多硫化物
聚合物
聚乙烯亚胺
材料科学
阴极
化学工程
硫黄
纳米技术
锂(药物)
锂硫电池
储能
吸附
扩散
密度泛函理论
共价键
硫化物
多孔性
化学
电解质
无机聚合物
纳米颗粒
无机化学
纳米材料
动力学
作者
Chang Lu,Haoyan Cheng,Bo Zhao,Yuhao Li,Jiahui Chen,Tianwen He,Hao Hu
标识
DOI:10.1021/acssuschemeng.5c06912
摘要
Organic sulfur cathodes for lithium–sulfur (Li–S) batteries hold great promise for suppressing polysulfide shuttling, yet their practical implementation is hindered by sluggish Li+ transport kinetics and intricate synthesis processes. Here, we present a catalyst-free solid-state synthesis strategy to construct a sulfur-containing polymer molecular framework (PEI@TPAL@S) by integrating terephthalaldehyde-based motifs (TPAL) and sulfur clusters into a polyethylenimine (PEI) backbone. The designed framework features abundant nitrogen-active sites and hierarchically interconnected nanopores, synergistically enhancing polysulfide confinement and Li+ diffusion. The PEI@TPAL@S cathode achieves a sulfur content of 77.0 wt %, a Li+ diffusion coefficient 100-fold higher than conventional sulfur-containing polymers and exceptional rate capability (726 mAh g–1 at 5C). Remarkably, it demonstrates ultralong cycling stability with a minimal capacity decay rate of 0.051% per cycle over 500 cycles at 5C. Mechanistic studies reveal that the covalent Li–N bonding and porous architecture facilitate efficient polysulfide adsorption and rapid Li+ transport, while density functional theory (DFT) calculations confirm reduced energy barriers for lithium sulfide nucleation. This work provides a scalable pathway for high-performance organic sulfur cathodes and advances the molecular-level design of sulfur-containing polymers for next-generation energy storage systems.
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