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Recent Advances in Electro-Optic Response of Polymer-Stabilized Cholesteric Liquid Crystals

Cholesteric liquid crystals (CLC) are molecules that can self-assemble into helicoidal superstructures exhibiting circularly polarized reflection. The facile self-assembly and resulting optical properties makes CLCs a promising technology for an array of industrial applications, including reflective...

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Autores principales: Lee, Kyung Min, Marsh, Zachary M., Crenshaw, Ecklin P., Tohgha, Urice N., Ambulo, Cedric P., Wolf, Steven M., Carothers, Kyle J., Limburg, Hannah N., McConney, Michael E., Godman, Nicholas P.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10053326/
https://www.ncbi.nlm.nih.gov/pubmed/36984126
http://dx.doi.org/10.3390/ma16062248
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author Lee, Kyung Min
Marsh, Zachary M.
Crenshaw, Ecklin P.
Tohgha, Urice N.
Ambulo, Cedric P.
Wolf, Steven M.
Carothers, Kyle J.
Limburg, Hannah N.
McConney, Michael E.
Godman, Nicholas P.
author_facet Lee, Kyung Min
Marsh, Zachary M.
Crenshaw, Ecklin P.
Tohgha, Urice N.
Ambulo, Cedric P.
Wolf, Steven M.
Carothers, Kyle J.
Limburg, Hannah N.
McConney, Michael E.
Godman, Nicholas P.
author_sort Lee, Kyung Min
collection PubMed
description Cholesteric liquid crystals (CLC) are molecules that can self-assemble into helicoidal superstructures exhibiting circularly polarized reflection. The facile self-assembly and resulting optical properties makes CLCs a promising technology for an array of industrial applications, including reflective displays, tunable mirror-less lasers, optical storage, tunable color filters, and smart windows. The helicoidal structure of CLC can be stabilized via in situ photopolymerization of liquid crystal monomers in a CLC mixture, resulting in polymer-stabilized CLCs (PSCLCs). PSCLCs exhibit a dynamic optical response that can be induced by external stimuli, including electric fields, heat, and light. In this review, we discuss the electro-optic response and potential mechanism of PSCLCs reported over the past decade. Multiple electro-optic responses in PSCLCs with negative or positive dielectric anisotropy have been identified, including bandwidth broadening, red and blue tuning, and switching the reflection notch when an electric field is applied. The reconfigurable optical response of PSCLCs with positive dielectric anisotropy is also discussed. That is, red tuning (or broadening) by applying a DC field and switching by applying an AC field were both observed for the first time in a PSCLC sample. Finally, we discuss the potential mechanism for the dynamic response in PSCLCs.
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spelling pubmed-100533262023-03-30 Recent Advances in Electro-Optic Response of Polymer-Stabilized Cholesteric Liquid Crystals Lee, Kyung Min Marsh, Zachary M. Crenshaw, Ecklin P. Tohgha, Urice N. Ambulo, Cedric P. Wolf, Steven M. Carothers, Kyle J. Limburg, Hannah N. McConney, Michael E. Godman, Nicholas P. Materials (Basel) Review Cholesteric liquid crystals (CLC) are molecules that can self-assemble into helicoidal superstructures exhibiting circularly polarized reflection. The facile self-assembly and resulting optical properties makes CLCs a promising technology for an array of industrial applications, including reflective displays, tunable mirror-less lasers, optical storage, tunable color filters, and smart windows. The helicoidal structure of CLC can be stabilized via in situ photopolymerization of liquid crystal monomers in a CLC mixture, resulting in polymer-stabilized CLCs (PSCLCs). PSCLCs exhibit a dynamic optical response that can be induced by external stimuli, including electric fields, heat, and light. In this review, we discuss the electro-optic response and potential mechanism of PSCLCs reported over the past decade. Multiple electro-optic responses in PSCLCs with negative or positive dielectric anisotropy have been identified, including bandwidth broadening, red and blue tuning, and switching the reflection notch when an electric field is applied. The reconfigurable optical response of PSCLCs with positive dielectric anisotropy is also discussed. That is, red tuning (or broadening) by applying a DC field and switching by applying an AC field were both observed for the first time in a PSCLC sample. Finally, we discuss the potential mechanism for the dynamic response in PSCLCs. MDPI 2023-03-10 /pmc/articles/PMC10053326/ /pubmed/36984126 http://dx.doi.org/10.3390/ma16062248 Text en © 2023 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 Review
Lee, Kyung Min
Marsh, Zachary M.
Crenshaw, Ecklin P.
Tohgha, Urice N.
Ambulo, Cedric P.
Wolf, Steven M.
Carothers, Kyle J.
Limburg, Hannah N.
McConney, Michael E.
Godman, Nicholas P.
Recent Advances in Electro-Optic Response of Polymer-Stabilized Cholesteric Liquid Crystals
title Recent Advances in Electro-Optic Response of Polymer-Stabilized Cholesteric Liquid Crystals
title_full Recent Advances in Electro-Optic Response of Polymer-Stabilized Cholesteric Liquid Crystals
title_fullStr Recent Advances in Electro-Optic Response of Polymer-Stabilized Cholesteric Liquid Crystals
title_full_unstemmed Recent Advances in Electro-Optic Response of Polymer-Stabilized Cholesteric Liquid Crystals
title_short Recent Advances in Electro-Optic Response of Polymer-Stabilized Cholesteric Liquid Crystals
title_sort recent advances in electro-optic response of polymer-stabilized cholesteric liquid crystals
topic Review
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10053326/
https://www.ncbi.nlm.nih.gov/pubmed/36984126
http://dx.doi.org/10.3390/ma16062248
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