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Updated: Apr 24, 2026

High-Resolution Neutron Spectroscopy to Study Picosecond-Nanosecond Dynamics of Proteins and Hydration Water
Published on: April 28, 2022
Time-resolved neutron computed tomography of hydration kinetics in nanoprimed seeds using chitosan-stabilized iron
Nurfarwizah Adzuan Hafiz1, Mohamed Syazwan Osman1, Mohamad Sufian So'aib1
1EMZI-UiTM Nanoparticles Colloids & Interface Industrial Research Laboratory (NANO-CORE), Faculty of Chemical Engineering, Universiti Teknologi MARA, Cawangan Pulau Pinang, Permatang Pauh Campus, Permatang Pauh, Pulau Pinang, 13500, Malaysia.
Abstract:
Neutron computed tomography (NCT) was employed to non-invasively monitor hydration kinetics in Lactuca sativa seeds subjected to nanopriming with chitosan-stabilized iron oxide nanoparticles (CS-FeNPs). Integrating a nanomaterial-based seed treatment with radiation imaging, this study demonstrates a novel application of neutron techniques for visualizing dynamic biointerfaces. Exploiting the strong neutron attenuation by hydrogen, NCT enabled time-resolved visualization of internal water transport during 120 h of germination, achieving ∼60 μm spatial resolution sufficient to capture tissue-level hydration dynamics. Seeds primed with CS-FeNPs exhibited accelerated and more homogeneous hydration, with attenuation intensities approaching 5.5 a. u. by 120 h compared to weaker, spatially restricted profiles in FeNP-primed seeds. These hydration maps corresponded to earlier radicle emergence and >95% germination success, suggesting that chitosan coating enhances water mobility through electrosteric stabilization of nanoparticles. NCT provided direct, spatially resolved evidence that CS-FeNP priming altered internal water distribution during germination, even though the nanoparticles themselves were not directly visualized. Overall, this work establishes NCT as a quantitative, non-destructive tool for dynamic water imaging in biological systems, highlighting its potential for investigating radiation-material-biological interactions where hydrogen-sensitive contrast is critical.

