Asymmetrical electrohydrogenation of CO2 to ethanol with copper-gold heterojunctions

Proc Natl Acad Sci U S A. 2023 Jan 24;120(4):e2214175120. doi: 10.1073/pnas.2214175120. Epub 2023 Jan 17.

Abstract

Copper is distinctive in electrocatalyzing reduction of CO2 into various energy-dense forms, but it often suffers from limited product selectivity including ethanol in competition with ethylene. Here, we describe systematically designed, bimetallic electrocatalysts based on copper/gold heterojunctions with a faradaic efficiency toward ethanol of 60% at currents in excess of 500 mA cm-2. In the modified catalyst, the ratio of ethanol to ethylene is enhanced by a factor of 200 compared to copper catalysts. Analysis by ATR-IR measurements under operating conditions, and by computational simulations, suggests that reduction of CO2 at the copper/gold heterojunction is dominated by generation of the intermediate OCCOH*. The latter is a key contributor in the overall, asymmetrical electrohydrogenation of CO2 giving ethanol rather than ethylene.

Keywords: CO2; copper; ethanol; heterojunction; hydrogenation.