Abstract
The hydrogenation of CO2 to CO represents a promising synthetic pathway to replace coal gasification and methane reforming. Ru-based catalysts showed high activity in CO2 hydrogenation but lower CO selectivity due to competing methanation reactions. Here, we reported a surface sulfur (S) decoration strategy to shift the methanation to 99% selectivity for CO on the Ru/TiO2 catalyst in CO2 hydrogenation. The optimized 2%Ru/TiO2-SO catalyst achieved a CO2 conversion of 57.9% with 100% CO selectivity at 550 °C, and it operated stably even in a reaction gas containing an H2S impurity. Notably, even after high-temperature oxidation treatment at 800 °C, the 2%Ru/TiO2-SO catalyst still retains high CO selectivity (>98.2%). Structural characterization confirms strong S–Ru interactions between S species and Ru nanoparticles in S-decorated catalysts, with highly dispersed S species bonded to the Ru surface as S2−, thereby leaving the surface Ru atoms in an electron-deficient state. Mechanistic studies reveal that CO was formed via direct dissociation of CO2 on this 2%Ru/TiO2-SO catalyst. The adsorption strength of CO* species and H2 activation capacity were significantly suppressed on S-decorated catalysts featuring electron-deficient Ru species, thus inhibiting the deep hydrogenation of CO and enabling exclusive CO generation. The surface S decoration strategy employed here will provide insights and guidance for the design of supported metal catalysts with tunable selectivity in other heterogeneous catalytic hydrogenation reactions, particularly those operating at high temperatures.
| Original language | English |
|---|---|
| Pages (from-to) | 14667-14679 |
| Number of pages | 13 |
| Journal | ACS Catalysis |
| Volume | 16 |
| Issue number | 15 |
| DOIs | |
| State | Published - 7 Aug 2026 |
| Externally published | Yes |
Keywords
- COhydrogenation
- Ru nanoparticles
- Ru-S interaction
- selectivity regulation
- surface modification
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