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Strong, Shape-Memory Lignocellulosic Aerogel via Wood Cell Wall Nanoscale Reassembly

[Image: see text] Polymer shape-memory aerogels (PSMAs) are prospects in various fields of application ranging from aerospace to biomedicine, as advanced thermal insulators, actuators, or sensors. However, the fabrication of PSMAs with good mechanical performance is challenging and is currently domi...

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Autores principales: Garemark, Jonas, Perea-Buceta, Jesús E., Felhofer, Martin, Chen, Bin, Cortes Ruiz, Maria F., Sapouna, Ioanna, Gierlinger, Notburga, Kilpeläinen, Ilkka Antero, Berglund, Lars A., Li, Yuanyuan
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2023
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10018770/
https://www.ncbi.nlm.nih.gov/pubmed/36716432
http://dx.doi.org/10.1021/acsnano.2c11220
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author Garemark, Jonas
Perea-Buceta, Jesús E.
Felhofer, Martin
Chen, Bin
Cortes Ruiz, Maria F.
Sapouna, Ioanna
Gierlinger, Notburga
Kilpeläinen, Ilkka Antero
Berglund, Lars A.
Li, Yuanyuan
author_facet Garemark, Jonas
Perea-Buceta, Jesús E.
Felhofer, Martin
Chen, Bin
Cortes Ruiz, Maria F.
Sapouna, Ioanna
Gierlinger, Notburga
Kilpeläinen, Ilkka Antero
Berglund, Lars A.
Li, Yuanyuan
author_sort Garemark, Jonas
collection PubMed
description [Image: see text] Polymer shape-memory aerogels (PSMAs) are prospects in various fields of application ranging from aerospace to biomedicine, as advanced thermal insulators, actuators, or sensors. However, the fabrication of PSMAs with good mechanical performance is challenging and is currently dominated by fossil-based polymers. In this work, strong, shape-memory bio-aerogels with high specific surface areas (up to 220 m(2)/g) and low radial thermal conductivity (0.042 W/mK) were prepared through a one-step treatment of native wood using an ionic liquid mixture of [MTBD](+)[MMP](−)/DMSO. The aerogel showed similar chemical composition similar to native wood. Nanoscale spatial rearrangement of wood biopolymers in the cell wall and lumen was achieved, resulting in flexible hydrogels, offering design freedom for subsequent aerogels with intricate geometries. Shape-memory function under stimuli of water was reported. The chemical composition and distribution, morphology, and mechanical performance of the aerogel were carefully studied using confocal Raman spectroscopy, AFM, SAXS/WAXS, NMR, digital image correlation, etc. With its simplicity, sustainability, and the broad range of applicability, the methodology developed for nanoscale reassembly of wood is an advancement for the design of biobased shape-memory aerogels.
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spelling pubmed-100187702023-03-17 Strong, Shape-Memory Lignocellulosic Aerogel via Wood Cell Wall Nanoscale Reassembly Garemark, Jonas Perea-Buceta, Jesús E. Felhofer, Martin Chen, Bin Cortes Ruiz, Maria F. Sapouna, Ioanna Gierlinger, Notburga Kilpeläinen, Ilkka Antero Berglund, Lars A. Li, Yuanyuan ACS Nano [Image: see text] Polymer shape-memory aerogels (PSMAs) are prospects in various fields of application ranging from aerospace to biomedicine, as advanced thermal insulators, actuators, or sensors. However, the fabrication of PSMAs with good mechanical performance is challenging and is currently dominated by fossil-based polymers. In this work, strong, shape-memory bio-aerogels with high specific surface areas (up to 220 m(2)/g) and low radial thermal conductivity (0.042 W/mK) were prepared through a one-step treatment of native wood using an ionic liquid mixture of [MTBD](+)[MMP](−)/DMSO. The aerogel showed similar chemical composition similar to native wood. Nanoscale spatial rearrangement of wood biopolymers in the cell wall and lumen was achieved, resulting in flexible hydrogels, offering design freedom for subsequent aerogels with intricate geometries. Shape-memory function under stimuli of water was reported. The chemical composition and distribution, morphology, and mechanical performance of the aerogel were carefully studied using confocal Raman spectroscopy, AFM, SAXS/WAXS, NMR, digital image correlation, etc. With its simplicity, sustainability, and the broad range of applicability, the methodology developed for nanoscale reassembly of wood is an advancement for the design of biobased shape-memory aerogels. American Chemical Society 2023-01-30 /pmc/articles/PMC10018770/ /pubmed/36716432 http://dx.doi.org/10.1021/acsnano.2c11220 Text en © 2023 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 Garemark, Jonas
Perea-Buceta, Jesús E.
Felhofer, Martin
Chen, Bin
Cortes Ruiz, Maria F.
Sapouna, Ioanna
Gierlinger, Notburga
Kilpeläinen, Ilkka Antero
Berglund, Lars A.
Li, Yuanyuan
Strong, Shape-Memory Lignocellulosic Aerogel via Wood Cell Wall Nanoscale Reassembly
title Strong, Shape-Memory Lignocellulosic Aerogel via Wood Cell Wall Nanoscale Reassembly
title_full Strong, Shape-Memory Lignocellulosic Aerogel via Wood Cell Wall Nanoscale Reassembly
title_fullStr Strong, Shape-Memory Lignocellulosic Aerogel via Wood Cell Wall Nanoscale Reassembly
title_full_unstemmed Strong, Shape-Memory Lignocellulosic Aerogel via Wood Cell Wall Nanoscale Reassembly
title_short Strong, Shape-Memory Lignocellulosic Aerogel via Wood Cell Wall Nanoscale Reassembly
title_sort strong, shape-memory lignocellulosic aerogel via wood cell wall nanoscale reassembly
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10018770/
https://www.ncbi.nlm.nih.gov/pubmed/36716432
http://dx.doi.org/10.1021/acsnano.2c11220
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