Yolk–Shell Nanoreactors With Dual Confinement and Catalysis for High‐Performance Lithium−Sulfur Batteries
作者:Xiaojun Zhao, Zhen Yang, Yizhuo Song, Panqing Bai, Youlin Yang, Wenqing Zhou, Zhenyu Dong, Wangzi Li, Hongzhou Ma, Xu Wang, Fei Li, Jiannong Wang, Anjun Hu, Wei Wang · 发表于:Carbon Neutralization · 年份:2025 · DOI:10.1002/cnl2.70101 · 被引用次数:8 · 研究领域:Advanced Battery Materials and Technologies、Advancements in Battery Materials、Fiber-reinforced polymer composites
ABSTRACT The practical application of lithium−sulfur (Li−S) batteries is hindered by the shuttle effect of soluble lithium polysulfides and sluggish sulfur redox kinetics, resulting in rapid capacity fading and limited cycle life. Here, we present a rationally engineered yolk–shell nanoreactor architecture that integrates dual confinement and catalytic functionality to address these challenges. The nanoreactor comprises a polar, catalytically active core encapsulated within a conductive nitrogen‐doped carbon shell, offering synergistic physical restriction of polysulfides and accelerated multistep sulfur conversion. Density functional theory calculations reveal uniformly low‐energy barriers along the Li 2 S 8 ‐to‐Li 2 S pathway, with no evident rate‐limiting step. Benefiting from this cooperative design, the sulfur host achieves a ultralow capacity decay (0.028% per cycle over 1000 cycles at 2 C) and enables a high areal capacity (493 mAh g −1 at 4.3 mg cm −2 sulfur loading) with 76.3% retention after 100 cycles at 0.3 C. This work offers a versatile strategy for constructing catalysis‐integrated sulfur hosts and highlights the potential of yolk–shell nanoreactors in advancing practical Li−S energy storage systems.