Microporous, Self-Segregated, Graphenal Polymer Nanosheets Prepared by Dehydrogenative Condensation of Aza-PAHs Building Blocks in the Solid State

© 2017 American Chemical Society. A class of porous organic polymers (POPs), which are constructed by aryl-aryl linkages, has the wholly conjugated organic frameworks that can post-transform into two-dimensional graphenal polymers by the intramolecular dehydrogenation. However, typical examples are...

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Main Authors: Fuyu Yuan, Juan Li, Supawadee Namuangruk, Nawee Kungwan, Jia Guo, Changchun Wang
Format: Journal
Published: 2018
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http://cmuir.cmu.ac.th/jspui/handle/6653943832/56919
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spelling th-cmuir.6653943832-569192018-09-05T03:42:52Z Microporous, Self-Segregated, Graphenal Polymer Nanosheets Prepared by Dehydrogenative Condensation of Aza-PAHs Building Blocks in the Solid State Fuyu Yuan Juan Li Supawadee Namuangruk Nawee Kungwan Jia Guo Changchun Wang Chemical Engineering Chemistry Materials Science © 2017 American Chemical Society. A class of porous organic polymers (POPs), which are constructed by aryl-aryl linkages, has the wholly conjugated organic frameworks that can post-transform into two-dimensional graphenal polymers by the intramolecular dehydrogenation. However, typical examples are difficultly defined on the molecular sizes, numbers, and distributions of graphene subunits within the networks, thereby giving rise to uncertainty in applications. Here we report a dehydrogenation fusion of polycyclic aromatic hydrocarbons (PAHs) into graphenal polymers under solvent-free and ionothermal conditions, by which 5,6,11,12,17,18-hexaazatrinaphthylene (HATNA) is linked on itself to expand along the coplanar direction. During the reaction, the catalyst AlCl3solids turn into the molten media to homogenize the reaction system, and alter the molecular configuration and reactivity of HATNA units, resulting in the formation of self-segregated nanosheets with the neighboring layers of the weakened π-π interaction. Besides, the obtained framework exhibits the intrinsic microporosity and exceptionally high surface area. We demonstrate that they can well perform on anhydrous proton conduction and catalytic cycloaddition of CO2with epoxides. Therefore, this bottom-up strategy may constitute a step toward realizing innovative applications of POPs based on commercially available PAHs. 2018-09-05T03:31:56Z 2018-09-05T03:31:56Z 2017-05-09 Journal 15205002 08974756 2-s2.0-85019146354 10.1021/acs.chemmater.7b00353 https://www.scopus.com/inward/record.uri?partnerID=HzOxMe3b&scp=85019146354&origin=inward http://cmuir.cmu.ac.th/jspui/handle/6653943832/56919
institution Chiang Mai University
building Chiang Mai University Library
country Thailand
collection CMU Intellectual Repository
topic Chemical Engineering
Chemistry
Materials Science
spellingShingle Chemical Engineering
Chemistry
Materials Science
Fuyu Yuan
Juan Li
Supawadee Namuangruk
Nawee Kungwan
Jia Guo
Changchun Wang
Microporous, Self-Segregated, Graphenal Polymer Nanosheets Prepared by Dehydrogenative Condensation of Aza-PAHs Building Blocks in the Solid State
description © 2017 American Chemical Society. A class of porous organic polymers (POPs), which are constructed by aryl-aryl linkages, has the wholly conjugated organic frameworks that can post-transform into two-dimensional graphenal polymers by the intramolecular dehydrogenation. However, typical examples are difficultly defined on the molecular sizes, numbers, and distributions of graphene subunits within the networks, thereby giving rise to uncertainty in applications. Here we report a dehydrogenation fusion of polycyclic aromatic hydrocarbons (PAHs) into graphenal polymers under solvent-free and ionothermal conditions, by which 5,6,11,12,17,18-hexaazatrinaphthylene (HATNA) is linked on itself to expand along the coplanar direction. During the reaction, the catalyst AlCl3solids turn into the molten media to homogenize the reaction system, and alter the molecular configuration and reactivity of HATNA units, resulting in the formation of self-segregated nanosheets with the neighboring layers of the weakened π-π interaction. Besides, the obtained framework exhibits the intrinsic microporosity and exceptionally high surface area. We demonstrate that they can well perform on anhydrous proton conduction and catalytic cycloaddition of CO2with epoxides. Therefore, this bottom-up strategy may constitute a step toward realizing innovative applications of POPs based on commercially available PAHs.
format Journal
author Fuyu Yuan
Juan Li
Supawadee Namuangruk
Nawee Kungwan
Jia Guo
Changchun Wang
author_facet Fuyu Yuan
Juan Li
Supawadee Namuangruk
Nawee Kungwan
Jia Guo
Changchun Wang
author_sort Fuyu Yuan
title Microporous, Self-Segregated, Graphenal Polymer Nanosheets Prepared by Dehydrogenative Condensation of Aza-PAHs Building Blocks in the Solid State
title_short Microporous, Self-Segregated, Graphenal Polymer Nanosheets Prepared by Dehydrogenative Condensation of Aza-PAHs Building Blocks in the Solid State
title_full Microporous, Self-Segregated, Graphenal Polymer Nanosheets Prepared by Dehydrogenative Condensation of Aza-PAHs Building Blocks in the Solid State
title_fullStr Microporous, Self-Segregated, Graphenal Polymer Nanosheets Prepared by Dehydrogenative Condensation of Aza-PAHs Building Blocks in the Solid State
title_full_unstemmed Microporous, Self-Segregated, Graphenal Polymer Nanosheets Prepared by Dehydrogenative Condensation of Aza-PAHs Building Blocks in the Solid State
title_sort microporous, self-segregated, graphenal polymer nanosheets prepared by dehydrogenative condensation of aza-pahs building blocks in the solid state
publishDate 2018
url https://www.scopus.com/inward/record.uri?partnerID=HzOxMe3b&scp=85019146354&origin=inward
http://cmuir.cmu.ac.th/jspui/handle/6653943832/56919
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