Mechanism of Particle-Mediated Inhibition of Demetalation for Single-Atom Catalytic Sites in Acidic Electrochemical Environments
Demetalation, caused by the electrochemical dissolution of metal atoms, poses a significant challenge to the practical application of single-atom catalytic sites (SACS) in proton exchange membrane-based energy technologies. One promising approach to inhibit SACS demetalation is the use of metallic p...
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Published in | ChemRxiv |
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Abstract | Demetalation, caused by the electrochemical dissolution of metal atoms, poses a significant challenge to the practical application of single-atom catalytic sites (SACS) in proton exchange membrane-based energy technologies. One promising approach to inhibit SACS demetalation is the use of metallic particles to interact with SACS. However, the mechanism underlying this stabilization remains unclear. In this study, we propose and validate a unified mechanism by which metal particles can inhibit the demetalation of Fe SACS. Metal particles act as electron donors, decreasing the Fe valence by increasing the electron density at the FeN4 position, thereby strengthening the Fe-N bond, and inhibiting electrochemical Fe dissolution. Different types, forms, and contents of metal particles increase the Fe-N bond strength to varying extents. A linear correlation between Fe valence, Fe-N bond strength, and electrochemical Fe dissolution amount supports this mechanism. Our screening of a particle-assisted Fe SAC led to a 78% reduction in Fe dissolution, enabling continuous operation for up to 430 hours in a fuel cell. These findings contribute to the development of stable SACS for energy applications. |
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AbstractList | Demetalation, caused by the electrochemical dissolution of metal atoms, poses a significant challenge to the practical application of single-atom catalytic sites (SACS) in proton exchange membrane-based energy technologies. One promising approach to inhibit SACS demetalation is the use of metallic particles to interact with SACS. However, the mechanism underlying this stabilization remains unclear. In this study, we propose and validate a unified mechanism by which metal particles can inhibit the demetalation of Fe SACS. Metal particles act as electron donors, decreasing the Fe valence by increasing the electron density at the FeN4 position, thereby strengthening the Fe-N bond, and inhibiting electrochemical Fe dissolution. Different types, forms, and contents of metal particles increase the Fe-N bond strength to varying extents. A linear correlation between Fe valence, Fe-N bond strength, and electrochemical Fe dissolution amount supports this mechanism. Our screening of a particle-assisted Fe SAC led to a 78% reduction in Fe dissolution, enabling continuous operation for up to 430 hours in a fuel cell. These findings contribute to the development of stable SACS for energy applications. |
Author | Zheng, Nan-Feng Huang, Huan Wang, Yu-Cheng Ye, Hong Gao, Xiao-bing Xu, Wei Cheng Zhou, Zhiyou Zhao, Kuang-min Sun, Shigang |
Author_xml | – sequence: 1 givenname: Yu-Cheng orcidid: 0000-0002-3356-3403 surname: Wang fullname: Wang, Yu-Cheng organization: Xiamen University – sequence: 2 givenname: Xiao-bing surname: Gao fullname: Gao, Xiao-bing organization: Xiamen University – sequence: 3 givenname: Wei Cheng surname: Xu fullname: Xu, Wei Cheng organization: Xiamen University – sequence: 4 givenname: Huan surname: Huang fullname: Huang, Huan organization: Institute of High Energy Physics – sequence: 5 givenname: Kuang-min surname: Zhao fullname: Zhao, Kuang-min organization: Xiamen University – sequence: 6 givenname: Hong surname: Ye fullname: Ye, Hong organization: Innovation laboratory for science and technologies of energy materials of Fujian Province – sequence: 7 givenname: Zhiyou surname: Zhou fullname: Zhou, Zhiyou organization: Xiamen University – sequence: 8 givenname: Nan-Feng surname: Zheng fullname: Zheng, Nan-Feng organization: Xiamen University – sequence: 9 givenname: Shigang surname: Sun fullname: Sun, Shigang organization: Xiamen University |
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Keywords | fuel cell single-atom catalysis demetalation stability |
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Snippet | Demetalation, caused by the electrochemical dissolution of metal atoms, poses a significant challenge to the practical application of single-atom catalytic... |
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SubjectTerms | Catalysis Chemistry Electrocatalysis Energy Fuel Cells Physical Chemistry |
Title | Mechanism of Particle-Mediated Inhibition of Demetalation for Single-Atom Catalytic Sites in Acidic Electrochemical Environments |
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