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Unveiling Curvature Effect on Fe Atom Embedded N-Doped Carbon Nanotubes for Electrocatalytic Oxygen Reduction Reactions Using Hybrid Quantum-Mechanics/Machine-Learning Potential

Authors :
Kang, Yikun
Li, Ye-Fei
Liu, Zhi-Pan
Source :
The Journal of Physical Chemistry - Part C; February 2024, Vol. 128 Issue: 8 p3127-3135, 9p
Publication Year :
2024

Abstract

The curvature of the catalyst’s surface is a novel dimension of variables that can significantly affect the catalytic activity. Theoretical simulations of the curvature effect on catalytic activity are, however, highly challenging because the catalyst model, being at the mesoscopic scale (nm to μm), is far beyond the current computational power in treating chemical reactions based on first-principles calculations. Here we develop a hybrid QM/ML calculation scheme that combines quantum mechanics (QM) and machine learning (ML) potentials to explore the curvature effect on catalytic activity. With this approach, we are able to establish quantitative curvature–activity relationships in the representative electrocatalytic reactions, namely, oxygen reduction reaction (ORR) on both FeN4and Fe2N6moieties embedded in dissimilar carbon substrates (either graphene or carbon nanotubes) with different curvatures (κ) ranging from 0 nm–1to 2 nm–1. The free energy changes of the potential-determining step (ΔGPDS) decrease linearly with the increase of curvature, and on the Fe2N6it exhibits a steeper slope with dΔGPDS/dκ = −0.09 eV nm. By analyzing the electronic structures, we find a linear downshift of the energy level of Fe d-orbital as curvature increases, which leads to the change of binding strength of key reaction intermediates, i.e., the enhancement in Fe–OH2binding. Our results provide new insights into the design of electrocatalysts by tuning the catalyst’s local curvature.

Details

Language :
English
ISSN :
19327447 and 19327455
Volume :
128
Issue :
8
Database :
Supplemental Index
Journal :
The Journal of Physical Chemistry - Part C
Publication Type :
Periodical
Accession number :
ejs65519932
Full Text :
https://doi.org/10.1021/acs.jpcc.3c08073