Zhu Ran, Wu Zihe, He Chao, Li Shiqi, Liu Xu, Wu Min, Wang Mao, Yan Rui, Li Shuang
College of Polymer Science and Engineering, National Key Laboratory of Advanced Polymer Materials, Sichuan University, Chengdu 610065, China.
College of Material Science and Technology, Center for Microscopy and Analysis, Nanjing University of Aeronautics and Astronautics, Nanjing 211106, P. R. China.
ACS Nano. 2025 Jul 1;19(25):23479-23489. doi: 10.1021/acsnano.5c07464. Epub 2025 Jun 13.
Catalyzing the polysulfide conversion process has become an effective paradigm for alleviating the shuttle effect and realizing reliable Li-S batteries. Although great improvements in designing highly active polysulfide catalysts have been achieved, the transfer of Li at the catalytic interface, which has a great influence on the reversible redox of sulfur, has not been addressed. Herein, we proposed the multimodal strategy of catalysts confers atomic Co active sites on WO, where the electronegative interfacial O atoms can act as Li pump and assist the rapid migration of Li in the electrolyte to polysulfide anchored at the Co sites during the discharge process and reduce oxidation energy barrier of LiS during the charge process, thus facilizing the lithiation/delithiation of polysulfides. Experimental and theoretical results reveal that more Li ions can be gathered around Co sites, and the length of Li-S bonds in LiS can be reduced in the Co-WO catalysts, implying the efficient dual-direction conversion of polysulfides. Therefore, the cell assembled with Co-WO exhibits long-term cycle stability (0.038% per cycle) at 1.0 C.