TY - JOUR
T1 - Breaking the Limitations of Sulfur Redox Kinetics by Accelerated Li+-Desolvation in Lithium–Sulfur Batteries
AU - Wang, Tan
AU - Wang, Zhenhua
AU - Gao, Xiaotian
AU - Bai, Zhe
AU - Liu, Wanning
AU - Bai, Yu
AU - Rooney, David
AU - Sun, Kening
N1 - Publisher Copyright:
© The Author(s) 2026.
PY - 2026/12
Y1 - 2026/12
N2 - The practical deployment of lithium–sulfur batteries (LSBs) is fundamentally limited by the sluggish stepwise sulfur redox kinetics. However, current design philosophies remain heavily constrained by the conventional “adsorption-catalysis” strategy, often overlooking the crucial rate-limiting kinetic obstacle of the high Li+ desolvation energy barrier. This sluggish Li+ desolvation process imposes a severe kinetic penalty on polysulfide conversion, thereby depressing electrochemical stability. Herein, we propose a catalyst desolvation strategy utilizing a Ce single-atom catalyst to promote the Li+ desolvation process, thereby enhancing the redox conversion of polysulfides. Results indicate that the catalyst desolvation strategy increases the proportion of contact ion pairs and aggregates, reduces the Li+ desolvation energy barrier, and stabilizes the lithium anode/electrolyte interface. Consequently, the accelerated Li+ desolvation facilitates rapid sulfur redox kinetics, thereby realizing stable cycling in LSBs with a low decay rate of 0.036% per cycle over 1700 cycles at 1 C. This work confirms the significant impact of Li+ desolvation and provides a new solution for achieving efficient conversion of polysulfides in LSBs. (Figure presented.)
AB - The practical deployment of lithium–sulfur batteries (LSBs) is fundamentally limited by the sluggish stepwise sulfur redox kinetics. However, current design philosophies remain heavily constrained by the conventional “adsorption-catalysis” strategy, often overlooking the crucial rate-limiting kinetic obstacle of the high Li+ desolvation energy barrier. This sluggish Li+ desolvation process imposes a severe kinetic penalty on polysulfide conversion, thereby depressing electrochemical stability. Herein, we propose a catalyst desolvation strategy utilizing a Ce single-atom catalyst to promote the Li+ desolvation process, thereby enhancing the redox conversion of polysulfides. Results indicate that the catalyst desolvation strategy increases the proportion of contact ion pairs and aggregates, reduces the Li+ desolvation energy barrier, and stabilizes the lithium anode/electrolyte interface. Consequently, the accelerated Li+ desolvation facilitates rapid sulfur redox kinetics, thereby realizing stable cycling in LSBs with a low decay rate of 0.036% per cycle over 1700 cycles at 1 C. This work confirms the significant impact of Li+ desolvation and provides a new solution for achieving efficient conversion of polysulfides in LSBs. (Figure presented.)
KW - Catalyst desolvation
KW - Desolvation energy barrier
KW - Lithium−sulfur batteries
KW - Single-atom catalysts
KW - Sulfur redox kinetics
UR - https://www.scopus.com/pages/publications/105043257460
U2 - 10.1007/s40820-026-02232-6
DO - 10.1007/s40820-026-02232-6
M3 - Article
AN - SCOPUS:105043257460
SN - 2311-6706
VL - 18
JO - Nano-Micro Letters
JF - Nano-Micro Letters
IS - 1
M1 - 388
ER -