Abstract
Defect-mediated electronic-structure engineering of transition-metal compounds offers an effective route to accelerate sulfur redox kinetics in lithium-sulfur batteries (LSBs), yet the intrinsic relationship between vacancy defects and polysulfide conversion remains insufficiently clarified. Herein, selenium-vacancy-rich CoSe2 (V-CoSe2) is developed as an electron-rich catalytic separator modifier to regulate polysulfide adsorption and conversion. The introduced Se vacancies reconstruct the local coordination environment of CoSe2, generating abundant low-coordinated, electron-rich Co sites with enhanced interfacial charge-transfer capability and strengthened Co-Se bond polarization. Combined experimental and theoretical results demonstrate that these vacancy-induced active sites reinforce polysulfide anchoring, facilitate Li2S nucleation/conversion, and lower the kinetic barriers of sulfur redox reactions. Benefiting from these advantages, the V-CoSe2-modified separator delivers outstanding electrochemical performance under a high sulfur loading of 6.0 mg cm−2. This work highlights vacancy engineering as a powerful strategy for regulating interfacial sulfur redox chemistry and provides guidance for designing advanced catalytic separators for high-performance LSBs.
| Original language | English |
|---|---|
| Article number | 103294 |
| Journal | Applied Materials Today |
| Volume | 51 |
| DOIs | |
| State | Published - Aug 2026 |
Keywords
- CoSe
- Lithium-sulfur batteries
- Polysulfides catalysis
- Separator modification
- Vacancy engineering
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