Controlling Oxygen-Based Electrochemical Reactions through Spin Orientation

Authors
Bhattacharjee, SatadeepLee, Seung-Cheol
Issue Date
2018-01-11
Publisher
American Chemical Society
Citation
The Journal of Physical Chemistry C, v.122, no.1, pp.894 - 901
Abstract
The role of spin orientation on the reactivity of oxygen reduction reaction (ORR) intermediates (O, OH) on a ferromagnetic electrode surface is studied using constrained density functional theory formalism. We show that the strength of the binding of these reaction intermediates depend on their relative spin orientations with respect to the magnetization of the electrode. This suggests that oxygen-based electrochemical reactions on ferromagnetic catalyst surfaces can be controlled through the applied magnetic field. In the present study, we demonstrate such a possibility through the study of an oxygen reduction reaction on a PdFe (001) surface by introducing a new concept: spin orientation dependent overpotential. Also, we have explained the origin of lower dissociation barrier for the O-2, molecule on ferromagnetic surfaces when its spin moment is antiparallel to the surface magnetization as reported in the recent experiments.
Keywords
PT-M M; REDUCTION ACTIVITY; 1ST PRINCIPLES; CO; ELECTROCATALYSTS; PERFORMANCE; CATALYSTS; DESIGN; NI; MAGNETISM; PT-M M; REDUCTION ACTIVITY; 1ST PRINCIPLES; CO; ELECTROCATALYSTS; PERFORMANCE; CATALYSTS; DESIGN; NI; MAGNETISM; Density Functional Theory; Catalyst; Spin orientation; Magnetic Material; Oxygen Reduction Reaction
ISSN
1932-7447
URI
https://pubs.kist.re.kr/handle/201004/121806
DOI
10.1021/acs.jpcc.7b10147
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KIST Article > 2018
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