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Video-rate mid-infrared photothermal imaging by single-pulse photothermal detection per pixel.

Jiaze YinMeng ZhangYuying TanZhongyue GuoHongjian HeLu LanJi-Xin Cheng
Published in: Science advances (2023)
By optically sensing absorption-induced photothermal effect, mid-infrared (IR) photothermal (MIP) microscope enables super-resolution IR imaging of biological systems in water. However, the speed of current sample-scanning MIP system is limited to milliseconds per pixel, which is insufficient for capturing living dynamics. By detecting the transient photothermal signal induced by a single IR pulse through fast digitization, we report a laser-scanning MIP microscope that increases the imaging speed by three orders of magnitude. To realize single-pulse photothermal detection, we use synchronized galvo scanning of both mid-IR and probe beams to achieve an imaging line rate of more than 2 kilohertz. With video-rate speed, we observed the dynamics of various biomolecules in living organisms at multiple scales. Furthermore, by using hyperspectral imaging, we chemically dissected the layered ultrastructure of fungal cell wall. Last, with a uniform field of view more than 200 by 200 square micrometer, we mapped fat storage in free-moving Caenorhabditis elegans and live embryos.
Keyphrases
  • high resolution
  • photodynamic therapy
  • cancer therapy
  • drug delivery
  • blood pressure
  • drug release
  • quantum dots
  • electron microscopy
  • gold nanoparticles
  • blood brain barrier
  • oxidative stress
  • reduced graphene oxide