Issue 2, 2025

Infrared imaging with visible light in microfluidic devices: the water absorption barrier

Abstract

Infrared spectro-microscopy is a powerful technique for analysing chemical maps of cells and tissues for biomedical and clinical applications, yet the strong water absorption in the mid-infrared region is a challenge to overcome, as it overlaps with the spectral fingerprints of biological components. Microfluidic chips offer ultimate control over the water layer thickness and are increasingly used in infrared spectro-microscopy. However, the actual impact of the water layer thickness on the instrument's performance is often left to the experimentalist's intuition and the peculiarities of specific instruments. Aiming to experimentally test the amount of absorption introduced by water with varying layer thicknesses, we fabricated a set of microfluidic devices with three controlled chamber thicknesses, each comprising a simple test pattern made of a well-known photoresist SU-8. We employed two infrared spectro-microscopy methods for measurements. The first method involves using a standard FTIR microscope with a benchtop infrared light source. The second method is a quantum infrared microscopy technique, where infrared imaging is achieved by detecting correlated photons in the visible range. We demonstrated that both methods enable the measurement of the absorption spectrum in the mid-IR region, even in the presence of up to a 30 μm thick water layer on top of a sample pattern. Additionally, the Q-IR technique offers practical advantages over synchrotron-based FTIR, such as reduced complexity, cost, and ease of operation.

Graphical abstract: Infrared imaging with visible light in microfluidic devices: the water absorption barrier

Supplementary files

Article information

Article type
Paper
Submitted
10 sep 2024
Accepted
06 nov 2024
First published
18 des 2024
This article is Open Access
Creative Commons BY-NC license

Analyst, 2025,150, 405-413

Infrared imaging with visible light in microfluidic devices: the water absorption barrier

M. Suryana, T. Produit, H. Yang, G. Birarda, J. V. Shanmugar, L. Krivitsky, A. Paterova and G. Grenci, Analyst, 2025, 150, 405 DOI: 10.1039/D4AN01201A

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