Cargando…

Operando Reflectance Microscopy on Polycrystalline Surfaces in Thermal Catalysis, Electrocatalysis, and Corrosion

[Image: see text] We have developed a microscope with a spatial resolution of 5 μm, which can be used to image the two-dimensional surface optical reflectance (2D-SOR) of polycrystalline samples in operando conditions. Within the field of surface science, operando tools that give information about t...

Descripción completa

Detalles Bibliográficos
Autores principales: Pfaff, Sebastian, Larsson, Alfred, Orlov, Dmytro, Harlow, Gary S., Abbondanza, Giuseppe, Linpé, Weronica, Rämisch, Lisa, Gericke, Sabrina M., Zetterberg, Johan, Lundgren, Edvin
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2021
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8288973/
https://www.ncbi.nlm.nih.gov/pubmed/33870682
http://dx.doi.org/10.1021/acsami.1c04961
_version_ 1783724199832977408
author Pfaff, Sebastian
Larsson, Alfred
Orlov, Dmytro
Harlow, Gary S.
Abbondanza, Giuseppe
Linpé, Weronica
Rämisch, Lisa
Gericke, Sabrina M.
Zetterberg, Johan
Lundgren, Edvin
author_facet Pfaff, Sebastian
Larsson, Alfred
Orlov, Dmytro
Harlow, Gary S.
Abbondanza, Giuseppe
Linpé, Weronica
Rämisch, Lisa
Gericke, Sabrina M.
Zetterberg, Johan
Lundgren, Edvin
author_sort Pfaff, Sebastian
collection PubMed
description [Image: see text] We have developed a microscope with a spatial resolution of 5 μm, which can be used to image the two-dimensional surface optical reflectance (2D-SOR) of polycrystalline samples in operando conditions. Within the field of surface science, operando tools that give information about the surface structure or chemistry of a sample under realistic experimental conditions have proven to be very valuable to understand the intrinsic reaction mechanisms in thermal catalysis, electrocatalysis, and corrosion science. To study heterogeneous surfaces in situ, the experimental technique must both have spatial resolution and be able to probe through gas or electrolyte. Traditional electron-based surface science techniques are difficult to use under high gas pressure conditions or in an electrolyte due to the short mean free path of electrons. Since it uses visible light, SOR can easily be used under high gas pressure conditions and in the presence of an electrolyte. In this work, we use SOR in combination with a light microscope to gain information about the surface under realistic experimental conditions. We demonstrate this by studying the different grains of three polycrystalline samples: Pd during CO oxidation, Au in electrocatalysis, and duplex stainless steel in corrosion. Optical light-based techniques such as SOR could prove to be a good alternative or addition to more complicated techniques in improving our understanding of complex polycrystalline surfaces with operando measurements.
format Online
Article
Text
id pubmed-8288973
institution National Center for Biotechnology Information
language English
publishDate 2021
publisher American Chemical Society
record_format MEDLINE/PubMed
spelling pubmed-82889732021-07-20 Operando Reflectance Microscopy on Polycrystalline Surfaces in Thermal Catalysis, Electrocatalysis, and Corrosion Pfaff, Sebastian Larsson, Alfred Orlov, Dmytro Harlow, Gary S. Abbondanza, Giuseppe Linpé, Weronica Rämisch, Lisa Gericke, Sabrina M. Zetterberg, Johan Lundgren, Edvin ACS Appl Mater Interfaces [Image: see text] We have developed a microscope with a spatial resolution of 5 μm, which can be used to image the two-dimensional surface optical reflectance (2D-SOR) of polycrystalline samples in operando conditions. Within the field of surface science, operando tools that give information about the surface structure or chemistry of a sample under realistic experimental conditions have proven to be very valuable to understand the intrinsic reaction