Electrochemical co-reduction of nitrate (NO) and carbon dioxide (CO) has been widely regarded as a promising route to produce urea under ambient conditions, however the yield rate of urea has remained limited. Here, we report an atomically ordered intermetallic pallium-zinc (PdZn) electrocatalyst comprising a high density of PdZn pairs for boosting urea electrosynthesis. It is found that Pd and Zn are responsible for the adsorption and activation of NO and CO, respectively, and thus the co-adsorption and co-activation NO and CO are achieved in ordered PdZn pairs. More importantly, the ordered and well-defined PdZn pairs provide a dual-site geometric structure conducive to the key C-N coupling with a low kinetical barrier, as demonstrated on both operando measurements and theoretical calculations. Consequently, the PdZn electrocatalyst displays excellent performance for the co-reduction to generate urea with a maximum urea Faradaic efficiency of 62.78% and a urea yield rate of 1274.42 μg mg h, and the latter is 1.5-fold larger than disordered pairs in PdZn alloys. This work paves new pathways to boost urea electrosynthesis via constructing ordered dual-metal pairs.

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http://www.ncbi.nlm.nih.gov/pmc/articles/PMC11250753PMC
http://dx.doi.org/10.1007/s40820-024-01462-wDOI Listing

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Boosting Electrochemical Urea Synthesis via Constructing Ordered Pd-Zn Active Pair.

Nanomicro Lett

July 2024

College of Chemistry and Environmental Engineering, Shenzhen University, Shenzhen, 518060, Guangdong, People's Republic of China.

Electrochemical co-reduction of nitrate (NO) and carbon dioxide (CO) has been widely regarded as a promising route to produce urea under ambient conditions, however the yield rate of urea has remained limited. Here, we report an atomically ordered intermetallic pallium-zinc (PdZn) electrocatalyst comprising a high density of PdZn pairs for boosting urea electrosynthesis. It is found that Pd and Zn are responsible for the adsorption and activation of NO and CO, respectively, and thus the co-adsorption and co-activation NO and CO are achieved in ordered PdZn pairs.

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