Operando insights into correlating CO coverage and Cu-Au alloying with the selectivity of Au NP-decorated Cu 2 O nanocubes during the electrocatalytic CO 2 reduction.
Clara RettenmaierAntonia HerzogDaniele CasariMartina RüscherHyo Sang JeonDavid KordusMauricio Lopez LunaStefanie KühlUta HejralEarl Matthew DavisSee Wee CheeJanis TimoshenkoDuncan T L AlexanderArno BergmannBeatriz Roldan CuenyaPublished in: EES catalysis (2023)
Electrochemical reduction of CO 2 (CO 2 RR) is an attractive technology to reintegrate the anthropogenic CO 2 back into the carbon cycle driven by a suitable catalyst. This study employs highly efficient multi-carbon (C 2+ ) producing Cu 2 O nanocubes (NCs) decorated with CO-selective Au nanoparticles (NPs) to investigate the correlation between a high CO surface concentration microenvironment and the catalytic performance. Structure, morphology and near-surface composition are studied via operando X-ray absorption spectroscopy and surface-enhanced Raman spectroscopy, operando high-energy X-ray diffraction as well as quasi in situ X-ray photoelectron spectroscopy. These operando studies show the continuous evolution of the local structure and chemical environment of our catalysts during reaction conditions. Along with its alloy formation, a CO-rich microenvironment as well as weakened average CO binding on the catalyst surface during CO 2 RR is detected. Linking these findings to the catalytic function, a complex compositional interplay between Au and Cu is revealed in which higher Au loadings primarily facilitate CO formation. Nonetheless, the strongest improvement in C 2+ formation appears for the lowest Au loadings, suggesting a beneficial role of the Au-Cu atomic interaction for the catalytic function in CO 2 RR. This study highlights the importance of site engineering and operando investigations to unveil the electrocatalyst's adaptations to the reaction conditions, which is a prerequisite to understand its catalytic behavior.
Keyphrases
- reduced graphene oxide
- highly efficient
- gold nanoparticles
- sensitive detection
- metal organic framework
- high resolution
- visible light
- raman spectroscopy
- stem cells
- aqueous solution
- crystal structure
- quantum dots
- ionic liquid
- electron microscopy
- magnetic resonance imaging
- healthcare
- solid state
- high intensity
- computed tomography
- mass spectrometry
- single cell
- molecularly imprinted
- dna binding
- organic matter