Reducing the Ir−O Coordination Number in Anodic Catalysts based on IrOx Nanoparticles towards Enhanced Proton‐exchange‐membrane Water Electrolysis

Author:

Gao Hongmei1,Xiao Zhaohui2,Du Shiqian1,Liu Tianyang3,Huang Yu‐Cheng4,Shi Jianqiao1,Zhu Yanwei1,Huang Gen1,Zhou Bo1,He Yongmin1,Dong Chung‐Li4,Li Yafei5,Chen Ru16,Wang Shuangyin1ORCID

Affiliation:

1. State Key Laboratory of Chem/Bio-Sensing and Chemometrics College of Chemistry and Chemical Engineering National Supercomputer Centers in Changsha Hunan University Changsha Hunan 410082

2. State Key Laboratory of Marine Resource Utilization in South China Sea School of Materials Science and Engineering Hainan University Haikou 570228

3. Jiangsu Co-Innovation Centre of Efficient Processing and Utilization of Forest Resources College of Chemical Engineering Nanjing Forestry University Nanjing 210037

4. Department of Physic Tamkang University New Taipei 25137

5. Jiangsu Collaborative Innovation Centre of Biomedical Functional Materials Jiangsu Key Laboratory of New Power Batteries School of Chemistry and Materials Science Nanjing Normal University Nanjing 210023

6. Shenzhen Research Institute of Hunan University Shenzhen 518057 Guangdong

Abstract

AbstractDue to the robust oxidation conditions in strong acid oxygen evolution reaction (OER), developing an OER electrocatalyst with high efficiency remains challenging in polymer electrolyte membrane (PEM) water electrolyzer. Recent theoretical research suggested that reducing the coordination number of Ir−O is feasible to reduce the energy barrier of the rate‐determination step, potentially accelerating the OER. Inspired by this, we experimentally verified the Ir−O coordination number's role at model catalysts, then synthesized low‐coordinated IrOx nanoparticles toward a durable PEM water electrolyzer. We first conducted model studies on commercial rutile‐IrO2 using plasma‐based defect engineering. The combined in situ X‐ray absorption spectroscopy (XAS) analysis and computational studies clarify why the decreased coordination numbers increase catalytic activity. Next, under the model studies’ guidelines, we explored a low‐coordinated Ir‐based catalyst with a lower overpotential of 231 mV@10 mA cm−2 accompanied by long durability (100 h) in an acidic OER. Finally, the assembled PEM water electrolyzer delivers a low voltage (1.72 V@1 A cm−2) as well as excellent stability exceeding 1200 h (@1 A cm−2) without obvious decay. This work provides a unique insight into the role of coordination numbers, paving the way for designing Ir‐based catalysts for PEM water electrolyzers.

Publisher

Wiley

Subject

General Chemistry,Catalysis

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