Multi-wavelength transparent microfluidics for UV-visible spectroscopy and X-ray scattering studies of photoactive systems

Fuente: arXiv
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Main Authors: Marmiroli, Benedetta, Klokic, Sumea, Sartori, Barbara, Reissenbuechel, Marie, Turchet, Alessio, Amenitsch, Heinz
Format: Preprint
Published: 2025
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author Marmiroli, Benedetta
Klokic, Sumea
Sartori, Barbara
Reissenbuechel, Marie
Turchet, Alessio
Amenitsch, Heinz
author_facet Marmiroli, Benedetta
Klokic, Sumea
Sartori, Barbara
Reissenbuechel, Marie
Turchet, Alessio
Amenitsch, Heinz
contents Microfluidic devices are increasingly used in synchrotron-based experiments to deliver and probe liquid samples, offering advantages such as minimal sample consumption and reduced radiation damage. Despite their growing use, few devices have been specifically designed for monitoring liquids under photoexcitation, a promising approach for fast structural transitions. Here, a microfluidic device that is transparent to X-rays in one direction, and simulaneously transmits UV and visible light in the perpendicular direction is presented. The device is fabricated using lamination and UV lithography on a dry-film resist, eliminating the need for cleanroom facilities and simplifying production. Its multi-wavelength transparency was validated through UV-visible spectroscopy, where photoexcitation at different wavelengths induced reversible trans-to-cis isomerization of azobenzene and fluoro-azobenzene. X-ray transparency was validated through Small Angle X-ray Scattering (SAXS) measurements on hemoglobin and CO-ligated hemoglobin sensitive to quaternary structural changes. These resusts confirm the suitability of the device for resolving protein structures and photoinduced conformational dynamics. The design further supports, as some proof of concept results show, temperature-jump and time resolved pump-probe experiments, providing a versatile platform for studying structural evolution in liquid samples using synchrotron SAXS.
format Preprint
id arxiv_https___arxiv_org_abs_2511_11441
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Multi-wavelength transparent microfluidics for UV-visible spectroscopy and X-ray scattering studies of photoactive systems
Marmiroli, Benedetta
Klokic, Sumea
Sartori, Barbara
Reissenbuechel, Marie
Turchet, Alessio
Amenitsch, Heinz
Applied Physics
Materials Science
Soft Condensed Matter
Biological Physics
Microfluidic devices are increasingly used in synchrotron-based experiments to deliver and probe liquid samples, offering advantages such as minimal sample consumption and reduced radiation damage. Despite their growing use, few devices have been specifically designed for monitoring liquids under photoexcitation, a promising approach for fast structural transitions. Here, a microfluidic device that is transparent to X-rays in one direction, and simulaneously transmits UV and visible light in the perpendicular direction is presented. The device is fabricated using lamination and UV lithography on a dry-film resist, eliminating the need for cleanroom facilities and simplifying production. Its multi-wavelength transparency was validated through UV-visible spectroscopy, where photoexcitation at different wavelengths induced reversible trans-to-cis isomerization of azobenzene and fluoro-azobenzene. X-ray transparency was validated through Small Angle X-ray Scattering (SAXS) measurements on hemoglobin and CO-ligated hemoglobin sensitive to quaternary structural changes. These resusts confirm the suitability of the device for resolving protein structures and photoinduced conformational dynamics. The design further supports, as some proof of concept results show, temperature-jump and time resolved pump-probe experiments, providing a versatile platform for studying structural evolution in liquid samples using synchrotron SAXS.
title Multi-wavelength transparent microfluidics for UV-visible spectroscopy and X-ray scattering studies of photoactive systems
topic Applied Physics
Materials Science
Soft Condensed Matter
Biological Physics
url https://arxiv.org/abs/2511.11441