Direct Capturing and Regulating Key Intermediates for High‐Efficiency Oxygen Evolution Reactions

Author:

Qian Zheng‐Xin1,Peng Chun‐Kuo2,Yue Mu‐Fei1,Hsu Liang‐Ching3,Zeng Ji‐Shuang1,Wei Di‐Ye1,Du Zi‐Yu1,Xu Ge‐Yang1,Zhang Hua1,Tian Jing‐Hua4,Chen San‐Yuan2,Lin Yan‐Gu3,Li Jian‐Feng145ORCID

Affiliation:

1. College of Materials State Key Laboratory of Physical Chemistry of Solid Surfaces College of Chemistry and Chemical Engineering iChEM Fujian Key Laboratory of Advanced Materials College of Energy Xiamen University Xiamen 361005 China

2. Department of Materials Science and Engineering National Yang Ming Chiao Tung University Hsinchu 30010 Taiwan

3. National Synchrotron Radiation Research Center Hsinchu 30076 Taiwan

4. Innovation Laboratory for Sciences and Technologies of Energy Materials of Fujian Province (IKKEM) Xiamen 361005 China

5. Department of Chemistry and Environment Science Fujian Province University Key Laboratory of Analytical Science Minnan Normal University Zhangzhou 363000 China

Abstract

AbstractDeveloping efficient oxygen evolution reaction (OER) electrocatalysts can greatly advance the commercialization of proton exchange membrane (PEM) water electrolysis. However, the unclear and disputed reaction mechanism and structure‐activity relationship of OER pose significant obstacles. Herein, the active site and intermediate for OER on AuIr nanoalloys are simultaneously identified and correlated with the activity, through the integration of in situ shell‐isolated nanoparticle‐enhanced Raman spectroscopy and X‐ray absorption spectroscopy. The AuIr nanoalloys display excellent OER performance with an overpotential of only 246 mV to achieve 10 mA cm−2 and long‐term stability under strong acidic conditions. Direct spectroscopic evidence demonstrates that *OO adsorbed on IrOx sites is the key intermediate for OER, and it is generated through the O–O coupling of adsorbed oxygen species directly from water, providing clear support for the adsorbate evolution mechanism. Moreover, the Raman information of the *OO intermediate can serve as a universal “in situ descriptor” that can be obtained both experimentally and theoretically to accelerate the catalyst design. It unveils that weakening the interactions of *OO on the catalysts and facilitating its desorption would boost the OER performance. This work deepens the mechanistic understandings on OER and provides insightful guidance for the design of more efficient OER catalysts.

Funder

National Key Research and Development Program of China

National Natural Science Foundation of China

Publisher

Wiley

Subject

General Materials Science,General Chemistry

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