Ultra‐Low‐Potential Methanol Oxidation on Single‐Ir‐Atom Catalyst

Author:

Gong Liyuan12,Zhu Xiaorong34,Nga Ta Thi Thuy5,Liu Qie1,Wu Yujie1,Yang Pupu1,Zhou Yangyang1,Xiao Zhaohui1,Dong Chung‐Li5,Fu Xianzhu2,Tao Li16,Wang Shuangyin16ORCID

Affiliation:

1. State Key Laboratory of Chemo/Bio-Sensing and Chemometrics College of Chemistry and Chemical Engineering the National Supercomputer Centers in Changsha Advanced Catalytic Engineering Research Center of the Ministry of Education Hunan University Changsha 410082 China

2. College of Materials Science and Engineering College of Physics and Optoelectronic Engineering Shenzhen University Shenzhen 518000 China

3. School of Chemistry and Chemical Engineering Nantong University Nantong 226019 China

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

5. Department of Physics Tamkang University Tamsui 25137 Taiwan

6. Greater Bay Area Institute for Innovation Hunan University Guangzhou 511300 China

Abstract

AbstractMethanol oxidation plays a central role to implement sustainable energy economy, which is restricted by the sluggish reaction kinetics due to the multi‐electron transfer process accompanied by numerous sequential intermediate. In this study, an efficient cascade methanol oxidation reaction is catalyzed by single‐Ir‐atom catalyst at ultra‐low potential (<0.1 V) with the promotion of the thermal and electrochemical integration in a high temperature polymer electrolyte membrane electrolyzer. At the elevated temperature, the electron deficient Ir site with higher methanol affinity could spontaneous catalyze the CH3OH dehydrogenation to CO under the voltage, then the generated CO and H2 was electrochemically oxidized to CO2 and proton. However, the methanol cannot thermally decompose with the voltage absence, which confirm the indispensable of the coupling of thermal and electrochemical integration for the methanol oxidation. By assembling the methanol oxidation reaction with hydrogen evolution reaction with single‐Ir‐atom catalysts in the anode chamber, a max hydrogen production rate reaches 18 mol gIr−1 h−1, which is much greater than that of Ir nanoparticles and commercial Pt/C. This study also demonstrated the electrochemical methanol oxidation activity of the single atom catalysts, which broadens the renewable energy devices and the catalyst design by an integration concept.

Funder

National Key Research and Development Program of China

Publisher

Wiley

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