Transient osmotic flows in a microfluidic channel: measurements of solute permeability and reflection coefficients of hydrogel membranes

Abstract

We first highlight theoretically a microfluidic configuration that allows to measure two fundamental parameters describing mass transport through a membrane: the solute permeability coefficient LD, and the associated reflection coefficient σ. This configuration exploits the high confinement of microfluidic geometries to relate these two coefficients to the dynamics of a transient flow induced by forward osmosis through a membrane embedded in a chip. We then applied this methodology to hydrogel membranes photo-crosslinked in a microchannel with \textit{in situ} measurements of osmotically-induced flows. These experiments enable us to estimateLD and σ and their dependence on the molecular weight of the solute under consideration, ultimately leading to a precise estimate of the molecular weight cut-off of these hydrogel membranes.

Supplementary files

Article information

Article type
Paper
Submitted
17 Mar 2025
Accepted
02 Jun 2025
First published
03 Jun 2025

Lab Chip, 2025, Accepted Manuscript

Transient osmotic flows in a microfluidic channel: measurements of solute permeability and reflection coefficients of hydrogel membranes

J. Renaudeau, P. Lidon and J. Salmon, Lab Chip, 2025, Accepted Manuscript , DOI: 10.1039/D5LC00276A

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