mechanisms in thermal catalysis, electrocatalysis, and corrosion science. To study heterogeneous surfaces in situ, the experimental technique must both have spatial resolution and be able to probe through gas or electrolyte. Traditional electron-based surface science techniques are difficult to use under high gas pressure conditions or in an electrolyte due to the short mean free path of electrons. Since it uses visible light, SOR can easily be used under high gas pressure conditions and in the presence of an electrolyte. In this work, we use SOR in combination with a light microscope to gain information about the surface under realistic experimental conditions. We demonstrate this by studying the different grains of three polycrystalline samples: Pd during CO oxidation, Au in electrocatalysis, and duplex stainless steel in corrosion. Optical light-based techniques such as SOR could prove to be a good alternative or addition to more complicated techniques in improving our understanding of complex polycrystalline surfaces with operando measurements. American Chemical Society 2021-04-19 2021-04-28 /pmc/articles/PMC8288973/ /pubmed/33870682 http://dx.doi.org/10.1021/acsami.1c04961 Text en © 2021 The Authors. Published by American Chemical Society Permits the broadest form of re-use including for commercial purposes, provided that author attribution and integrity are maintained (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Pfaff, Sebastian
Larsson, Alfred
Orlov, Dmytro
Harlow, Gary S.
Abbondanza, Giuseppe
Linpé, Weronica
Rämisch, Lisa
Gericke, Sabrina M.
Zetterberg, Johan
Lundgren, Edvin
Operando Reflectance Microscopy on Polycrystalline Surfaces in Thermal Catalysis, Electrocatalysis, and Corrosion
title Operando Reflectance Microscopy on Polycrystalline Surfaces in Thermal Catalysis, Electrocatalysis, and Corrosion
title_full Operando Reflectance Microscopy on Polycrystalline Surfaces in Thermal Catalysis, Electrocatalysis, and Corrosion
title_fullStr Operando Reflectance Microscopy on Polycrystalline Surfaces in Thermal Catalysis, Electrocatalysis, and Corrosion
title_full_unstemmed Operando Reflectance Microscopy on Polycrystalline Surfaces in Thermal Catalysis, Electrocatalysis, and Corrosion
title_short Operando Reflectance Microscopy on Polycrystalline Surfaces in Thermal Catalysis, Electrocatalysis, and Corrosion
title_sort operando reflectance microscopy on polycrystalline surfaces in thermal catalysis, electrocatalysis, and corrosion
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8288973/
https://www.ncbi.nlm.nih.gov/pubmed/33870682
http://dx.doi.org/10.1021/acsami.1c04961
work_keys_str_mv AT pfaffsebastian operandoreflectancemicroscopyonpolycrystallinesurfacesinthermalcatalysiselectrocatalysisandcorrosion
AT larssonalfred operandoreflectancemicroscopyonpolycrystallinesurfacesinthermalcatalysiselectrocatalysisandcorrosion
AT orlovdmytro operandoreflectancemicroscopyonpolycrystallinesurfacesinthermalcatalysiselectrocatalysisandcorrosion
AT harlowgarys operandoreflectancemicroscopyonpolycrystallinesurfacesinthermalcatalysiselectrocatalysisandcorrosion
AT abbondanzagiuseppe operandoreflectancemicroscopyonpolycrystallinesurfacesinthermalcatalysiselectrocatalysisandcorrosion
AT linpeweronica operandoreflectancemicroscopyonpolycrystallinesurfacesinthermalcatalysiselectrocatalysisandcorrosion
AT ramischlisa operandoreflectancemicroscopyonpolycrystallinesurfacesinthermalcatalysiselectrocatalysisandcorrosion
AT gerickesabrinam operandoreflectancemicroscopyonpolycrystallinesurfacesinthermalcatalysiselectrocatalysisandcorrosion
AT zetterbergjohan operandoreflectancemicroscopyonpolycrystallinesurfacesinthermalcatalysiselectrocatalysisandcorrosion
AT lundgrenedvin operandoreflectancemicroscopyonpolycrystallinesurfacesinthermalcatalysiselectrocatalysisandcorrosion