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Thickness control of 2D nanosheets assembled from precise side-chain giant molecules

The performance of 2D nanomaterials hinges on both the chemical compositions and the morphological structures across different length scales. Among all the three dimensions, thickness is the only one that falls into the nanometer scale and, to some extent, determines the intrinsic properties of 2D n...

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Autores principales: Feng, Fengfeng, Guo, Dong, Shao, Yu, Yan, Xiang, Yue, Kan, Pan, Zhipeng, Li, Xiangqian, Xiao, Dongcheng, Jin, Liang, Zhang, Wen-Bin, Liu, Hao
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8179583/
https://www.ncbi.nlm.nih.gov/pubmed/34163758
http://dx.doi.org/10.1039/d1sc00021g
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author Feng, Fengfeng
Guo, Dong
Shao, Yu
Yan, Xiang
Yue, Kan
Pan, Zhipeng
Li, Xiangqian
Xiao, Dongcheng
Jin, Liang
Zhang, Wen-Bin
Liu, Hao
author_facet Feng, Fengfeng
Guo, Dong
Shao, Yu
Yan, Xiang
Yue, Kan
Pan, Zhipeng
Li, Xiangqian
Xiao, Dongcheng
Jin, Liang
Zhang, Wen-Bin
Liu, Hao
author_sort Feng, Fengfeng
collection PubMed
description The performance of 2D nanomaterials hinges on both the chemical compositions and the morphological structures across different length scales. Among all the three dimensions, thickness is the only one that falls into the nanometer scale and, to some extent, determines the intrinsic properties of 2D nanomaterials. In this study, we report the preparation and precise thickness control of 2D nanosheets assembled from a library of monodispersed amphiphilic giant molecules composed of functional polyhedral oligomeric silsesquioxanes (POSSs) as the side groups. Solution self-assembly of such giant molecules resulted in 2D nanosheets with similar structural configurations, where a bilayer of hydrophobic isobutyl POSS (BPOSS) is sandwiched by two monolayers of hydrophilic POSS bearing carboxylic acid groups (APOSS). The thickness of the obtained nanosheets could be tuned through adjusting the chemical compositions of the pendant POSS cages. Intriguingly, we found that the thickness of the 2D nanosheets was not necessarily proportional to the contour length of the giant molecule nor the total number of POSS cages tethered to the main chain. Indeed, the number ratio of BPOSS to APOSS, rather than the exact number, played a deterministic role in the thickness control. To explain the unusual thickness dependence, we built up a structure model with an in-plane orientation of the giant molecules in the nanosheets, from which a formula was further deduced to semi-quantitatively describe the inverse relationship between the overall thickness and the number ratio of BPOSS to APOSS.
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spelling pubmed-81795832021-06-22 Thickness control of 2D nanosheets assembled from precise side-chain giant molecules Feng, Fengfeng Guo, Dong Shao, Yu Yan, Xiang Yue, Kan Pan, Zhipeng Li, Xiangqian Xiao, Dongcheng Jin, Liang Zhang, Wen-Bin Liu, Hao Chem Sci Chemistry The performance of 2D nanomaterials hinges on both the chemical compositions and the morphological structures across different length scales. Among all the three dimensions, thickness is the only one that falls into the nanometer scale and, to some extent, determines the intrinsic properties of 2D nanomaterials. In this study, we report the preparation and precise thickness control of 2D nanosheets assembled from a library of monodispersed amphiphilic giant molecules composed of functional polyhedral oligomeric silsesquioxanes (POSSs) as the side groups. Solution self-assembly of such giant molecules resulted in 2D nanosheets with similar structural configurations, where a bilayer of hydrophobic isobutyl POSS (BPOSS) is sandwiched by two monolayers of hydrophilic POSS bearing carboxylic acid groups (APOSS). The thickness of the obtained nanosheets could be tuned through adjusting the chemical compositions of the pendant POSS cages. Intriguingly, we found that the thickness of the 2D nanosheets was not necessarily proportional to the contour length of the giant molecule nor the total number of POSS cages tethered to the main chain. Indeed, the number ratio of BPOSS to APOSS, rather than the exact number, played a deterministic role in the thickness control. To explain the unusual thickness dependence, we built up a structure model with an in-plane orientation of the giant molecules in the nanosheets, from which a formula was further deduced to semi-quantitatively describe the inverse relationship between the overall thickness and the number ratio of BPOSS to APOSS. The Royal Society of Chemistry 2021-02-26 /pmc/articles/PMC8179583/ /pubmed/34163758 http://dx.doi.org/10.1039/d1sc00021g Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Feng, Fengfeng
Guo, Dong
Shao, Yu
Yan, Xiang
Yue, Kan
Pan, Zhipeng
Li, Xiangqian
Xiao, Dongcheng
Jin, Liang
Zhang, Wen-Bin
Liu, Hao
Thickness control of 2D nanosheets assembled from precise side-chain giant molecules
title Thickness control of 2D nanosheets assembled from precise side-chain giant molecules
title_full Thickness control of 2D nanosheets assembled from precise side-chain giant molecules
title_fullStr Thickness control of 2D nanosheets assembled from precise side-chain giant molecules
title_full_unstemmed Thickness control of 2D nanosheets assembled from precise side-chain giant molecules
title_short Thickness control of 2D nanosheets assembled from precise side-chain giant molecules
title_sort thickness control of 2d nanosheets assembled from precise side-chain giant molecules
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8179583/
https://www.ncbi.nlm.nih.gov/pubmed/34163758
http://dx.doi.org/10.1039/d1sc00021g
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