Neighboring nonmetal site as an intermediate modulator switching CO2 electroreduction pathway toward multicarbons
Research output: Contribution to journal › Research article › Contributed › peer-review
Contributors
Abstract
Selective CO2 electroreduction toward multicarbons (C2+) is hampered by the competing pathways at ampere-level current densities. Here, theoretical calculations reveal that the binding strength and protonation of the ∗CO intermediate are a pair of key descriptors in governing the selectivity-determining bifurcation pathway on copper (Cu) catalyst. Hence, we propose an intermediate-modulator strategy with a nonmetallic phosphorus (P)-modified Cu (P-Cu) hetero-site catalyst for ideal C2+ formation. The P site enhances charge accumulation at the neighboring Cu site, which strengthens ∗CO adsorption and active ∗H supply from H2O activation, favoring a rich-∗H-assisted-protonation (RHP) pathway toward ∗CHO formation. Subsequently, the lowest-energy-barrier ∗CO-∗CHO coupling pathway switches the predominant reaction pathway away from undesired CO and H2 to higher-value ethylene and ethanol. We report a C2+ partial current density of 1.05 A cm−2 and a Faradaic efficiency of 87.7%. Utilizing cheaper nonmetallic elements, this catalyst design principle outperforms reported outcomes with precious metal dopants.
Details
| Original language | English |
|---|---|
| Article number | 101926 |
| Journal | Joule |
| Volume | 9 |
| Issue number | 5 |
| Publication status | Published - 21 May 2025 |
| Peer-reviewed | Yes |
Keywords
ASJC Scopus subject areas
Keywords
- ampere-level current densities, CO electroreduction, high selectivity, multicarbons, nonmetal site, switchable reaction pathway