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From 2e− to 4e− pathway in the alkaline oxygen reduction reaction on Au(100): Kinetic circumvention of the volcano curve.

Authors :
Li, Yuke
Liu, Bing-Yu
Chen, Yanxia
Liu, Zhi-Feng
Source :
Journal of Chemical Physics; 6/28/2024, Vol. 160 Issue 24, p1-11, 11p
Publication Year :
2024

Abstract

We report the free energy barriers for the elementary reactions in the 2e<superscript>−</superscript> and 4e<superscript>−</superscript> oxygen reduction reaction (ORR) steps on Au(100) in an alkaline solution. Due to the weak adsorption energy of O<subscript>2</subscript> on Au(100), the barrier for the association channel is very low, and the 2e<superscript>−</superscript> pathway is clearly favored, while the barrier for the O–O dissociation channel is significantly higher at 0.5 eV. Above 0.7 V reversible hydrogen electrode (RHE), the association channel becomes thermodynamically unfavorable, which opens up the O–O dissociation channel, leading to the 4e<superscript>−</superscript> pathway. The low adsorption energy of oxygenated species on Au is now an advantage, and residue ORR current can be observed up to the 1.0–1.2 V region (RHE). In contrast, the O–O dissociation barrier on Au(111) is significantly higher, at close to 0.9 eV, due to coupling with surface reorganization, which explains the lower ORR activity on Au(111) than that on Au(100). In combination with the previously suggested outer sphere electron transfer to O<subscript>2</subscript> for its initial adsorption, these results provide a consistent explanation for the features in the experimentally measured polarization curve for the alkaline ORR on Au(100) and demonstrate an ORR mechanism distinct from that on Pt(111). It also highlights the importance to consider the spin state of O<subscript>2</subscript> in ORR and to understand the activation barriers, in addition to the adsorption energies, to account for the features observed in electrochemical measurements. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
00219606
Volume :
160
Issue :
24
Database :
Complementary Index
Journal :
Journal of Chemical Physics
Publication Type :
Academic Journal
Accession number :
178147250
Full Text :
https://doi.org/10.1063/5.0211477