Enhanced Built-In Electric Field Facilitates Electron and Ion Transfer for High-Performance Lithium–Sulfur Batteries
作者:Yongjie Ye, Manfang Chen, Sisi Liu, Yongqian He, Wanqi Zhang, Mengqing Wang, Ying Chen, Xuewen Peng, Caixiang Wang, Qin Tang, Hongyang Zhan, Haonan Zheng, Ruizhi Yu, Bing Wu, Hongbo Shu, Xianyou Wang · 发表于:ACS Sustainable Chemistry & Engineering · 年份:2025 · DOI:10.1021/acssuschemeng.5c09447 · 被引用次数:5 · 研究领域:Advanced Battery Materials and Technologies、Advancements in Battery Materials、Synthesis and properties of polymers
The complex and multistep redox reactions of sulfur species result in severe polysulfide shuttling, which remains a key obstacle to the practical development of lithium–sulfur batteries (LSBs). To address this challenge, this study employs a rectifying interface constructed from molybdenum dioxide (MoO 2 ) and nitrogen-deficient carbon nitride (DCN), with the aim of enhancing the catalytic conversion efficiency of lithium polysulfides (LiPSs) by regulating electron and ion transport through increased interfacial charge transfer between built-in electric fields. Kelvin probe force microscopy characterization confirms the increase in the work function difference at the heterojunction interface. In situ ultraviolet–visible spectroscopy findings further verify the significant enhancement of LiPS transformation kinetics by the MoO 2 -DCN heterojunction. The cell with MoO 2 -DCN separators demonstrates outstanding cycling stability across a wide temperature range (0 to 60 °C); specifically, after 100 cycles, the average capacity fade rates are as low as 0.082% and 0.21% per cycle, respectively. Notably, the cell achieves a high initial areal capacity of 7.39 mAh cm –2 even at the elevated sulfur loading of 6.09 mg cm –2 . This work provides important experimental guidance for designing high-performance LSBs through the regulation of the heterointerfacial built-in electric field.