Abstract
Electrochemical CO2 reduction (ECR) to C2+ products is a promising sustainable carbon conversion pathway, yet simultaneously achieving high Faradaic efficiency (FE) and current density remains a challenge. Herein, we found that creating Cu-Ag-Ni multi-metal sites could effectively modulate the adsorption energies of *H and *CO on the catalyst surface, thereby achieving highly efficient ECR to synthesize C2+ products. In situ measurements coupling theoretical calculations indicated that by systematically altering the spatial arrangement and distribution of active sites in Cu-Ag-Ni catalysts, the electronic structure and the local *CO coverage on the Cu surface could be tuned, consequently steering the ECR to C2+ pathway. In particular, Cu-Ag-Ni catalyst with dispersed multi-sites (CuxAgNi DNPs) could more effectively reduce the energy barrier for C─C coupling than Cu-Ag-Ni catalyst with phase-separated multi-sites (CuxAgNi PNPs). As a result, the Cu40AgNi DNPs catalyst with dispersed multi-sites yielded C2+ products with a FE of 93.2% and a current density up to 818.1 mA cm−2 at −1.38 V versus reversible hydrogen electrode (vs. RHE), which are higher than most reported up to date for C2+ production. This work provides a methodology for designing robust multi-metallic ECR catalysts with tailored multi-active site configurations.
| Original language | English |
|---|---|
| Article number | e202501833 |
| Journal | Angewandte Chemie - International Edition |
| Volume | 64 |
| Issue number | 26 |
| DOIs | |
| State | Published - 24 Jun 2025 |
Keywords
- *CO Coverage
- CO Electroreduction
- Diverse mixing patterns
- Multi-active Sites
- Multi-carbon Products