The role of surface spin polarization on ceria-supported Pt nanoparticles

Fuente: arXiv
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Main Authors: Kang, Byungkyun, Vincent, Joshua L., Crozier, Peter A., Zhu, Qiang
Format: Preprint
Published: 2021
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author Kang, Byungkyun
Vincent, Joshua L.
Crozier, Peter A.
Zhu, Qiang
author_facet Kang, Byungkyun
Vincent, Joshua L.
Crozier, Peter A.
Zhu, Qiang
contents In this work, we employ first-principles simulations to investigate the spin polarization of CeO$_2$-(111) surface and its impact on interactions between a ceria support and Pt nanoparticles. For the first time, we report that the CeO$_2$-(111) surface exhibits a robust surface spin polarization due to the internal charge transfer between atomic Ce and O layers. In turn, it can lower the surface oxygen vacancy formation energy and enhance the oxide reducibility. We show that the inclusion of spin polarization can therefore significantly reduce the major activation barrier in the proposed reaction pathway of CO oxidation on ceria-supported Pt nanoparticles. For metal-support interactions, surface spin polarization enhances the bonding between Pt nanoparticle and ceria surface oxygen, while CO adsorption on Pt nanoparticles weakens the interfacial interaction regardless of spin polarization.
format Preprint
id arxiv_https___arxiv_org_abs_2110_00710
institution arXiv
publishDate 2021
record_format arxiv
spellingShingle The role of surface spin polarization on ceria-supported Pt nanoparticles
Kang, Byungkyun
Vincent, Joshua L.
Crozier, Peter A.
Zhu, Qiang
Materials Science
Chemical Physics
In this work, we employ first-principles simulations to investigate the spin polarization of CeO$_2$-(111) surface and its impact on interactions between a ceria support and Pt nanoparticles. For the first time, we report that the CeO$_2$-(111) surface exhibits a robust surface spin polarization due to the internal charge transfer between atomic Ce and O layers. In turn, it can lower the surface oxygen vacancy formation energy and enhance the oxide reducibility. We show that the inclusion of spin polarization can therefore significantly reduce the major activation barrier in the proposed reaction pathway of CO oxidation on ceria-supported Pt nanoparticles. For metal-support interactions, surface spin polarization enhances the bonding between Pt nanoparticle and ceria surface oxygen, while CO adsorption on Pt nanoparticles weakens the interfacial interaction regardless of spin polarization.
title The role of surface spin polarization on ceria-supported Pt nanoparticles
topic Materials Science
Chemical Physics
url https://arxiv.org/abs/2110.00710