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

M Mónica G. Simões (AlmaScience Colab, Madan Parque 1 , 2825-182 Caparica,) M Manfred H. Ulz (Institute of Strength of Materials, Graz University of Technology 2 , Kopernikusgasse 24, 8010 Graz,) B Bruno B. Ravanello (AlmaScience Colab, Madan Parque 1 , 2825-182 Caparica,) K Kareem Elsayad (Division of Anatomy, Center for Anatomy and Cell Biology, Medical University of Vienna 3 , Währinger Straße 13, 1090 Vienna,) U Ulrich Hirn (Institute of Bioproducts and Paper Technology, Graz University of Technology 4 , Inffeldgasse 23, 8010 Graz,) K Kristie J. Koski (Department of Chemistry, University of California, Davis, 1 Shields Avenue, Davis, California 95616, United States) C Caterina Czibula (Institute of Bioproducts and Paper Technology, Graz University of Technology 4 , Inffeldgasse 23, 8010 Graz,)

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 the mechanics of a cellulose-based hydrogel using Brillouin light scattering (BLS) spectroscopy, a non-contact optical probe. We study micro-fibrillated cellulose hydrogels prepared via two drying routes—a dense, ambient-dried film and a foam-like, freeze-dried aerogel—pre-characterized by tensile testing. BLS is then used to extract longitudinal sound velocity and stiffness in three scattering geometries: reflective backscattering 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 by changing the relative humidity (RH) level (40% RH and 75% RH), which leads to a decrease in frequency shift and a broadening of the Brillouin peaks with increasing RH, and a drop in stiffness by factor two. Time-resolved BLS tracks dehydration kinetics: fully wetting the hydrogel film and merely changing RH produce different Brillouin frequency shift dynamics. These results explore BLS as non-contact method for in situ measurement of mechanical properties during conditioning, with further potential applications during processing of technologically relevant soft and polymeric materials.

Article Details

Volume / Issue Vol. 128, Issue 2
Published January 12, 2026
ISSN 0003-6951
Publisher American Institute of Physics

Journal Info

Applied Physics Letters

American Institute of Physics

ISSN: 0003-6951 Physical Sciences

Authors (7)

M

Mónica G. Simões

AlmaScience Colab, Madan Parque 1 , 2825-182 Caparica,

M

Manfred H. Ulz

Institute of Strength of Materials, Graz University of Technology 2 , Kopernikusgasse 24, 8010 Graz,

B

Bruno B. Ravanello

AlmaScience Colab, Madan Parque 1 , 2825-182 Caparica,

K

Kareem Elsayad

Division of Anatomy, Center for Anatomy and Cell Biology, Medical University of Vienna 3 , Währinger Straße 13, 1090 Vienna,

U

Ulrich Hirn

Institute of Bioproducts and Paper Technology, Graz University of Technology 4 , Inffeldgasse 23, 8010 Graz,

K

Kristie J. Koski

Department of Chemistry, University of California, Davis, 1 Shields Avenue, Davis, California 95616, United States

C

Caterina Czibula

Institute of Bioproducts and Paper Technology, Graz University of Technology 4 , Inffeldgasse 23, 8010 Graz,