Abstract
The 1D sub-1 nm nanowires (SNWs) usually possess a highly promising avenue in catalysis and energy storage fields owing to their high aspect ratios facilitating charge transport, and near 100% surface atomic exposure offering abundant active sites. However, current research is mainly focused on metal oxide SNWs, whereas the synthesis of sulfide SNWs has been rarely reported. Herein, a new kind of Bi2S3-phosphomolybdic acid (Bi2S3-PMA) SNWs induced by polyoxometalate clusters has been successfully prepared. Molecular dynamics simulation demonstrates that PMA and Bi2S3 co-assemble into stable 1D SNWs via non-covalent interactions. Benefiting from the unique sub-1 nm structure and the synergetic effects of Bi2S3 and PMA, the SNWs exhibit enhanced light absorption ability, well-matched energy band structure, and efficient separation/transfer capability of photo-generated carriers. As the cathode catalyst in light-assisted Li-CO2 batteries (LCBs), the Bi2S3-PMA-based LCBs deliver a low overpotential of 0.22 V, superior cycling stability for 300 h at 0.01 mA cm−2 and 150 h at 0.05 mA cm−2. Meanwhile, the battery also realizes an exceptionally long-term lifetime of 4000 h under no light. Density functional theory calculations disclose that the presence of electron-rich PMA promotes the adsorption of LiCO2 and Li2CO3 on SNWs, which further boosts battery efficiency.
| Original language | English |
|---|---|
| Journal | Small |
| DOIs | |
| Publication status | Accepted/In press - 2026 |
Keywords
- bismuth sulfide
- catalysts
- Li-CO batteries
- polyoxometalate clusters
- sub-1 nm nanowires