle effect and the sluggish electrochemical reaction activity of sodium polysulfides (NaPSs) seriously restrict their practical application. To solve these issues, we rationally designed an advanced Sn-doped InS/S/C cathode for RT Na-S batteries by magnetron sputtering in this work, which exhibited a high reversible capacity (1663.5 mAh g at 0.1 A g) and excellent cycling performance (902.9 mAh g after 50 cycles). The in situ electrochemical impedance spectroscopy indicated that the Sn-doped InS coating can accelerate charge-transfer kinetics and facilitate the diffusion of Na. Furthermore, theoretical calculation revealed that doping of Sn into InS can reduce the energy band gap, thus accelerating the electron transfer and promoting the electrochemical conversion of active species. It is demonstrated that adjusting the electronic structure is a reliable method to improve the electrocatalytic effect of catalyst and significantly improve the performance of S cathode in RT Na-S batteries.

摘要

室温钠硫(RT Na-S)电池因其低成本、高容量和环境友好性而引起了极大的关注。然而,多硫化钠(NaPSs)的穿梭效应和缓慢的电化学反应活性严重限制了其实际应用。为了解决这些问题,我们在这项工作中通过磁控溅射合理设计了一种先进的 Sn 掺杂 InS/S/C 室温钠硫电池阴极,其具有高可逆容量(在 0.1 A g 下为 1663.5 mAh g)和优异的循环性能(在 50 次循环后为 902.9 mAh g)。原位电化学阻抗谱表明,Sn 掺杂 InS 涂层可以加速电荷转移动力学并促进 Na 的扩散。此外,理论计算表明,Sn 掺杂到 InS 中可以降低能带隙,从而加速电子转移并促进活性物质的电化学转化。结果表明,调整电子结构是提高催化剂电催化效果的可靠方法,并显著提高了 RT Na-S 电池中 S 阴极的性能。

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