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◆ ACS Omega2026-06-23· Materials science

Free-Electron Laser-Based Extended Wide-Field Mid-Infrared Photothermal Imaging for Biomedical and Microplastic Analysis

Anooj Thayyil-Raveendran, Subham Adak, Artem Shydliukh, Natalja Redinger, Matthias Hauptmann, Ulrich E. Schaible, Anna Mühlig, J. Michael Klopf, Orlando Guntinas‐Lichius, Jürgen Popp, Christoph Krafft

原始摘要(英文原文)· Original abstract
High Resolution Image Download MS PowerPoint Slide Wide-field mid-infrared photothermal (MIP) imaging offers rapid label-free chemical contrast for biomedical and polymer analysis. Its field of view (FOV) depends on the mid-infrared pump power of infrared lasers. Here, a wide-field MIP microscope is presented using up to 150 nJ pulse energies of a free-electron laser (FEL) as the pump source to achieve a larger FOV compared to a quantum cascade laser (QCL) excitation with typically 1 nJ pulses. Both implementations use counter-propagating beam paths with a microsecond pulsed 450 nm LED as the probe source and a CMOS camera that records images using a virtual lock-in detection scheme. FEL’s higher pulse power expands the FOV by approximately a factor of 20, enabling submicron-resolution wide-field MIP imaging of polystyrene beads, single cells, and a murine brain tissue section. QCL systems with less intense pump pulses achieve only 45 μm FOV for samples including polystyrene beads, Mycobacterium tuberculosis -infected fixed tissue sections, and laryngeal cancer cryosections. IR spectra are reconstructed by tuning FEL and QCL wavelengths and collecting a series of wide-field images. We discuss current challenges and further improvements to implement high-power mid-IR pump lasers and shorter pulse probe sources for wide-field MIP imaging with even larger FOVs in the context of biomedical diagnostics and microplastic screening.
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