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Electropolymerization of Polydopamine at Electrode-Supported Insulating Mesoporous Films

[Image: see text] Bioinspired, stimuli-responsive, polymer-functionalized mesoporous films are promising platforms for precisely regulating nanopore transport toward applications in water management, iontronics, catalysis, sensing, drug delivery, or energy conversion. Nanopore technologies still req...

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Autores principales: Varol, H. Samet, Herberger, Tilmann, Kirsch, Marius, Mikolei, Joanna, Veith, Lothar, Kannan-Sampathkumar, Venkataprasanna, Brand, Raoul D., Synatschke, Christopher V., Weil, Tanja, Andrieu-Brunsen, Annette
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2023
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10653081/
https://www.ncbi.nlm.nih.gov/pubmed/38027541
http://dx.doi.org/10.1021/acs.chemmater.3c01890
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author Varol, H. Samet
Herberger, Tilmann
Kirsch, Marius
Mikolei, Joanna
Veith, Lothar
Kannan-Sampathkumar, Venkataprasanna
Brand, Raoul D.
Synatschke, Christopher V.
Weil, Tanja
Andrieu-Brunsen, Annette
author_facet Varol, H. Samet
Herberger, Tilmann
Kirsch, Marius
Mikolei, Joanna
Veith, Lothar
Kannan-Sampathkumar, Venkataprasanna
Brand, Raoul D.
Synatschke, Christopher V.
Weil, Tanja
Andrieu-Brunsen, Annette
author_sort Varol, H. Samet
collection PubMed
description [Image: see text] Bioinspired, stimuli-responsive, polymer-functionalized mesoporous films are promising platforms for precisely regulating nanopore transport toward applications in water management, iontronics, catalysis, sensing, drug delivery, or energy conversion. Nanopore technologies still require new, facile, and effective nanopore functionalization with multi- and stimuli-responsive polymers to reach these complicated application targets. In recent years, zwitterionic and multifunctional polydopamine (PDA) films deposited on planar surfaces by electropolymerization have helped surfaces respond to various external stimuli such as light, temperature, moisture, and pH. However, PDA has not been used to functionalize nanoporous films, where the PDA-coating could locally regulate the ionic nanopore transport. This study investigates the electropolymerization of homogeneous thin PDA films to functionalize nanopores of mesoporous silica films. We investigate the effect of different mesoporous film structures and the number of electropolymerization cycles on the presence of PDA at mesopores and mesoporous film surfaces. Our spectroscopic, microscopic, and electrochemical analysis reveals that the amount and location (pores and surface) of deposited PDA at mesoporous films is related to the combination of the number of electropolymerization cycles and the mesoporous film thickness and pore size. In view of the application of the proposed PDA-functionalized mesoporous films in areas requiring ion transport control, we studied the ion nanopore transport of the films by cyclic voltammetry. We realized that the amount of PDA in the nanopores helps to limit the overall ionic transport, while the pH-dependent transport mechanism of pristine silica films remains unchanged. It was found that (i) the pH-dependent deprotonation of PDA and silica walls and (ii) the insulation of the indium-tin oxide (ITO) surface by increasing the amount of PDA within the mesoporous silica film affect the ionic nanopore transport.
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spelling pubmed-106530812023-11-16 Electropolymerization of Polydopamine at Electrode-Supported Insulating Mesoporous Films Varol, H. Samet Herberger, Tilmann Kirsch, Marius Mikolei, Joanna Veith, Lothar Kannan-Sampathkumar, Venkataprasanna Brand, Raoul D. Synatschke, Christopher V. Weil, Tanja Andrieu-Brunsen, Annette Chem Mater [Image: see text] Bioinspired, stimuli-responsive, polymer-functionalized mesoporous films are promising platforms for precisely regulating nanopore transport toward applications in water management, iontronics, catalysis, sensing, drug delivery, or energy conversion. Nanopore technologies still require new, facile, and effective nanopore functionalization with multi- and stimuli-responsive polymers to reach these complicated application targets. In recent years, zwitterionic and multifunctional polydopamine (PDA) films deposited on planar surfaces by electropolymerization have helped surfaces respond to various external stimuli such as light, temperature, moisture, and pH. However, PDA has not been used to functionalize nanoporous films, where the PDA-coating could locally regulate the ionic nanopore transport. This study investigates the electropolymerization of homogeneous thin PDA films to functionalize nanopores of mesoporous silica films. We investigate the effect of different mesoporous film structures and the number of electropolymerization cycles on the presence of PDA at mesopores and mesoporous film surfaces. Our spectroscopic, microscopic, and electrochemical analysis reveals that the amount and location (pores and surface) of deposited PDA at mesoporous films is related to the combination of the number of electropolymerization cycles and the mesoporous film thickness and pore size. In view of the application of the proposed PDA-functionalized mesoporous films in areas requiring ion transport control, we studied the ion nanopore transport of the films by cyclic voltammetry. We realized that the amount of PDA in the nanopores helps to limit the overall ionic transport, while the pH-dependent transport mechanism of pristine silica films remains unchanged. It was found that (i) the pH-dependent deprotonation of PDA and silica walls and (ii) the insulation of the indium-tin oxide (ITO) surface by increasing the amount of PDA within the mesoporous silica film affect the ionic nanopore transport. American Chemical Society 2023-11-02 /pmc/articles/PMC10653081/ /pubmed/38027541 http://dx.doi.org/10.1021/acs.chemmater.3c01890 Text en © 2023 The Authors. Published by American Chemical Society https://creativecommons.org/licenses/by-nc-nd/4.0/Permits non-commercial access and re-use, provided that author attribution and integrity are maintained; but does not permit creation of adaptations or other derivative works (https://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Varol, H. Samet
Herberger, Tilmann
Kirsch, Marius
Mikolei, Joanna
Veith, Lothar
Kannan-Sampathkumar, Venkataprasanna
Brand, Raoul D.
Synatschke, Christopher V.
Weil, Tanja
Andrieu-Brunsen, Annette
Electropolymerization of Polydopamine at Electrode-Supported Insulating Mesoporous Films
title Electropolymerization of Polydopamine at Electrode-Supported Insulating Mesoporous Films
title_full Electropolymerization of Polydopamine at Electrode-Supported Insulating Mesoporous Films
title_fullStr Electropolymerization of Polydopamine at Electrode-Supported Insulating Mesoporous Films
title_full_unstemmed Electropolymerization of Polydopamine at Electrode-Supported Insulating Mesoporous Films
title_short Electropolymerization of Polydopamine at Electrode-Supported Insulating Mesoporous Films
title_sort electropolymerization of polydopamine at electrode-supported insulating mesoporous films
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10653081/
https://www.ncbi.nlm.nih.gov/pubmed/38027541
http://dx.doi.org/10.1021/acs.chemmater.3c01890
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