Cargando…

A soft on/off switch based on the electrochemically reversible H–J interconversion of a floating porphyrin membrane

Soft molecular assemblies that respond reversibly to external stimuli are attractive materials as on/off switches, in optoelectronic, memory and sensor technologies. In this Edge Article, we present the reversible structural rearrangement of a soft porphyrin membrane under an electrical potential st...

Descripción completa

Detalles Bibliográficos
Autores principales: Molina-Osorio, Andrés F., Yamamoto, Sho, Robayo-Molina, Iván, Gamero-Quijano, Alonso, Nagatani, Hirohisa, Scanlon, Micheál D.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8336430/
https://www.ncbi.nlm.nih.gov/pubmed/34377410
http://dx.doi.org/10.1039/d0sc05786j
_version_ 1783733317563056128
author Molina-Osorio, Andrés F.
Yamamoto, Sho
Robayo-Molina, Iván
Gamero-Quijano, Alonso
Nagatani, Hirohisa
Scanlon, Micheál D.
author_facet Molina-Osorio, Andrés F.
Yamamoto, Sho
Robayo-Molina, Iván
Gamero-Quijano, Alonso
Nagatani, Hirohisa
Scanlon, Micheál D.
author_sort Molina-Osorio, Andrés F.
collection PubMed
description Soft molecular assemblies that respond reversibly to external stimuli are attractive materials as on/off switches, in optoelectronic, memory and sensor technologies. In this Edge Article, we present the reversible structural rearrangement of a soft porphyrin membrane under an electrical potential stimulus in the absence of solid-state architectures. The free-floating porphyrin membrane lies at the interface between immiscible aqueous and organic electrolyte solutions and is formed through interfacial self-assembly of zinc(ii) meso-tetrakis(4-carboxyphenyl)porphyrins (ZnPor). A potential difference between the two immiscible electrolyte solutions induces the intercalation of bis(triphenylphosphoranylidene)ammonium cations from the organic electrolyte that exchange with protons in the porphyrin membrane. In situ UV/vis absorbance spectroscopy shows that this ionic intercalation and exchange induces a structural interconversion of the individual porphyrin molecules in the membrane from an H- to a J-type molecular configuration. These structural rearrangements are reversible over 30 potential cycles. In situ polarisation-modulation fluorescence spectroscopy further provides clear evidence of structural interconversion of the porphyrin membrane, as intercalation of the organic electrolyte cations significantly affects the latter's emissive properties. By adjusting the pH of the aqueous phase, additional control of the electrochemically reversible structural interconversion can be achieved, with total suppression at pH 3.
format Online
Article
Text
id pubmed-8336430
institution National Center for Biotechnology Information
language English
publishDate 2021
publisher The Royal Society of Chemistry
record_format MEDLINE/PubMed
spelling pubmed-83364302021-08-09 A soft on/off switch based on the electrochemically reversible H–J interconversion of a floating porphyrin membrane Molina-Osorio, Andrés F. Yamamoto, Sho Robayo-Molina, Iván Gamero-Quijano, Alonso Nagatani, Hirohisa Scanlon, Micheál D. Chem Sci Chemistry Soft molecular assemblies that respond reversibly to external stimuli are attractive materials as on/off switches, in optoelectronic, memory and sensor technologies. In this Edge Article, we present the reversible structural rearrangement of a soft porphyrin membrane under an electrical potential stimulus in the absence of solid-state architectures. The free-floating porphyrin membrane lies at the interface between immiscible aqueous and organic electrolyte solutions and is formed through interfacial self-assembly of zinc(ii) meso-tetrakis(4-carboxyphenyl)porphyrins (ZnPor). A potential difference between the two immiscible electrolyte solutions induces the intercalation of bis(triphenylphosphoranylidene)ammonium cations from the organic electrolyte that exchange with protons in the porphyrin membrane. In situ UV/vis absorbance spectroscopy shows that this ionic intercalation and exchange induces a structural interconversion of the individual porphyrin molecules in the membrane from an H- to a J-type molecular configuration. These structural rearrangements are reversible over 30 potential cycles. In situ polarisation-modulation fluorescence spectroscopy further provides clear evidence of structural interconversion of the porphyrin membrane, as intercalation of the organic electrolyte cations significantly affects the latter's emissive properties. By adjusting the pH of the aqueous phase, additional control of the electrochemically reversible structural interconversion can be achieved, with total suppression at pH 3. The Royal Society of Chemistry 2021-07-01 /pmc/articles/PMC8336430/ /pubmed/34377410 http://dx.doi.org/10.1039/d0sc05786j Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Molina-Osorio, Andrés F.
Yamamoto, Sho
Robayo-Molina, Iván
Gamero-Quijano, Alonso
Nagatani, Hirohisa
Scanlon, Micheál D.
A soft on/off switch based on the electrochemically reversible H–J interconversion of a floating porphyrin membrane
title A soft on/off switch based on the electrochemically reversible H–J interconversion of a floating porphyrin membrane
title_full A soft on/off switch based on the electrochemically reversible H–J interconversion of a floating porphyrin membrane
title_fullStr A soft on/off switch based on the electrochemically reversible H–J interconversion of a floating porphyrin membrane
title_full_unstemmed A soft on/off switch based on the electrochemically reversible H–J interconversion of a floating porphyrin membrane
title_short A soft on/off switch based on the electrochemically reversible H–J interconversion of a floating porphyrin membrane
title_sort soft on/off switch based on the electrochemically reversible h–j interconversion of a floating porphyrin membrane
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8336430/
https://www.ncbi.nlm.nih.gov/pubmed/34377410
http://dx.doi.org/10.1039/d0sc05786j
work_keys_str_mv AT molinaosorioandresf asoftonoffswitchbasedontheelectrochemicallyreversiblehjinterconversionofafloatingporphyrinmembrane
AT yamamotosho asoftonoffswitchbasedontheelectrochemicallyreversiblehjinterconversionofafloatingporphyrinmembrane
AT robayomolinaivan asoftonoffswitchbasedontheelectrochemicallyreversiblehjinterconversionofafloatingporphyrinmembrane
AT gameroquijanoalonso asoftonoffswitchbasedontheelectrochemicallyreversiblehjinterconversionofafloatingporphyrinmembrane
AT nagatanihirohisa asoftonoffswitchbasedontheelectrochemicallyreversiblehjinterconversionofafloatingporphyrinmembrane
AT scanlonmicheald asoftonoffswitchbasedontheelectrochemicallyreversiblehjinterconversionofafloatingporphyrinmembrane
AT molinaosorioandresf softonoffswitchbasedontheelectrochemicallyreversiblehjinterconversionofafloatingporphyrinmembrane
AT yamamotosho softonoffswitchbasedontheelectrochemicallyreversiblehjinterconversionofafloatingporphyrinmembrane
AT robayomolinaivan softonoffswitchbasedontheelectrochemicallyreversiblehjinterconversionofafloatingporphyrinmembrane
AT gameroquijanoalonso softonoffswitchbasedontheelectrochemicallyreversiblehjinterconversionofafloatingporphyrinmembrane
AT nagatanihirohisa softonoffswitchbasedontheelectrochemicallyreversiblehjinterconversionofafloatingporphyrinmembrane
AT scanlonmicheald softonoffswitchbasedontheelectrochemicallyreversiblehjinterconversionofafloatingporphyrinmembrane