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Converting non-Mesogenic to Mesogenic Stacking of Amino-s-Triazine-Based Dendrons with p-CN Phenyl Unit by Eliminating Peripheral Dipole

Three new amino-s-triazine-based dendrons, 1a, 1b, and 1c, containing an aryl-CN moiety in the dendritic skeleton were prepared in 72–81% yields (1a: R(1) = − N(n-C(8)H(17))(2), R(2) = n-OC(8)H(17), 1b: R(1) = R(2) = − N(n-C(8)H(17))(2), 1c: R(1) = − N(n-C(8)H(17))(2), R(2) = − N(n-C(4)H(9))(2)). De...

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Autores principales: Lu, Yao-Chih, Hsu, Yu-Tsz, Yang, Tsung-Yen, Liou, I-Chun, Wang, Sheng-Wei, Huang, Po-Chia, Lee, Jey-Jau, Lai, Long-Li, Hsu, Hsiu-Fu
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8782037/
https://www.ncbi.nlm.nih.gov/pubmed/35055204
http://dx.doi.org/10.3390/nano12020185
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author Lu, Yao-Chih
Hsu, Yu-Tsz
Yang, Tsung-Yen
Liou, I-Chun
Wang, Sheng-Wei
Huang, Po-Chia
Lee, Jey-Jau
Lai, Long-Li
Hsu, Hsiu-Fu
author_facet Lu, Yao-Chih
Hsu, Yu-Tsz
Yang, Tsung-Yen
Liou, I-Chun
Wang, Sheng-Wei
Huang, Po-Chia
Lee, Jey-Jau
Lai, Long-Li
Hsu, Hsiu-Fu
author_sort Lu, Yao-Chih
collection PubMed
description Three new amino-s-triazine-based dendrons, 1a, 1b, and 1c, containing an aryl-CN moiety in the dendritic skeleton were prepared in 72–81% yields (1a: R(1) = − N(n-C(8)H(17))(2), R(2) = n-OC(8)H(17), 1b: R(1) = R(2) = − N(n-C(8)H(17))(2), 1c: R(1) = − N(n-C(8)H(17))(2), R(2) = − N(n-C(4)H(9))(2)). Dendrons 1a with N(n-C(8)H(17))(2) and n-OC(8)H(17) peripheral substituents, surprisingly, did not show any mesogenic phase during the thermal process. However, non-mesogenic 1a can be converted to mesogenic 1b or 1c by eliminating the peripheral dipole arising from the alkoxy substituent; dendron 1b only comprising the same N(n-C(8)H(17))(2) peripheral groups showed a ~25 °C mesogenic range on heating and ~108 °C mesogenic range on cooling. In contrast, dendron 1c possessing different N(n-C(m)H(2m+1))(2) (m = 8 versus m = 4) peripheral units, having similar stacking as 1b, exhibited a columnar phase on thermal treatment, but its mesogenic range (~9 and ~66 °C on heating and cooling, respectively) was much narrower than that of 1b, attributed to 1c’s less flexible alkyl chains in the peripheral part of dendron. Dendron 1a with the alkoxy substituent in the peripheral skeleton, creating additional dipole correspondingly, thus, leads to the dendritic molecules having a non-mesogenic stacking. Without the peripheral dipole for intermolecular side-by-side interaction, dendrons 1b and 1c exhibit a columnar phase on thermal treatment because of the vibration from the peripheral alkyl chain.
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spelling pubmed-87820372022-01-22 Converting non-Mesogenic to Mesogenic Stacking of Amino-s-Triazine-Based Dendrons with p-CN Phenyl Unit by Eliminating Peripheral Dipole Lu, Yao-Chih Hsu, Yu-Tsz Yang, Tsung-Yen Liou, I-Chun Wang, Sheng-Wei Huang, Po-Chia Lee, Jey-Jau Lai, Long-Li Hsu, Hsiu-Fu Nanomaterials (Basel) Article Three new amino-s-triazine-based dendrons, 1a, 1b, and 1c, containing an aryl-CN moiety in the dendritic skeleton were prepared in 72–81% yields (1a: R(1) = − N(n-C(8)H(17))(2), R(2) = n-OC(8)H(17), 1b: R(1) = R(2) = − N(n-C(8)H(17))(2), 1c: R(1) = − N(n-C(8)H(17))(2), R(2) = − N(n-C(4)H(9))(2)). Dendrons 1a with N(n-C(8)H(17))(2) and n-OC(8)H(17) peripheral substituents, surprisingly, did not show any mesogenic phase during the thermal process. However, non-mesogenic 1a can be converted to mesogenic 1b or 1c by eliminating the peripheral dipole arising from the alkoxy substituent; dendron 1b only comprising the same N(n-C(8)H(17))(2) peripheral groups showed a ~25 °C mesogenic range on heating and ~108 °C mesogenic range on cooling. In contrast, dendron 1c possessing different N(n-C(m)H(2m+1))(2) (m = 8 versus m = 4) peripheral units, having similar stacking as 1b, exhibited a columnar phase on thermal treatment, but its mesogenic range (~9 and ~66 °C on heating and cooling, respectively) was much narrower than that of 1b, attributed to 1c’s less flexible alkyl chains in the peripheral part of dendron. Dendron 1a with the alkoxy substituent in the peripheral skeleton, creating additional dipole correspondingly, thus, leads to the dendritic molecules having a non-mesogenic stacking. Without the peripheral dipole for intermolecular side-by-side interaction, dendrons 1b and 1c exhibit a columnar phase on thermal treatment because of the vibration from the peripheral alkyl chain. MDPI 2022-01-06 /pmc/articles/PMC8782037/ /pubmed/35055204 http://dx.doi.org/10.3390/nano12020185 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
Lu, Yao-Chih
Hsu, Yu-Tsz
Yang, Tsung-Yen
Liou, I-Chun
Wang, Sheng-Wei
Huang, Po-Chia
Lee, Jey-Jau
Lai, Long-Li
Hsu, Hsiu-Fu
Converting non-Mesogenic to Mesogenic Stacking of Amino-s-Triazine-Based Dendrons with p-CN Phenyl Unit by Eliminating Peripheral Dipole
title Converting non-Mesogenic to Mesogenic Stacking of Amino-s-Triazine-Based Dendrons with p-CN Phenyl Unit by Eliminating Peripheral Dipole
title_full Converting non-Mesogenic to Mesogenic Stacking of Amino-s-Triazine-Based Dendrons with p-CN Phenyl Unit by Eliminating Peripheral Dipole
title_fullStr Converting non-Mesogenic to Mesogenic Stacking of Amino-s-Triazine-Based Dendrons with p-CN Phenyl Unit by Eliminating Peripheral Dipole
title_full_unstemmed Converting non-Mesogenic to Mesogenic Stacking of Amino-s-Triazine-Based Dendrons with p-CN Phenyl Unit by Eliminating Peripheral Dipole
title_short Converting non-Mesogenic to Mesogenic Stacking of Amino-s-Triazine-Based Dendrons with p-CN Phenyl Unit by Eliminating Peripheral Dipole
title_sort converting non-mesogenic to mesogenic stacking of amino-s-triazine-based dendrons with p-cn phenyl unit by eliminating peripheral dipole
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8782037/
https://www.ncbi.nlm.nih.gov/pubmed/35055204
http://dx.doi.org/10.3390/nano12020185
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