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Uncovering Atomic‐Scale Stability and Reactivity in Engineered Zinc Oxide Electrocatalysts for Controllable Syngas Production.

Authors :
Daiyan, Rahman
Lovell, Emma Catherine
Huang, Bosi
Zubair, Muhammad
Leverett, Joshua
Zhang, Qingran
Lim, Sean
Horlyck, Jonathan
Tang, Jianbo
Lu, Xunyu
Kalantar‐Zadeh, Kourosh
Hart, Judy N.
Bedford, Nicholas M.
Amal, Rose
Source :
Advanced Energy Materials. 7/28/2020, Vol. 10 Issue 28, p1-9. 9p.
Publication Year :
2020

Abstract

In this study, scalable, flame spray synthesis is utilized to develop defective ZnO nanomaterials for the concurrent generation of H2 and CO during electrochemical CO2 reduction reactions (CO2RR). The designed ZnO achieves an H2/CO ratio of ≈1 with a large current density (j) of 40 mA cm−2 during long‐term continuous reaction at a cell voltage of 2.6 V. Through in situ atomic pair distribution function analysis, the remarkable stability of these ZnO structures is explored, addressing the knowledge gap in understanding the dynamics of oxide catalysts during CO2RR. Through optimization of synthesis conditions, ZnO facets are modulated which are shown to affect reaction selectivity, in agreement with theoretical calculations. These findings and insights on synthetic manipulation of active sites in defective metal‐oxides can be used as guidelines to develop active catalysts for syngas production for renewable power‐to‐X to generate a range of fuels and chemicals. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
16146832
Volume :
10
Issue :
28
Database :
Academic Search Index
Journal :
Advanced Energy Materials
Publication Type :
Academic Journal
Accession number :
144804095
Full Text :
https://doi.org/10.1002/aenm.202001381