Abstract
Selectivity in oxidation reactions is governed by the targeted modification of a catalyst's surface electronic structure or charge-transfer dynamics. Oxidative coupling of methane (OCM) to ethylene is a perennial topic in catalysis, with Na2WO4-Mn2O3-based catalysts demonstrating substantial potential for industrial application. Gaining deep insight into the electron-transfer behavior responsible for redirecting methane oxidation from combustion to selective coupling on Na2WO4-modified Mn2O3 is particularly challenging. Here, we demonstrate that selectivity on Mn-based catalysts is governed not by the local active sites, but by the microscopic electron-transfer pathway during the redox cycle. The Na2WO4 modification fundamentally switches this pathway from bulk penetration to surface propagation over Mn2O3. This creates an electron-rich surface that weakens *CH3 adsorption and selectively promotes its desorption as ·CH3 radicals for gas-phase coupling, thereby overriding deep oxidation. Our findings provide valuable guidance for a deeper understanding of the mechanisms underlying analogous oxidation reactions.
| Original language | English |
|---|---|
| Article number | 126948 |
| Journal | Applied Catalysis B: Environmental |
| Volume | 398 |
| DOIs | |
| State | Published - 5 Dec 2026 |
Keywords
- Ab initio molecular dynamics
- Density functional theory
- Electron transfer
- MnO
- NaWO
- Oxidative coupling of methane
- Redox catalysis
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