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Few-Photon Spectral Confocal Microscopy for Cell Imaging Using Superconducting Transition Edge Sensor.

Kazuki Niwa1, Kaori Hattori1,2, Daiji Fukuda1,2

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Superconducting transition edge sensors (TES) enable ultra-sensitive, wide-band color imaging in microscopy. This photon detection method allows detailed biological sample analysis across visible to near-infrared wavelengths.

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confocal microscopefluorescence cell imagingphoton countingspectral imagingsuperconducting transition edge sensor

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Area of Science:

  • Photonics
  • Microscopy
  • Biotechnology

Background:

  • Superconducting transition edge sensors (TES) are energy-dispersive single-photon detectors.
  • TES can distinguish photon wavelengths from visible to near-infrared (NIR) without spectral dispersive elements.

Purpose of the Study:

  • To demonstrate the application of TES for confocal laser scanning microscopy (CLSM).
  • To achieve ultra-sensitive, wide-band wavelength range color imaging for biological samples.

Main Methods:

  • A TES-based CLSM method was developed and tested on a fluorescence-labeled cell sample stained with three dyes.
  • Simultaneous excitation using 405 nm and 488 nm lasers at low power.
  • Spectral detection of emission signals by TES into four wavelength bands (blue, green, red, NIR).

Main Results:

  • Simultaneous excitation and spectral detection of three dyes were achieved using low laser power (80 and 120 nW).
  • TES categorized emission signals into four wavelength bands: up to 500 nm (blue), 500–600 nm (green), 600–800 nm (red), and 800–1,200 nm (NIR).
  • RGB color and NIR images of the fluorescent cell sample were captured in a single scan with tens of photon signals per pixel in 40 ms exposure time.

Conclusions:

  • TES is a viable wide-band spectral photon detector for life science applications.
  • The TES-based CLSM technique offers ultra-sensitive imaging capabilities.
  • This method enables detailed spectral and color imaging of biological samples.