The decisive role of adsorbed OH* in low‐potential CO electro‐oxidation on single‐atom catalytic sites

Author:

Li Yang12,Wang Xian12,Wang Ying3,Shi Zhaoping12,Yang Yuqi456,Zhao Tuo12,Jiang Zheng45,Liu Changpeng12,Xing Wei12ORCID,Ge Junjie127

Affiliation:

1. State Key Laboratory of Electroanalytic Chemistry, Jilin Province Key Laboratory of Low Carbon Chemistry Power, Changchun Institute of Applied Chemistry Chinese Academy of Sciences Changchun China

2. School of Applied Chemistry and Engineering University of Science and Technology of China Hefei China

3. State Key Laboratory of Rare Earth Resource Utilization, Changchun Institute of Applied Chemistry Chinese Academy of Sciences Changchun China

4. Shanghai Institute of Applied Physics Chinese Academy of Sciences Shanghai China

5. Shanghai Synchrotron Radiation Facility, Zhangjiang National Laboratory, Shanghai Advanced Research Institute Chinese Academy of Sciences Shanghai China

6. University of Chinese Academy of Sciences Beijing China

7. Dalian National Laboratory for Clean Energy Dalian China

Abstract

AbstractCO impurity‐induced catalyst deactivation has long been one of the biggest challenges in proton‐exchange membrane fuel cells, with the poisoning phenomenon mainly attributed to the overly strong adsorption on the catalytic site. Here, we present a mechanistic study that overturns this understanding by using Rh‐based single‐atom catalysis centers as model catalysts. We precisely modulated the chelation structure of the Rh catalyst by coordinating Rh with C or N atoms, and probed the reaction mechanism by surface‐enhanced Raman spectroscopy. Direct spectroscopic evidence for intermediates indicates that the reactivity of adsorbed OH*, rather than the adsorption strength of CO*, dictates the CO electrocatalytic oxidation behavior. The RhN4 sites, which adsorb the OH* intermediate more weakly than RhC4 sites, showed prominent CO oxidation activity that not only far exceeded the traditional Pt/C but also the RhC4 sites with similar CO adsorption strength. From this study, it is clear that a paradigm shift in future research should be considered to rationally design high‐performance CO electro‐oxidation reaction catalysts by sufficiently considering the water‐related reaction intermediate during catalysis.

Funder

National Natural Science Foundation of China

Publisher

Wiley

Subject

Materials Chemistry,Energy (miscellaneous),Materials Science (miscellaneous),Renewable Energy, Sustainability and the Environment

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