LED-based multibeam photoacoustics combined with electrical circuit-based modeling for the analysis of multispecies mass transport through thin membranes
Pawel Rochowski

TL;DR
This paper introduces a photoacoustic experimental approach combined with electrical circuit modeling to analyze multispecies mass transport through thin membranes, providing detailed insights into diffusion, reaction, and interfacial processes.
Contribution
It develops a novel multibeam photoacoustic setup and a lumped electrical circuit model for comprehensive characterization of multispecies mass transport in membrane systems.
Findings
Validated simplified model against experimental data
Enabled quantitative analysis of diffusion-reaction processes
Demonstrated effectiveness in monitoring interfacial changes
Abstract
This work develops photoacoustic-based experimental methods for comprehensive characterization of multispecies mass transport from donor compartments to thin-membrane acceptor systems in perfect contact, supported by a dedicated mass transfer modeling framework. Multibeam configurations are implemented in photoacoustic setups operating in front-side detection and diffuse-reflection geometries. The setups are calibrated and adjusted prior to measurements by means of transmission-mode photoacoustic experiments conducted under steady-state conditions. Finally, the methodologies were applied to a model system undergoing photoinduced decay, enabling characterization of bulk transport kinetics as well as interfacial equilibration monitored through time-dependent changes in interfacial reflectivity. For the analysis of bulk transport data, a lumped electrical-circuit (EC) model is introduced.…
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Taxonomy
TopicsPhotoacoustic and Ultrasonic Imaging · Thermography and Photoacoustic Techniques · Electrochemical Analysis and Applications
