研究目的
To propose and fabricate a thin Mo0.8W0.2S2 film for use as a saturable absorber in a thulium-doped fiber laser (TDFL) cavity, capable of generating stable, tunable Q-switched pulses in the 2.0-μm wavelength region for bio-medical and sensing applications.
研究成果
The proposed tunable, Q-switched TDFL using an Mo0.8W0.2S2-based SA demonstrates stable operation over a broad tuning range of 70 nm in the 2.0-μm region. The laser achieves high repetition rates, short pulse widths, and significant pulse energies and peak powers, making it suitable for sensing and medical applications. The study highlights the potential of 2D TMD alloys in enhancing optoelectronic devices.
研究不足
The study is limited by the saturation point of the Mo0.8W0.2S2-based SA at high pump powers, which restricts the maximum stable output power. Additionally, the fabrication process of the SA may introduce variability in performance due to external conditions.
1:Experimental Design and Method Selection:
The study employs a passively Q-switched thulium-doped fiber laser (TDFL) setup with a Mo0.8W0.2S2-based saturable absorber (SA). The SA is fabricated using hydrothermal exfoliation and embedded in a polymer host. The laser cavity includes a tunable bandpass filter (TBPF) for wavelength tuning.
2:8W2S2-based saturable absorber (SA). The SA is fabricated using hydrothermal exfoliation and embedded in a polymer host. The laser cavity includes a tunable bandpass filter (TBPF) for wavelength tuning. Sample Selection and Data Sources:
2. Sample Selection and Data Sources: The Mo0.8W0.2S2 nanosheets are synthesized and characterized using XRD, UV-Vis spectroscopy, HRTEM, EDX, and Raman spectroscopy. The laser output is analyzed using optical spectrum analyzers, oscilloscopes, and radio frequency spectrum analyzers.
3:8W2S2 nanosheets are synthesized and characterized using XRD, UV-Vis spectroscopy, HRTEM, EDX, and Raman spectroscopy. The laser output is analyzed using optical spectrum analyzers, oscilloscopes, and radio frequency spectrum analyzers. List of Experimental Equipment and Materials:
3. List of Experimental Equipment and Materials: Includes Princeton Lightwave PSL 450 laser diodes, OFS Inc. TmDF 200 thulium doped fiber, Agiltron TBPF, Yokogawa AQ6375 optical spectrum analyzer, DLM2054 oscilloscope, and Anritsu MS2683A radio frequency spectrum analyzer.
4:Experimental Procedures and Operational Workflow:
The laser setup involves dual pumping configuration, insertion of the SA into the cavity, and tuning the output wavelength using the TBPF. The output characteristics are measured at varying pump powers.
5:Data Analysis Methods:
The laser's output parameters (repetition rate, pulse width, pulse energy, peak power) are analyzed against pump power. The stability and tunability of the laser output are also evaluated.
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TmDF 200 thulium doped fiber
TmDF 200
OFS Inc.
Gain medium in the laser cavity
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Yokogawa AQ6375 optical spectrum analyzer
AQ6375
Yokogawa
Spectral analysis of the extracted signal
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DLM2054 oscilloscope
DLM2054
Yokogawa
Time-domain pulse analysis
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Anritsu MS2683A radio frequency spectrum analyzer
MS2683A
Anritsu
Radio frequency (RF) analysis
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Princeton Lightwave PSL 450 laser diodes
PSL 450
Princeton Lightwave
Pumping the gain medium in a dual pumping configuration
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Tunable bandpass filter (TBPF)
Not provided
Agiltron
Tuning the output wavelength of the laser
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