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Microfluidic electrochemical cell for in situ structural characterization of amorphous thin-film catalysts using high-energy X-ray scattering

Porous, high-surface-area electrode architectures are described that allow structural characterization of interfacial amorphous thin films with high spatial resolution under device-relevant functional electrochemical conditions using high-energy X-ray (>50 keV) scattering and pair distribution fu...

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Autores principales: Kwon, Gihan, Cho, Yeong-Ho, Kim, Ki-Bum, Emery, Jonathan D., Kim, In Soo, Zhang, Xiaoyi, Martinson, Alex B. F., Tiede, Davd M.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: International Union of Crystallography 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6730625/
https://www.ncbi.nlm.nih.gov/pubmed/31490150
http://dx.doi.org/10.1107/S1600577519007240
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author Kwon, Gihan
Cho, Yeong-Ho
Kim, Ki-Bum
Emery, Jonathan D.
Kim, In Soo
Zhang, Xiaoyi
Martinson, Alex B. F.
Tiede, Davd M.
author_facet Kwon, Gihan
Cho, Yeong-Ho
Kim, Ki-Bum
Emery, Jonathan D.
Kim, In Soo
Zhang, Xiaoyi
Martinson, Alex B. F.
Tiede, Davd M.
author_sort Kwon, Gihan
collection PubMed
description Porous, high-surface-area electrode architectures are described that allow structural characterization of interfacial amorphous thin films with high spatial resolution under device-relevant functional electrochemical conditions using high-energy X-ray (>50 keV) scattering and pair distribution function (PDF) analysis. Porous electrodes were fabricated from glass-capillary array membranes coated with conformal transparent conductive oxide layers, consisting of either a 40 nm–50 nm crystalline indium tin oxide or a 100 nm–150 nm-thick amorphous indium zinc oxide deposited by atomic layer deposition. These porous electrodes solve the problem of insufficient interaction volumes for catalyst thin films in two-dimensional working electrode designs and provide sufficiently low scattering backgrounds to enable high-resolution signal collection from interfacial thin-film catalysts. For example, PDF measurements were readily obtained with 0.2 Å spatial resolution for amorphous cobalt oxide films with thicknesses down to 60 nm when deposited on a porous electrode with 40 µm-diameter pores. This level of resolution resolves the cobaltate domain size and structure, the presence of defect sites assigned to the domain edges, and the changes in fine structure upon redox state change that are relevant to quantitative structure–function modeling. The results suggest the opportunity to leverage the porous, electrode architectures for PDF analysis of nanometre-scale surface-supported molecular catalysts. In addition, a compact 3D-printed electrochemical cell in a three-electrode configuration is described which is designed to allow for simultaneous X-ray transmission and electrolyte flow through the porous working electrode.
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spelling pubmed-67306252019-09-24 Microfluidic electrochemical cell for in situ structural characterization of amorphous thin-film catalysts using high-energy X-ray scattering Kwon, Gihan Cho, Yeong-Ho Kim, Ki-Bum Emery, Jonathan D. Kim, In Soo Zhang, Xiaoyi Martinson, Alex B. F. Tiede, Davd M. J Synchrotron Radiat Research Papers Porous, high-surface-area electrode architectures are described that allow structural characterization of interfacial amorphous thin films with high spatial resolution under device-relevant functional electrochemical conditions using high-energy X-ray (>50 keV) scattering and pair distribution function (PDF) analysis. Porous electrodes were fabricated from glass-capillary array membranes coated with conformal transparent conductive oxide layers, consisting of either a 40 nm–50 nm crystalline indium tin oxide or a 100 nm–150 nm-thick amorphous indium zinc oxide deposited by atomic layer deposition. These porous electrodes solve the problem of insufficient interaction volumes for catalyst thin films in two-dimensional working electrode designs and provide sufficiently low scattering backgrounds to enable high-resolution signal collection from interfacial thin-film catalysts. For example, PDF measurements were readily obtained with 0.2 Å spatial resolution for amorphous cobalt oxide films with thicknesses down to 60 nm when deposited on a porous electrode with 40 µm-diameter pores. This level of resolution resolves the cobaltate domain size and structure, the presence of defect sites assigned to the domain edges, and the changes in fine structure upon redox state change that are relevant to quantitative structure–function modeling. The results suggest the opportunity to leverage the porous, electrode architectures for PDF analysis of nanometre-scale surface-supported molecular catalysts. In addition, a compact 3D-printed electrochemical cell in a three-electrode configuration is described which is designed to allow for simultaneous X-ray transmission and electrolyte flow through the porous working electrode. International Union of Crystallography 2019-08-09 /pmc/articles/PMC6730625/ /pubmed/31490150 http://dx.doi.org/10.1107/S1600577519007240 Text en © Kwon et al. 2019 http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution (CC-BY) Licence, which permits unrestricted use, distribution, and reproduction in any medium, provided the original authors and source are cited.http://creativecommons.org/licenses/by/4.0/
spellingShingle Research Papers
Kwon, Gihan
Cho, Yeong-Ho
Kim, Ki-Bum
Emery, Jonathan D.
Kim, In Soo
Zhang, Xiaoyi
Martinson, Alex B. F.
Tiede, Davd M.
Microfluidic electrochemical cell for in situ structural characterization of amorphous thin-film catalysts using high-energy X-ray scattering
title Microfluidic electrochemical cell for in situ structural characterization of amorphous thin-film catalysts using high-energy X-ray scattering
title_full Microfluidic electrochemical cell for in situ structural characterization of amorphous thin-film catalysts using high-energy X-ray scattering
title_fullStr Microfluidic electrochemical cell for in situ structural characterization of amorphous thin-film catalysts using high-energy X-ray scattering
title_full_unstemmed Microfluidic electrochemical cell for in situ structural characterization of amorphous thin-film catalysts using high-energy X-ray scattering
title_short Microfluidic electrochemical cell for in situ structural characterization of amorphous thin-film catalysts using high-energy X-ray scattering
title_sort microfluidic electrochemical cell for in situ structural characterization of amorphous thin-film catalysts using high-energy x-ray scattering
topic Research Papers
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6730625/
https://www.ncbi.nlm.nih.gov/pubmed/31490150
http://dx.doi.org/10.1107/S1600577519007240
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