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Anticancer Agents as Design Archetypes: Insights into the Structure–Property Relationships of Ionic Liquids with a Triarylmethyl Moiety

[Image: see text] A fundamental challenge underlying the design principles of ionic liquids (ILs) entails a lack of understanding into how tailored properties arise from the molecular framework of the constituent ions. Herein, we present detailed analyses of novel functional ILs containing a triaryl...

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Autores principales: Anderson, Grace I., Hardy, David, Hillesheim, Patrick C., Wagle, Durgesh V., Zeller, Matthias, Baker, Gary A., Mirjafari, Arsalan
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2022
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9881241/
https://www.ncbi.nlm.nih.gov/pubmed/36718259
http://dx.doi.org/10.1021/acsphyschemau.2c00048
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author Anderson, Grace I.
Hardy, David
Hillesheim, Patrick C.
Wagle, Durgesh V.
Zeller, Matthias
Baker, Gary A.
Mirjafari, Arsalan
author_facet Anderson, Grace I.
Hardy, David
Hillesheim, Patrick C.
Wagle, Durgesh V.
Zeller, Matthias
Baker, Gary A.
Mirjafari, Arsalan
author_sort Anderson, Grace I.
collection PubMed
description [Image: see text] A fundamental challenge underlying the design principles of ionic liquids (ILs) entails a lack of understanding into how tailored properties arise from the molecular framework of the constituent ions. Herein, we present detailed analyses of novel functional ILs containing a triarylmethyl (trityl) motif. Combining an empirically driven molecular design, thermophysical analysis, X-ray crystallography, and computational modeling, we achieved an in-depth understanding of structure–property relationships, establishing a coherent correlation with distinct trends between the thermophysical properties and functional diversity of the compound library. We observe a coherent relationship between melting (T(m)) and glass transition (T(g)) temperatures and the location and type of chemical modification of the cation. Furthermore, there is an inverse correlation between the simulated dipole moment and the T(m)/T(g) of the salts. Specifically, chlorination of the ILs both reduces and reorients the dipole moment, a key property controlling intermolecular interactions, thus allowing for control over T(m)/T(g) values. The observed trends are particularly apparent when comparing the phase transitions and dipole moments, allowing for the development of predictive models. Ultimately, trends in structural features and characterized properties align with established studies in physicochemical relationships for ILs, underpinning the formation and stability of these new lipophilic, low-melting salts.
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spelling pubmed-98812412023-01-28 Anticancer Agents as Design Archetypes: Insights into the Structure–Property Relationships of Ionic Liquids with a Triarylmethyl Moiety Anderson, Grace I. Hardy, David Hillesheim, Patrick C. Wagle, Durgesh V. Zeller, Matthias Baker, Gary A. Mirjafari, Arsalan ACS Phys Chem Au [Image: see text] A fundamental challenge underlying the design principles of ionic liquids (ILs) entails a lack of understanding into how tailored properties arise from the molecular framework of the constituent ions. Herein, we present detailed analyses of novel functional ILs containing a triarylmethyl (trityl) motif. Combining an empirically driven molecular design, thermophysical analysis, X-ray crystallography, and computational modeling, we achieved an in-depth understanding of structure–property relationships, establishing a coherent correlation with distinct trends between the thermophysical properties and functional diversity of the compound library. We observe a coherent relationship between melting (T(m)) and glass transition (T(g)) temperatures and the location and type of chemical modification of the cation. Furthermore, there is an inverse correlation between the simulated dipole moment and the T(m)/T(g) of the salts. Specifically, chlorination of the ILs both reduces and reorients the dipole moment, a key property controlling intermolecular interactions, thus allowing for control over T(m)/T(g) values. The observed trends are particularly apparent when comparing the phase transitions and dipole moments, allowing for the development of predictive models. Ultimately, trends in structural features and characterized properties align with established studies in physicochemical relationships for ILs, underpinning the formation and stability of these new lipophilic, low-melting salts. American Chemical Society 2022-12-07 /pmc/articles/PMC9881241/ /pubmed/36718259 http://dx.doi.org/10.1021/acsphyschemau.2c00048 Text en © 2022 The Authors. Published by American Chemical Society https://creativecommons.org/licenses/by/4.0/Permits the broadest form of re-use including for commercial purposes, provided that author attribution and integrity are maintained (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Anderson, Grace I.
Hardy, David
Hillesheim, Patrick C.
Wagle, Durgesh V.
Zeller, Matthias
Baker, Gary A.
Mirjafari, Arsalan
Anticancer Agents as Design Archetypes: Insights into the Structure–Property Relationships of Ionic Liquids with a Triarylmethyl Moiety
title Anticancer Agents as Design Archetypes: Insights into the Structure–Property Relationships of Ionic Liquids with a Triarylmethyl Moiety
title_full Anticancer Agents as Design Archetypes: Insights into the Structure–Property Relationships of Ionic Liquids with a Triarylmethyl Moiety
title_fullStr Anticancer Agents as Design Archetypes: Insights into the Structure–Property Relationships of Ionic Liquids with a Triarylmethyl Moiety
title_full_unstemmed Anticancer Agents as Design Archetypes: Insights into the Structure–Property Relationships of Ionic Liquids with a Triarylmethyl Moiety
title_short Anticancer Agents as Design Archetypes: Insights into the Structure–Property Relationships of Ionic Liquids with a Triarylmethyl Moiety
title_sort anticancer agents as design archetypes: insights into the structure–property relationships of ionic liquids with a triarylmethyl moiety
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9881241/
https://www.ncbi.nlm.nih.gov/pubmed/36718259
http://dx.doi.org/10.1021/acsphyschemau.2c00048
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