Abstract
Metal-support interactions (MSIs) critically influence the performance of oxide-supported metal catalysts, yet the intrinsic coupling between metal-oxide interface sites and electronically modified metal sites hampers clear identification of true active centers. Here, a Pt/Al2O3 catalyst is modified with TiOx by atomic layer deposition. Based on the favorable lattice matching with Pt (111), TiOx prefers to deposit onto the high-coordinated Pt atoms. The modified catalyst was used for selective hydrogenation of para-chloronitrobenzene. It is found that the selective deposition of TiOx on Pt nanoparticles can construct dual active sites, including precisely regulated Pt-Ti interface sites and exposed low-coordinated Pt sites with electron loss. The optimized 30Ti-Pt/Al2O3 catalyst exhibits nearly twice the turnover frequency of Pt/Al2O3, together with excellent chemoselectivity and stability. Kinetic studies, in situ spectroscopic analysis, and density functional theory calculations demonstrate that H2 is activated on exposed low-coordinated Pt sites and subsequently transferred to Pt-Ti interface sites with adsorbed nitro groups for the hydrogenation. This work provides fundamental insight into active-site differentiation in MSI-dominated catalysts and offers a general strategy for rational interface engineering.
| Original language | English |
|---|---|
| Article number | 126917 |
| Journal | Applied Catalysis B: Environmental |
| Volume | 395 |
| DOIs | |
| State | Published - 15 Oct 2026 |
Keywords
- Atomic layer deposition
- Dual active sites
- Exposed low-coordinated Pt site
- Pt-Ti interface site
- Synergistic effect
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