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Updated: Jan 31, 2026

Interfacial Molecular-level Structures of Polymers and Biomacromolecules Revealed via Sum Frequency Generation Vibrational Spectroscopy
Published on: August 13, 2019
Interfacial fluid transport is a key to hydrogel bioadhesion
Raphaël Michel1,2, Léna Poirier3, Quentin van Poelvoorde3
1Ecole Supérieure de Physique et Chimie Industrielle de la Ville de Paris (ESPCI Paris), Paris Sciences et Lettres Research University, Laboratoire Matière Molle et Chimie, CNRS UMR 7167, 75005 Paris, France; r.michel3@hotmail.fr laurent.corte@mines-paristech.fr.
Fluid transport at hydrogel-tissue interfaces is crucial for biomedical device adhesion. Controlling this fluid flow transitions adhesion from a lubricated state to a strongly bonded, dehydrated state, enhancing device performance.
Area of Science:
- Biomaterials Science
- Tissue Engineering
- Adhesion Science
Background:
- Attaching hydrogels to soft internal tissues is essential for biomedical devices.
- The wet nature of hydrogels and tissues presents significant challenges for achieving and controlling adhesion.
Purpose of the Study:
- To investigate the role of fluid transport across hydrogel-tissue interfaces in determining adhesion strength.
- To understand the transition between different adhesion regimes based on interfacial fluid dynamics.
Main Methods:
- Ex vivo peeling experiments on porcine liver using model hydrogel membranes.
- Systematic variation of contact time, tissue hydration, and hydrogel swelling ratio.
- In vivo experiments on actively hydrated tissues and evaluation of superabsorbent hydrogel meshes.
Main Results:
- Identified two distinct peeling regimes: lubricated (low adhesion energy) and adhesive (high adhesion energy).
- Demonstrated that interfacial fluid draining induces local tissue dehydration, promoting intrinsic adhesion.
- Validated a model based on tissue microanatomy and confirmed findings in vivo.
Conclusions:
- Interfacial fluid transport is a key determinant of hydrogel-tissue adhesion.
- Adhesion can be significantly enhanced by controlling fluid dynamics and inducing local tissue dehydration.
- Findings inform the design of improved bioadhesion tests and strategies for biomedical applications.
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