PulseExploreJournal ClubDebatesTrendingResearchersJournals
Instagram
HomeExploreJournal ClubTrending
Synapse
⌘+K
Synapse
September 12, 2025Analytical Chemistry2 citationsOpen Access

Broadband Fourier-Transform Optical Photothermal Infrared Spectroscopy and Imaging

View Full Paper
ARAleksandr RazumtcevGTGwendylan A. TurnerSZS. V. Zayats

Key Points

  • The combined synchrotron-based optical photothermal infrared modality enhances spatial resolution and spectral range.
  • O-PTIR microscopy enables chemical imaging beyond the diffraction limit, facilitating high-resolution studies of materials.
  • The effectiveness of synchrotron IR sources improves mapping chemically heterogeneous samples compared to standard techniques.
  • Validation studies demonstrate successful differentiation of cells in mouse brain tissue, underlining O-PTIR microscopy's practical applications.

Abstract

Infrared (IR) spectroscopy is a powerful method for mapping chemical heterogeneity on the microscale. Synchrotron IR radiation uniquely provides a high brightness and broad bandwidth to further extend the capabilities of IR spectroscopic imaging. However, the diffraction-limited spatial resolution of IR spectroscopy is insufficient for studies requiring submicrometer spatial differentiation. Optical photothermal IR (O-PTIR) microscopy is a powerful, emerging method that overcomes the IR diffraction limit in IR hyperspectral imaging by employing a modulated IR beam and a visible probe laser beam to detect local temperature-induced modulation at the visible diffraction limit. In this work, we extend the spectral range of photothermal infrared measurements by incorporating a synchrotron IR source, demonstrating a combined synchrotron-based O-PTIR modality that enables high spatial resolution far-field chemical imaging spanning the entire mid-IR range. Both optical- and fluorescence-detected photothermal modalities were performed using a step-scan interferometer, demonstrating improved spectral range (541-4000 cm-1) when compared to optical photothermal microscopy with commercial laser sources (800-1800 cm-1 for this particular source) and improved spatial resolution, when compared to synchrotron microspectroscopy measurements. Following these initial validation studies, synchrotron Fourier-transform fluorescence-detected photothermal IR spectroscopy in combination with synchrotron microspectroscopy measurements was used to differentiate cells in mouse brain tissue sections, which requires submicron spatial resolutions beyond those accessible by IR spectroscopy alone.

Ask AI
Helpful
Bookmark
Share
View Full Paper

Cite This Study

Razumtcev et al. (2025) studied this question.

synapsesocial.com/papers/68d44f6931b076d99fa56426https://doi.org/10.1021/acs.analchem.5c02493
Ask AI
Helpful
Bookmark
Share
View Full Paper

Also Consider

Synapse has enriched 5 closely related papers on similar clinical questions. Consider them for comparative context:

  1. 1Thermophysical and Mechanical Properties of Polystyrene: Influence of Free Quenching2012 · 25 citations
  2. 2Huntington's disease: a clinical review2017 · 1,113 citations
  3. 3Differential loss of striatal projection neurons in Huntington disease.1988 · 1,017 citations
  4. 4The effect of deformation of absorbing scatterers on Mie-type signatures in infrared microspectroscopy2021 · 23 citations
  5. 5Mid-infrared photothermal heterodyne spectroscopy in a liquid crystal using a quantum cascade laser2012 · 57 citations