Scalable ampere-level CO2 electroreduction to ethylene enabled by descriptor-guided oxygen affinity engineering
Масштабируемое амперного уровня электровосстановление CO2 до этилена, обеспеченное инженерией сродства к кислороду, направляемой дескрипторами
2026-06-30
SCID: 54.1/bspqjy3w
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CO2 electroreduction to ethyleneC–C coupling descriptorMgO1-x anchored on Cumembrane electrode assembly (MEA) 25 Aoxygen affinity engineering
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Abstract (AI)
The electroreduction of CO2 to ethylene using renewable electricity offers a sustainable approach for greenhouse gas mitigation. However, the efficient ethylene production is challenged by sluggish C–C coupling and wide product distribution. Guided the energy changes associated with C–C coupling and C–O cleavage as descriptors for ethylene electrosynthesis, we predict and synthesize unsaturated MgO1-x anchored on Cu via an electrochemical-induced phase separation method. Electrochemical evaluation of this catalyst achieves an ethylene Faradaic efficiency of 78.2% at 300 mA cm−2 in a flow cell. Mechanism studies reveal the bifunctionality of MgO1-x. On one side, chemical interaction of MgO1-x with Cu domain stabilizes Cu+ and gives asymmetric Cu+···Cu0 pairs, facilitating the *CO–CHO coupling. On another side, the MgO1-x with high oxygen affinity strengthens the binding with dual-carbon intermediate and promotes the C–O bond dissociation, accelerating ethylene formation. Ultimately, this catalyst delivers 60.7% ethylene selectivity at 25 A in membrane electrode assembly of 100 cm2, equivalent to a C2H4 production rate of 1.1 L h−1. CO2 electroreduction to C2H4 is limited by slow C–C coupling and poor selectivity. Here, the authors report an MgO1-x modified Cu catalyst by descriptor-guided oxygen affinity engineering that achieves selective C2H4 production in large-scale membrane electrode assemblies.
Key Findings
1
Descriptor-guided design using C–C coupling and C–O cleavage energetics led to synthesis of unsaturated MgO1-x anchored on Cu via electrochemical-induced phase separation.
2
In a 100 cm2 membrane electrode assembly operating at 25 A, the catalyst delivered 60.7% ethylene selectivity, corresponding to a C2H4 production rate of 1.1 L h−1.
3
Mechanistic studies show MgO1-x chemically stabilizes Cu+ and creates asymmetric Cu+···Cu0 pairs that facilitate *CO–CHO coupling (enhanced C–C coupling).
4
MgO1-x’s high oxygen affinity strengthens binding of dual-carbon intermediates and promotes C–O bond dissociation, accelerating ethylene formation.
5
The MgO1-x/Cu catalyst achieved 78.2% ethylene Faradaic efficiency at 300 mA cm−2 in a flow cell.
Research Object
MgO1-x modified copper catalyst for CO2 electroreduction (unsaturated MgO1-x anchored on Cu)
Research Subject
Enhancement of CO2 electroreduction to ethylene via descriptor-guided oxygen-affinity engineering: promoting C–C coupling (*CO–CHO), facilitating C–O bond cleavage, stabilizing asymmetric Cu+···Cu0 pairs, and achieving high ethylene selectivity and current-density scalability
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2026-06-30
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