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Pathway complexity in fibre assembly: from liquid crystals to hyper-helical gelmorphs

Pathway complexity results in unique materials from the same components according to the assembly conditions. Here a chiral acyl-semicarbazide gelator forms three different gels of contrasting fibre morphology (termed ‘gelmorphs’) as well as lyotropic liquid crystalline droplets depending on the ass...

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Autores principales: Contreras-Montoya, Rafael, Smith, James P., Boothroyd, Stephen C., Aguilar, Juan A., Mirzamani, Marzieh, Screen, Martin A., Yufit, Dmitry S., Robertson, Mark, He, Lilin, Qian, Shuo, Kumari, Harshita, Steed, Jonathan W.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10599479/
https://www.ncbi.nlm.nih.gov/pubmed/37886106
http://dx.doi.org/10.1039/d3sc03841f
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author Contreras-Montoya, Rafael
Smith, James P.
Boothroyd, Stephen C.
Aguilar, Juan A.
Mirzamani, Marzieh
Screen, Martin A.
Yufit, Dmitry S.
Robertson, Mark
He, Lilin
Qian, Shuo
Kumari, Harshita
Steed, Jonathan W.
author_facet Contreras-Montoya, Rafael
Smith, James P.
Boothroyd, Stephen C.
Aguilar, Juan A.
Mirzamani, Marzieh
Screen, Martin A.
Yufit, Dmitry S.
Robertson, Mark
He, Lilin
Qian, Shuo
Kumari, Harshita
Steed, Jonathan W.
author_sort Contreras-Montoya, Rafael
collection PubMed
description Pathway complexity results in unique materials from the same components according to the assembly conditions. Here a chiral acyl-semicarbazide gelator forms three different gels of contrasting fibre morphology (termed ‘gelmorphs’) as well as lyotropic liquid crystalline droplets depending on the assembly pathway. The gels have morphologies that are either hyperhelical (HH-Gel), tape-fibre (TF-Gel) or thin fibril derived from the liquid crystalline phase (LC-Gels) and exhibit very different rheological properties. The gelator exists as three slowly interconverting conformers in solution. All three gels are comprised of an unsymmetrical, intramolecular hydrogen bonded conformer. The kinetics show that formation of the remarkable HH-Gel is cooperative and is postulated to involve association of the growing fibril with a non-gelling conformer. This single molecule dynamic conformational library shows how very different materials with different morphology and hence very contrasting materials properties can arise from pathway complexity as a result of emergent interactions during the assembly process.
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spelling pubmed-105994792023-10-26 Pathway complexity in fibre assembly: from liquid crystals to hyper-helical gelmorphs Contreras-Montoya, Rafael Smith, James P. Boothroyd, Stephen C. Aguilar, Juan A. Mirzamani, Marzieh Screen, Martin A. Yufit, Dmitry S. Robertson, Mark He, Lilin Qian, Shuo Kumari, Harshita Steed, Jonathan W. Chem Sci Chemistry Pathway complexity results in unique materials from the same components according to the assembly conditions. Here a chiral acyl-semicarbazide gelator forms three different gels of contrasting fibre morphology (termed ‘gelmorphs’) as well as lyotropic liquid crystalline droplets depending on the assembly pathway. The gels have morphologies that are either hyperhelical (HH-Gel), tape-fibre (TF-Gel) or thin fibril derived from the liquid crystalline phase (LC-Gels) and exhibit very different rheological properties. The gelator exists as three slowly interconverting conformers in solution. All three gels are comprised of an unsymmetrical, intramolecular hydrogen bonded conformer. The kinetics show that formation of the remarkable HH-Gel is cooperative and is postulated to involve association of the growing fibril with a non-gelling conformer. This single molecule dynamic conformational library shows how very different materials with different morphology and hence very contrasting materials properties can arise from pathway complexity as a result of emergent interactions during the assembly process. The Royal Society of Chemistry 2023-09-26 /pmc/articles/PMC10599479/ /pubmed/37886106 http://dx.doi.org/10.1039/d3sc03841f Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by/3.0/
spellingShingle Chemistry
Contreras-Montoya, Rafael
Smith, James P.
Boothroyd, Stephen C.
Aguilar, Juan A.
Mirzamani, Marzieh
Screen, Martin A.
Yufit, Dmitry S.
Robertson, Mark
He, Lilin
Qian, Shuo
Kumari, Harshita
Steed, Jonathan W.
Pathway complexity in fibre assembly: from liquid crystals to hyper-helical gelmorphs
title Pathway complexity in fibre assembly: from liquid crystals to hyper-helical gelmorphs
title_full Pathway complexity in fibre assembly: from liquid crystals to hyper-helical gelmorphs
title_fullStr Pathway complexity in fibre assembly: from liquid crystals to hyper-helical gelmorphs
title_full_unstemmed Pathway complexity in fibre assembly: from liquid crystals to hyper-helical gelmorphs
title_short Pathway complexity in fibre assembly: from liquid crystals to hyper-helical gelmorphs
title_sort pathway complexity in fibre assembly: from liquid crystals to hyper-helical gelmorphs
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10599479/
https://www.ncbi.nlm.nih.gov/pubmed/37886106
http://dx.doi.org/10.1039/d3sc03841f
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