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Metal nanoparticles supported on a nonconductive oxide undergo pH-dependent spontaneous polarization

Electrochemical polarization, which often plays a critical role in driving chemical reactions at solid–liquid interfaces, can arise spontaneously through the exchange of ions and/or electrons across the interface. However, the extent to which such spontaneous polarization prevails at nonconductive i...

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Autores principales: Wesley, Thejas S., Hülsey, Max J., Westendorff, Karl S., Lewis, Noah B., Crumlin, Ethan J., Román-Leshkov, Yuriy, Surendranath, Yogesh
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10321480/
https://www.ncbi.nlm.nih.gov/pubmed/37416702
http://dx.doi.org/10.1039/d3sc00884c
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author Wesley, Thejas S.
Hülsey, Max J.
Westendorff, Karl S.
Lewis, Noah B.
Crumlin, Ethan J.
Román-Leshkov, Yuriy
Surendranath, Yogesh
author_facet Wesley, Thejas S.
Hülsey, Max J.
Westendorff, Karl S.
Lewis, Noah B.
Crumlin, Ethan J.
Román-Leshkov, Yuriy
Surendranath, Yogesh
author_sort Wesley, Thejas S.
collection PubMed
description Electrochemical polarization, which often plays a critical role in driving chemical reactions at solid–liquid interfaces, can arise spontaneously through the exchange of ions and/or electrons across the interface. However, the extent to which such spontaneous polarization prevails at nonconductive interfaces remains unclear because such materials preclude measuring and controlling the degree of interfacial polarization via standard (i.e., wired) potentiometric methods. Herein, we circumvent the limitations of wired potentiometry by applying infrared and ambient pressure X-ray photoelectron spectroscopies (AP-XPS) to probe the electrochemical potential of nonconductive interfaces as a function of solution composition. As a model class of macroscopically nonconductive interfaces, we specifically probe the degree of spontaneous polarization of ZrO(2)-supported Pt and Au nanoparticles immersed in aqueous solutions of varying pH. Shifts in the Pt-adsorbed CO vibrational band position evince electrochemical polarization of the Pt/ZrO(2)–water interface with changing pH, and AP-XPS reveals quasi-Nernstian shifts of the electrochemical potential of Pt and Au with pH in the presence of H(2). These results indicate that spontaneous proton transfer via equilibrated H(+)/H(2) interconversion spontaneously polarizes metal nanoparticles even when supported on a nonconductive host. Consequently, these findings indicate that solution composition (i.e., pH) can be an effective handle for tuning interfacial electrical polarization and potential at nonconductive interfaces.
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spelling pubmed-103214802023-07-06 Metal nanoparticles supported on a nonconductive oxide undergo pH-dependent spontaneous polarization Wesley, Thejas S. Hülsey, Max J. Westendorff, Karl S. Lewis, Noah B. Crumlin, Ethan J. Román-Leshkov, Yuriy Surendranath, Yogesh Chem Sci Chemistry Electrochemical polarization, which often plays a critical role in driving chemical reactions at solid–liquid interfaces, can arise spontaneously through the exchange of ions and/or electrons across the interface. However, the extent to which such spontaneous polarization prevails at nonconductive interfaces remains unclear because such materials preclude measuring and controlling the degree of interfacial polarization via standard (i.e., wired) potentiometric methods. Herein, we circumvent the limitations of wired potentiometry by applying infrared and ambient pressure X-ray photoelectron spectroscopies (AP-XPS) to probe the electrochemical potential of nonconductive interfaces as a function of solution composition. As a model class of macroscopically nonconductive interfaces, we specifically probe the degree of spontaneous polarization of ZrO(2)-supported Pt and Au nanoparticles immersed in aqueous solutions of varying pH. Shifts in the Pt-adsorbed CO vibrational band position evince electrochemical polarization of the Pt/ZrO(2)–water interface with changing pH, and AP-XPS reveals quasi-Nernstian shifts of the electrochemical potential of Pt and Au with pH in the presence of H(2). These results indicate that spontaneous proton transfer via equilibrated H(+)/H(2) interconversion spontaneously polarizes metal nanoparticles even when supported on a nonconductive host. Consequently, these findings indicate that solution composition (i.e., pH) can be an effective handle for tuning interfacial electrical polarization and potential at nonconductive interfaces. The Royal Society of Chemistry 2023-05-25 /pmc/articles/PMC10321480/ /pubmed/37416702 http://dx.doi.org/10.1039/d3sc00884c Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Wesley, Thejas S.
Hülsey, Max J.
Westendorff, Karl S.
Lewis, Noah B.
Crumlin, Ethan J.
Román-Leshkov, Yuriy
Surendranath, Yogesh
Metal nanoparticles supported on a nonconductive oxide undergo pH-dependent spontaneous polarization
title Metal nanoparticles supported on a nonconductive oxide undergo pH-dependent spontaneous polarization
title_full Metal nanoparticles supported on a nonconductive oxide undergo pH-dependent spontaneous polarization
title_fullStr Metal nanoparticles supported on a nonconductive oxide undergo pH-dependent spontaneous polarization
title_full_unstemmed Metal nanoparticles supported on a nonconductive oxide undergo pH-dependent spontaneous polarization
title_short Metal nanoparticles supported on a nonconductive oxide undergo pH-dependent spontaneous polarization
title_sort metal nanoparticles supported on a nonconductive oxide undergo ph-dependent spontaneous polarization
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10321480/
https://www.ncbi.nlm.nih.gov/pubmed/37416702
http://dx.doi.org/10.1039/d3sc00884c
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