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Impact of the Liquid Crystal Order of Poly(azomethine-sulfone)s on the Semiconducting Properties

Organic semiconductors are an attractive class of materials with large application in various fields, from optoelectronics to biomedicine. Usually, organic semiconductors have low electrical conductivity, and different routes towards improving said conductivity are being investigated. One such metho...

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Autores principales: Dumbravă, Oana, Popovici, Dumitru, Vasincu, Decebal, Popa, Ovidiu, Ochiuz, Lăcrămioara, Irimiciuc, Ștefan-Andrei, Agop, Maricel, Negură, Anca
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9003125/
https://www.ncbi.nlm.nih.gov/pubmed/35406361
http://dx.doi.org/10.3390/polym14071487
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author Dumbravă, Oana
Popovici, Dumitru
Vasincu, Decebal
Popa, Ovidiu
Ochiuz, Lăcrămioara
Irimiciuc, Ștefan-Andrei
Agop, Maricel
Negură, Anca
author_facet Dumbravă, Oana
Popovici, Dumitru
Vasincu, Decebal
Popa, Ovidiu
Ochiuz, Lăcrămioara
Irimiciuc, Ștefan-Andrei
Agop, Maricel
Negură, Anca
author_sort Dumbravă, Oana
collection PubMed
description Organic semiconductors are an attractive class of materials with large application in various fields, from optoelectronics to biomedicine. Usually, organic semiconductors have low electrical conductivity, and different routes towards improving said conductivity are being investigated. One such method is to increase their ordering degree, which not only improves electrical conduction but promotes cell growth, adhesion, and proliferation at the polymer–tissue interface. The current paper proposes a mathematical model for understanding the influence of the ordering state on the electrical properties of the organic semiconductors. To this end, a series of aromatic poly(azomethine)s were prepared as thin films in both amorphous and ordered states, and their supramolecular and electrical properties were analyzed by polarized light microscopy and surface type cells, respectively. Furthermore, the film surface characteristics were investigated by atomic force microscopy. It was established that the manufacture of thin films from mesophase state induced an electrical conductivity improvement of one order of magnitude. A mathematical model was developed in the framework of a multifractal theory of motion in its Schrodinger representation. The model used the order degree of the thin films as a fractality measure of the physical system’s representation in the multifractal space. It proposed two types of conductivity, which manifest at different ranges of fractalization degrees. The mathematical predictions were found to be in line with the empirical data.
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spelling pubmed-90031252022-04-13 Impact of the Liquid Crystal Order of Poly(azomethine-sulfone)s on the Semiconducting Properties Dumbravă, Oana Popovici, Dumitru Vasincu, Decebal Popa, Ovidiu Ochiuz, Lăcrămioara Irimiciuc, Ștefan-Andrei Agop, Maricel Negură, Anca Polymers (Basel) Article Organic semiconductors are an attractive class of materials with large application in various fields, from optoelectronics to biomedicine. Usually, organic semiconductors have low electrical conductivity, and different routes towards improving said conductivity are being investigated. One such method is to increase their ordering degree, which not only improves electrical conduction but promotes cell growth, adhesion, and proliferation at the polymer–tissue interface. The current paper proposes a mathematical model for understanding the influence of the ordering state on the electrical properties of the organic semiconductors. To this end, a series of aromatic poly(azomethine)s were prepared as thin films in both amorphous and ordered states, and their supramolecular and electrical properties were analyzed by polarized light microscopy and surface type cells, respectively. Furthermore, the film surface characteristics were investigated by atomic force microscopy. It was established that the manufacture of thin films from mesophase state induced an electrical conductivity improvement of one order of magnitude. A mathematical model was developed in the framework of a multifractal theory of motion in its Schrodinger representation. The model used the order degree of the thin films as a fractality measure of the physical system’s representation in the multifractal space. It proposed two types of conductivity, which manifest at different ranges of fractalization degrees. The mathematical predictions were found to be in line with the empirical data. MDPI 2022-04-06 /pmc/articles/PMC9003125/ /pubmed/35406361 http://dx.doi.org/10.3390/polym14071487 Text en © 2022 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Dumbravă, Oana
Popovici, Dumitru
Vasincu, Decebal
Popa, Ovidiu
Ochiuz, Lăcrămioara
Irimiciuc, Ștefan-Andrei
Agop, Maricel
Negură, Anca
Impact of the Liquid Crystal Order of Poly(azomethine-sulfone)s on the Semiconducting Properties
title Impact of the Liquid Crystal Order of Poly(azomethine-sulfone)s on the Semiconducting Properties
title_full Impact of the Liquid Crystal Order of Poly(azomethine-sulfone)s on the Semiconducting Properties
title_fullStr Impact of the Liquid Crystal Order of Poly(azomethine-sulfone)s on the Semiconducting Properties
title_full_unstemmed Impact of the Liquid Crystal Order of Poly(azomethine-sulfone)s on the Semiconducting Properties
title_short Impact of the Liquid Crystal Order of Poly(azomethine-sulfone)s on the Semiconducting Properties
title_sort impact of the liquid crystal order of poly(azomethine-sulfone)s on the semiconducting properties
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9003125/
https://www.ncbi.nlm.nih.gov/pubmed/35406361
http://dx.doi.org/10.3390/polym14071487
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