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Real-time visualisation of ion exchange in molecularly confined spaces where electric double layers overlap

Ion interactions with interfaces and transport in confined spaces, where electric double layers overlap, are essential in many areas, ranging from crevice corrosion to understanding and creating nano-fluidic devices at the sub 10 nm scale. Tracking the spatial and temporal evolution of ion exchange,...

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Autores principales: Ramach, Ulrich, Lee, Jinhoon, Altmann, Florian, Schussek, Martin, Olgiati, Matteo, Dziadkowiec, Joanna, Mears, Laura L. E., Celebi, Alper T., Lee, Dong Woog, Valtiner, Markus
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/PMC10568259/
https://www.ncbi.nlm.nih.gov/pubmed/37436123
http://dx.doi.org/10.1039/d3fd00038a
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author Ramach, Ulrich
Lee, Jinhoon
Altmann, Florian
Schussek, Martin
Olgiati, Matteo
Dziadkowiec, Joanna
Mears, Laura L. E.
Celebi, Alper T.
Lee, Dong Woog
Valtiner, Markus
author_facet Ramach, Ulrich
Lee, Jinhoon
Altmann, Florian
Schussek, Martin
Olgiati, Matteo
Dziadkowiec, Joanna
Mears, Laura L. E.
Celebi, Alper T.
Lee, Dong Woog
Valtiner, Markus
author_sort Ramach, Ulrich
collection PubMed
description Ion interactions with interfaces and transport in confined spaces, where electric double layers overlap, are essential in many areas, ranging from crevice corrosion to understanding and creating nano-fluidic devices at the sub 10 nm scale. Tracking the spatial and temporal evolution of ion exchange, as well as local surface potentials, in such extreme confinement situations is both experimentally and theoretically challenging. Here, we track in real-time the transport processes of ionic species (LiClO(4)) confined between a negatively charged mica surface and an electrochemically modulated gold surface using a high-speed in situ sensing Surface Forces Apparatus. With millisecond temporal and sub-micrometer spatial resolution we capture the force and distance equilibration of ions in the confinement of D ≈ 2–3 nm in an overlapping electric double layer (EDL) during ion exchange. Our data indicate that an equilibrated ion concentration front progresses with a velocity of 100–200 μm s(−1) into a confined nano-slit. This is in the same order of magnitude and in agreement with continuum estimates from diffusive mass transport calculations. We also compare the ion structuring using high resolution imaging, molecular dynamics simulations, and calculations based on a continuum model for the EDL. With this data we can predict the amount of ion exchange, as well as the force between the two surfaces due to overlapping EDLs, and critically discuss experimental and theoretical limitations and possibilities.
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spelling pubmed-105682592023-10-13 Real-time visualisation of ion exchange in molecularly confined spaces where electric double layers overlap Ramach, Ulrich Lee, Jinhoon Altmann, Florian Schussek, Martin Olgiati, Matteo Dziadkowiec, Joanna Mears, Laura L. E. Celebi, Alper T. Lee, Dong Woog Valtiner, Markus Faraday Discuss Chemistry Ion interactions with interfaces and transport in confined spaces, where electric double layers overlap, are essential in many areas, ranging from crevice corrosion to understanding and creating nano-fluidic devices at the sub 10 nm scale. Tracking the spatial and temporal evolution of ion exchange, as well as local surface potentials, in such extreme confinement situations is both experimentally and theoretically challenging. Here, we track in real-time the transport processes of ionic species (LiClO(4)) confined between a negatively charged mica surface and an electrochemically modulated gold surface using a high-speed in situ sensing Surface Forces Apparatus. With millisecond temporal and sub-micrometer spatial resolution we capture the force and distance equilibration of ions in the confinement of D ≈ 2–3 nm in an overlapping electric double layer (EDL) during ion exchange. Our data indicate that an equilibrated ion concentration front progresses with a velocity of 100–200 μm s(−1) into a confined nano-slit. This is in the same order of magnitude and in agreement with continuum estimates from diffusive mass transport calculations. We also compare the ion structuring using high resolution imaging, molecular dynamics simulations, and calculations based on a continuum model for the EDL. With this data we can predict the amount of ion exchange, as well as the force between the two surfaces due to overlapping EDLs, and critically discuss experimental and theoretical limitations and possibilities. The Royal Society of Chemistry 2023-03-29 /pmc/articles/PMC10568259/ /pubmed/37436123 http://dx.doi.org/10.1039/d3fd00038a Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Ramach, Ulrich
Lee, Jinhoon
Altmann, Florian
Schussek, Martin
Olgiati, Matteo
Dziadkowiec, Joanna
Mears, Laura L. E.
Celebi, Alper T.
Lee, Dong Woog
Valtiner, Markus
Real-time visualisation of ion exchange in molecularly confined spaces where electric double layers overlap
title Real-time visualisation of ion exchange in molecularly confined spaces where electric double layers overlap
title_full Real-time visualisation of ion exchange in molecularly confined spaces where electric double layers overlap
title_fullStr Real-time visualisation of ion exchange in molecularly confined spaces where electric double layers overlap
title_full_unstemmed Real-time visualisation of ion exchange in molecularly confined spaces where electric double layers overlap
title_short Real-time visualisation of ion exchange in molecularly confined spaces where electric double layers overlap
title_sort real-time visualisation of ion exchange in molecularly confined spaces where electric double layers overlap
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10568259/
https://www.ncbi.nlm.nih.gov/pubmed/37436123
http://dx.doi.org/10.1039/d3fd00038a
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