研究目的
To develop a high-power, low-noise, self-synchronized two-colour pulsed fibre laser system for high-contrast, fast coherent Raman scattering (CRS) imaging without the need for balanced detection, enabling clinical translation of CRS imaging technologies.
研究成果
The developed two-colour pulsed fibre laser system demonstrates exceptional performance for CRS microscopy, enabling high-contrast, fast imaging without the need for balanced detection. This advancement facilitates the clinical translation of CRS imaging technologies by addressing the limitations of traditional laser sources. The system's versatility and robustness make it a promising tool for a wide range of biomedical applications.
研究不足
The current implementation may require further optimization for even lower intensity noise and higher power output. Additionally, the system's size and complexity, although reduced compared to traditional setups, may still pose challenges for certain clinical applications.
1:Experimental Design and Method Selection:
The study utilizes a novel high-power self-synchronized two-colour pulsed fibre laser for CRS imaging. The laser system is designed to overcome the limitations of traditional solid-state lasers by providing high intensity stability, low timing jitter, and wide tunability.
2:Sample Selection and Data Sources:
Biological samples including living human cells (osteosarcoma and primary myoblast cells) and mouse tissues (arterial, tail, kidney, and brain sections) were imaged to demonstrate the laser's capabilities.
3:List of Experimental Equipment and Materials:
The setup includes a custom-built laser scanning microscope, galvanometric mirrors, a water immersion objective lens, photomultiplier tubes, and a lock-in amplifier for signal detection.
4:Experimental Procedures and Operational Workflow:
The laser beams are spatially and temporally overlapped before being focused onto the sample. CRS signals are collected in the forward direction, isolated from excitation wavelengths, and detected for imaging.
5:Data Analysis Methods:
Images were processed using Fiji software for contrast enhancement and analysis. The performance of the laser system was characterized in terms of intensity stability, timing jitter, and modulation depth.
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Olympus UPLSAPO 60XW
UPLSAPO 60XW
Olympus
Water immersion objective lens for focusing laser beams into the sample.
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Hamamatsu Photonics H9656-20
H9656-20
Hamamatsu Photonics
Photomultiplier tube for detecting CARS signals.
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Thorlabs DET01-CFC
DET01-CFC
Thorlabs
InGaAs-photodiode for generating a system trigger signal from a leaked beam.
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iXblue NIR-MX-LN-10
NIR-MX-LN-10
iXblue
Fast fibre-based intensity modulator for modulating the Stokes beam.
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APE Berlin
APE Berlin
Si photodiode and fast lock-in amplifier for detecting and analyzing SRS signals.
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National Instruments PCI-6110S
PCI-6110S
National Instruments
Data acquisition card for acquiring electronic signals from the detection system.
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HP 8116A
8116A
HP
Function generator for generating a 20 MHz sinusoidal frequency for modulating the Stokes beam.
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