Authors
Fengze Sun, Wenjuan Zhao, Yujing Tan, Kaiwen Chen, Yi Kong, Hui Peng, Zhu Li, Jiali Jiang, Tianyi Zhan, Chi Zhang, Jianxiong Lyu
Published in
Biomacromolecules. Volume 27. Issue 9. Pages 6199-6213. Sep 14, 2026.
Abstract
Mechanical loading coupled with moisture sorption causes mechano-sorptive creep in wood, but its molecular origin remains unclear. Here, DMA, in situ tensile FTIR, SAXS/WAXS, and MD/GCMC simulations were combined to examine molecular and nanostructural changes in wood cell walls during sorption under tensile stress. Adsorption under stress produced a higher moisture content than stress-free adsorption, whereas viscoelastic creep at constant relative humidity caused no additional uptake. The enhancement was most evident when the loading was approximately parallel to cellulose microfibrils. FTIR revealed changes in cellulose hydroxyl environments consistent with increased accessibility, while SAXS/WAXS showed enlarged interfibrillar distances with nearly unchanged crystalline lattice spacings. Simulations further indicated reduced polymer-polymer hydrogen bonding, greater solvent-accessible surface area, and pore opening during simultaneous adsorption and loading. Together, these findings link tensile-stress-induced cellulose hydroxyl accessibility to enhanced moisture sorption in the wood cell walls.
PMID:
42734284
Bibliographic data and abstract were imported from PubMed on 14 Sep 2026.
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