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Probing cellulose hydrogel dehydration with Brillouin spectroscopy: Insights into mechanical properties

Publikation: Beitrag in einer FachzeitschriftArtikelBegutachtung

Abstract

Hydrogels are three-dimensional networks of hydrophilic polymers that retain large amounts of water and can be tailored for medicine, agriculture, electronics, and cosmetics. Their softness and tunable density complicate contact-based mechanical testing. Here, we explore themechanics of a cellulose-based hydrogel using Brillouin light scattering (BLS) spectroscopy, a non-contact optical probe. We study microfibrillated cellulose hydrogels prepared via two drying routes—a dense, ambient-dried film and a foam-like, freeze-dried aerogel—precharacterized by tensile testing. BLS is then used to extract longitudinal sound velocity and stiffness in three scattering geometries: reflectivebackscattering 180a and 90r and transmissive 90a. As expected, the structural arrangement imposed by drying (i.e., material density) dominates the stiffness, resulting in a stiffness of 3 GPa for the aerogel and 19 GPa for the hydrogel film. We further track moisture effects bychanging the relative humidity (RH) level (40% RH and 75% RH), which leads to a decrease in frequency shift and a broadening of theBrillouin peaks with increasing RH, and a drop in stiffness by factor two. Time-resolved BLS tracks dehydration kinetics: fully wettingthe hydrogel film and merely changing RH produce different Brillouin frequency shift dynamics. These results explore BLS as non-contactmethod for in situ measurement of mechanical properties during conditioning, with further potential applications during processing of technologically relevant soft and polymeric materials.
Originalspracheenglisch
Aufsatznummer021903
FachzeitschriftApplied Physics Letters
Jahrgang128
Ausgabenummer2
DOIs
PublikationsstatusVeröffentlicht - 12 Jan. 2026

ASJC Scopus subject areas

  • Physik und Astronomie (sonstige)

Fields of Expertise

  • Advanced Materials Science

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