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  5. Silica-copper catalyst interfaces enable carbon-carbon coupling towards ethylene electrosynthesis

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Article
en
2021

Silica-copper catalyst interfaces enable carbon-carbon coupling towards ethylene electrosynthesis

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en
2021
Vol 12 (1)
Vol. 12
DOI: 10.1038/s41467-021-23023-0

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Michael Graetzel
Michael Graetzel

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Jun Li
Adnan Ozden
Mingyu Wan
+16 more

Abstract

Membrane electrode assembly (MEA) electrolyzers offer a means to scale up CO2-to-ethylene electroconversion using renewable electricity and close the anthropogenic carbon cycle. To date, excessive CO2 coverage at the catalyst surface with limited active sites in MEA systems interferes with the carbon-carbon coupling reaction, diminishing ethylene production. With the aid of density functional theory calculations and spectroscopic analysis, here we report an oxide modulation strategy in which we introduce silica on Cu to create active Cu-SiOx interface sites, decreasing the formation energies of OCOH* and OCCOH*-key intermediates along the pathway to ethylene formation. We then synthesize the Cu-SiOx catalysts using one-pot coprecipitation and integrate the catalyst in a MEA electrolyzer. By tuning the CO2 concentration, the Cu-SiOx catalyst based MEA electrolyzer shows high ethylene Faradaic efficiencies of up to 65% at high ethylene current densities of up to 215 mA cm-2; and features sustained operation over 50 h.

How to cite this publication

Jun Li, Adnan Ozden, Mingyu Wan, Yongfeng Hu, Fengwang Li, Yuhang Wang, Reza R. Zamani, Dan Ren, Ziyun Wang, Yi Xu, Dae‐Hyun Nam, Joshua Wicks, Bin Chen, Xue Wang, Mingchuan Luo, Michael Graetzel, Fanglin Che, Edward H. Sargent, David Sinton (2021). Silica-copper catalyst interfaces enable carbon-carbon coupling towards ethylene electrosynthesis. , 12(1), DOI: https://doi.org/10.1038/s41467-021-23023-0.

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Publication Details

Type

Article

Year

2021

Authors

19

Datasets

0

Total Files

0

Language

en

DOI

https://doi.org/10.1038/s41467-021-23023-0

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