Projects per year
Abstract
Understanding nanoscale moisture interactions is fundamental to most applications of wood, including cellulosic nanomaterials with tailored properties. By combining X-ray scattering experiments with molecular simulations and taking advantage of computed scattering, we studied the moisture-induced changes in cellulose microfibril bundles of softwood secondary cell walls. Our models reproduced the most important experimentally observed changes in diffraction peak locations and widths and gave new insights into their interpretation. We found that changes in the packing of microfibrils dominate at moisture contents above 10–15 whereas deformations in cellulose crystallites take place closer to the dry state. Fibrillar aggregation is a significant source of drying-related changes in the interior of the microfibrils. Our results corroborate the fundamental role of nanoscale phenomena in the swelling behavior and properties of wood-based materials and promote their utilization in nanomaterials development. Simulation-assisted scattering analysis proved an efficient tool for advancing the nanoscale characterization of cellulosic materials.
Original language | English |
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Pages (from-to) | 5143-5150 |
Journal | Nano Letters |
Volume | 22 |
Issue number | 13 |
Early online date | 29 Jun 2022 |
DOIs | |
Publication status | Published - 13 Jul 2022 |
MoE publication type | A1 Journal article-refereed |
Fingerprint
Dive into the research topics of 'Nanoscale Mechanism of Moisture-Induced Swelling in Wood Microfibril Bundles'. Together they form a unique fingerprint.Datasets
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X-ray scattering data from Norway spruce at different moisture conditions
Penttilä, P. (Creator) & Zitting, A. (Creator), 28 Jun 2022
Dataset
Projects
- 3 Finished
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Understanding the moisture behaviour of wood in nanoscale
01/09/2018 → 31/08/2021
Project: Academy of Finland: Other research funding
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CERES: Competence Center for the materials Bioeconomy: A Flagship for our Sustainable Future
01/05/2018 → 31/12/2022
Project: Academy of Finland: Other research funding
Equipment
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Bioeconomy Research Infrastructure
Jukka Seppälä (Manager)
School of Chemical TechnologyFacility/equipment: Facility
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Press / Media
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A powerful combination to explain nanoscale wood-water interactions
Paavo Penttilä & Antti Paajanen
11/04/2022
1 Media contribution
Press/Media: Media appearance
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