Abstract
Electrochemical urea synthesis through the CO₂ and nitrate reduction reaction is a promising sustainable alternative, but it is limited by inefficient C-N coupling and competing hydrogen evolution. Here, we report a sulfur-modulated Cu₂S/CuS electrocatalyst that promotes selective urea formation by tuning the adsorption of key intermediates. The catalyst achieves a urea yield of 260.8 ± 10.2 μg h−1 cm−2 with a remarkable faradaic efficiency of 80.0 ± 2.8% at −0.4 V versus RHE for a Cu-S-based catalyst. In situ FT-IR spectroscopy identifies *CO and *NO intermediates along with a C-N stretching signal, while isotopic HRMS confirms nitrate-derived nitrogen in the product. These results support a mechanism in which sulfur-modulated Cuδ+-S sites enhance *CO-*NO coupling while suppressing hydrogen evolution (HER). This work highlights sulfur incorporation as an effective strategy to regulate intermediate adsorption and enable selective C-N coupling for urea electrosynthesis.
| Original language | English |
|---|---|
| Article number | 178896 |
| Journal | Chemical Engineering Journal |
| Volume | 544 |
| DOIs | |
| State | Published - 15 Sep 2026 |
Keywords
- CuS/CuS electrocatalyst
- In situ spectroscopic analysis
- Sustainable energy and environment
- Urea electrosynthesis
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