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Ag-mediated in situ reconstruction of Cu/Cu(2)O interfaces for selective CO(2) electroreduction to ethanol.
PubMed
Authors: Wang J, Xiao X, Li Y, Yu C, Zhang J, Cui J, Qin Y, Zhang Y, Wu Y, Wang Y
Year
2026
Paper ID
74176
Status
Peer-reviewed
Abstract Read
~2 min
Abstract Words
216
Citations
N/A
Abstract
The electrochemical reduction of carbon dioxide (CO) into multi‑carbon products offers a promising route for sustainable fuel and chemical synthesis, yet achieving high selectivity toward ethanol (CHOH) remains challenging. Herein, through a unique in situ transformation strategy, copper quantum dots could convert into AgPO/Cu(PO) nanosheet pre-catalysts by sonicating in phosphate buffer solution (PBS) and silver nitrate. Under electroreduction conditions, this Ag-modified precursor undergoes dynamic reconstruction into a Cu/CuO/Ag, whereas the Ag-free analogue is completely reduced to metallic Cu. The resulting catalyst exhibits remarkable CHOH selectivity with a Faradaic efficiency (FE) of 54.8% and a high partial current density of 262.6 mA cm at -1.05 V (relative to reversible hydrogen electrode, RHE), corresponding to a half-cell cathode energy efficiency (CEE) of 27.2%, and alongside with excellent stability of 120 h. The in situ spectroscopy and structural analysis reveal that the incorporation of Ag plays a crucial role in stabilizing Cu(I) species under working conditions, which enriches the surface CO coverage and facilitates the critical CC coupling step toward CHOH. Furthermore, the residual copper quantum dots within the structure enhance the overall electrical conductivity. This work highlights the dynamic role of Ag in modulating the oxidation state and interfacial environment of Cu, providing a design principle for CO-to-C electrocatalysts through controlled precursor transformation and electronic engineering.
Why This Paper Matters
- It adds a 2026 reference point for readers tracking recent quantum research.
- The electrochemical reduction of carbon dioxide (CO) into multi‑carbon products offers a promising route for sustainable fuel and chemical synthesis, yet achieving high...
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