Kiani Rana, Sheng Huiying, Held Timo, Löhmann Oliver, Risse Sebastian, Sebastiani Daniel, Partovi-Azar Pouya
Institute of Chemistry, Martin Luther University Halle-Wittenberg, Von-Danckelmann-Platz 4, 06120, Halle (Saale), Germany.
Department for Electrochemical Energy Storage, Helmholtz-Zentrum Berlin für Materialien und Energie, Hahn-Meitner-Platz 1, 14109, Berlin, Germany.
Chemphyschem. 2025 Feb 1;26(3):e202400681. doi: 10.1002/cphc.202400681. Epub 2024 Nov 21.
Sulfur/carbon copolymers have emerged as promising alternatives for conventional crystalline sulfur cathodes for lithium-sulfur batteries. Among these, sulfur-n-1,3-diisopropenylbenzene (S/DIB) copolymers, which present a 3D network of DIB molecules interconnected via sulfur chains, have particularly shown a good performance and, therefore, have been under intensive experimental and theoretical investigations. However, their structural complexity and flexibility have hindered a clear understanding of their structural evolution during redox reactions at an atomistic level. Here, by performing state-of-the-art ab initio molecular dynamics-based Raman spectroscopy simulations, we investigate the spectral fingerprints of S/DIB copolymers arising from local structures during consecutive reactions with lithium. We discuss in detail Raman spectral changes in particular frequency ranges which are common in S/DIB copolymers having short sulfur chains and those consisting of longer ones. We also highlight those distinctive spectroscopic fingerprints specific to local S/DIB structures containing only short or long sulfur chains. This distinction could serve to help distinguish between them experimentally during discharge. Our theoretically predicted results are in a good agreement with experimental Raman measurements on coin cells at different discharge stages. This work represents, for the first time, an attempt to compute Raman fingerprints of sulfur/carbon copolymer cathodes during battery operation including quantum-chemical and finite-temperature effects, and provides a guideline for Raman spectral changes of arbitrary electrodes during discharge.
硫/碳共聚物已成为锂硫电池传统晶体硫阴极的有前途的替代品。其中,硫 - n - 1,3 - 二异丙烯基苯(S/DIB)共聚物呈现出通过硫链相互连接的DIB分子的三维网络,特别表现出良好的性能,因此一直受到深入的实验和理论研究。然而,它们的结构复杂性和灵活性阻碍了在原子水平上对其在氧化还原反应过程中结构演变的清晰理解。在这里,通过进行基于先进的从头算分子动力学的拉曼光谱模拟,我们研究了S/DIB共聚物在与锂连续反应过程中由局部结构产生的光谱指纹。我们详细讨论了在具有短硫链的S/DIB共聚物和由长硫链组成的S/DIB共聚物中常见的特定频率范围内的拉曼光谱变化。我们还强调了仅包含短硫链或长硫链的局部S/DIB结构特有的那些独特的光谱指纹。这种区分有助于在放电过程中通过实验区分它们。我们的理论预测结果与不同放电阶段硬币电池的实验拉曼测量结果非常吻合。这项工作首次尝试计算电池运行过程中硫/碳共聚物阴极的拉曼指纹,包括量子化学和有限温度效应,并为放电过程中任意电极的拉曼光谱变化提供了指导。