TY - JOUR
T1 - Deciphering the Role of Crystallinity in Polysulfides Conversion
T2 - Defect-Rich Amorphous Co3S4 for Accelerated Li–S Chemistry
AU - Lin, Fangyue
AU - Chen, Xin
AU - Chen, Ben
AU - Sun, Jinmeng
AU - Ai, Wei
N1 - Publisher Copyright:
© 2026 Wiley-VCH GmbH.
PY - 2026/7
Y1 - 2026/7
N2 - Li–S batteries (LSBs) are promising next-generation energy storage systems; however, their practical application is severely hindered by the shuttle effect of soluble lithium polysulfides and sluggish redox kinetics. Although separator functionalization with catalytic materials has been widely explored, the fundamental role of crystallinity in governing polysulfide conversion remains insufficiently understood. Herein, the effect of crystallinity on polysulfides regulation is systematically investigated using Co3S4 as a model system. Amorphous Co3S4 (A-Co3S4) and crystalline Co3S4 (C-Co3S4) are deliberately constructed to establish a direct structure–property correlation. Compared with its crystalline counterpart, A-Co3S4 features a disordered atomic configuration with abundant coordination-unsaturated sites and defect-induced electronic states, enabling stronger polysulfides adsorption and accelerated catalytic conversion. When integrated onto a polypropylene separator, the A-Co3S4-based interfacial layer effectively suppresses polysulfide migration, enhances interfacial charge transfer, and promotes ion transport kinetics. As a result, the A-Co3S4@PP-based cell delivers an initial capacity of 748 mAh g−1 at 1 C and maintains 537 mAh g−1 after 1000 cycles, corresponding to a low capacity decay rate of 0.02% per cycle. This work clarifies the critical role of crystallinity in polysulfide conversion and provides fundamental insights into the rational design of defect-engineered catalytic interfaces for advanced LSBs.
AB - Li–S batteries (LSBs) are promising next-generation energy storage systems; however, their practical application is severely hindered by the shuttle effect of soluble lithium polysulfides and sluggish redox kinetics. Although separator functionalization with catalytic materials has been widely explored, the fundamental role of crystallinity in governing polysulfide conversion remains insufficiently understood. Herein, the effect of crystallinity on polysulfides regulation is systematically investigated using Co3S4 as a model system. Amorphous Co3S4 (A-Co3S4) and crystalline Co3S4 (C-Co3S4) are deliberately constructed to establish a direct structure–property correlation. Compared with its crystalline counterpart, A-Co3S4 features a disordered atomic configuration with abundant coordination-unsaturated sites and defect-induced electronic states, enabling stronger polysulfides adsorption and accelerated catalytic conversion. When integrated onto a polypropylene separator, the A-Co3S4-based interfacial layer effectively suppresses polysulfide migration, enhances interfacial charge transfer, and promotes ion transport kinetics. As a result, the A-Co3S4@PP-based cell delivers an initial capacity of 748 mAh g−1 at 1 C and maintains 537 mAh g−1 after 1000 cycles, corresponding to a low capacity decay rate of 0.02% per cycle. This work clarifies the critical role of crystallinity in polysulfide conversion and provides fundamental insights into the rational design of defect-engineered catalytic interfaces for advanced LSBs.
KW - CoS
KW - Li–S batteries
KW - crystallinity engineering
KW - defect-rich interfaces
KW - polysulfide conversion
UR - https://www.scopus.com/pages/publications/105043748929
U2 - 10.1002/batt.70400
DO - 10.1002/batt.70400
M3 - 文章
AN - SCOPUS:105043748929
SN - 2566-6223
VL - 9
JO - Batteries and Supercaps
JF - Batteries and Supercaps
IS - 7
M1 - e70400
ER -