研究目的
Investigating a novel method to generate two pulse trains from a single fiber laser cavity for dual-comb spectroscopy systems, focusing on dynamical adjustment of spectral separation and tuning of repetition rate differences.
研究成果
The study successfully demonstrates a novel method for generating dual-comb spectra from a single laser cavity, with adjustable spectral separation and repetition rate differences. This approach enhances the stability and bandwidth of dual-comb spectroscopy systems, offering potential for improved spectroscopic applications.
研究不足
The study is limited by the specific configuration of the Yb:fiber laser and the mechanical spectral filtering method, which may not be directly applicable to all types of laser systems. The tuning range of the repetition rate difference is also constrained to 1-6 kHz.
1:Experimental Design and Method Selection:
The study employs a nonlinear amplified loop mirror (NALM) mode-locked all-polarization maintaining (PM) Yb:fiber laser with a free-space arm containing a transmission grating compressor for spectral dispersion. A beam block is introduced to split the spectrum into two regions, enabling independent mode-locking of these regions.
2:Sample Selection and Data Sources:
The experiment uses a Yb:fiber laser operating at a repetition rate of 77 MHz, with spectral components spatially dispersed in a grating compressor.
3:List of Experimental Equipment and Materials:
The setup includes PM980 fiber, Wollaston prisms, Faraday rotator, quarter-wave plate, half-wave plate, polarization beam splitter cube, wavelength division multiplexer, and a photodiode for detection.
4:Experimental Procedures and Operational Workflow:
The spectral components are spatially dispersed, and a beam block is used to split the spectrum. The difference in repetition rates is tuned by adjusting the grating spacing. The output is amplified, broadened, and filtered before detection.
5:Data Analysis Methods:
The output is analyzed using an oscilloscope to observe interferograms corresponding to the Fourier-transform of the down-converted RF comb.
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