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Nanoscale Chemical Features of the Natural Fibrous Material Wood
Author(s) -
Claudia Gusenbauer,
Devon S. Jakob,
Xiaoji G. Xu,
Dmitri Vezenov,
Étienne Cabane,
Johannes Konnerth
Publication year - 2020
Publication title -
biomacromolecules
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 1.689
H-Index - 220
eISSN - 1526-4602
pISSN - 1525-7797
DOI - 10.1021/acs.biomac.0c01028
Subject(s) - nanoscopic scale , chemical imaging , cellulose , infrared , chemical species , materials science , nanotechnology , adhesion , force spectroscopy , infrared spectroscopy , chemical force microscopy , microscopy , chemical modification , atomic force microscopy , composite material , chemistry , hyperspectral imaging , optics , polymer chemistry , conductive atomic force microscopy , organic chemistry , non contact atomic force microscopy , remote sensing , physics , geology
Peak force infrared (PFIR) microscopy is a recently developed approach to acquire multiple chemical and physical material properties simultaneously and with nanometer resolution: topographical features, infrared (IR)-sensitive maps, adhesion, stiffness, and locally resolved IR spectra. This multifunctional mapping is enabled by the ability of an atomic force microscope tip in the peak force tapping mode to detect photothermal expansion of the sample. We report the use of the PFIR to characterize the chemical modification of bio-based native and intact wooden matrices, which has evolved into an increasingly active research field. The distribution of functional groups of wood cellulose aggregates, either in native or carboxylated states, was detected with a remarkable spatial resolution of 16 nm. Furthermore, mechanical and chemical maps of the distinct cell wall layers were obtained on polymerized wooden matrices to localize the exact position of the modified regions. These findings shall support the development and understanding of functionalized wood materials.

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