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Construction and Characterization of External Cavity Diode Lasers for Atomic Physics
Published on: April 24, 2014
Narrow-linewidth quarter-wavelength-shifted DFB laser based on coupling-coefficient distribution engineering
Optics Express
|August 14, 2026
Summary
Engineers developed a new distributed feedback laser using coupling-coefficient distribution engineering. This method significantly reduces linewidth broadening, achieving a narrow 75 kHz Lorentzian linewidth for improved laser performance.
Area of Science:
- Photonics
- Semiconductor Lasers
- Optical Engineering
Background:
- Distributed feedback (DFB) lasers are crucial for optical communications.
- Narrow linewidths are essential for high-performance applications.
- Longitudinal spatial hole burning (LSHB) broadens the linewidth in conventional DFB lasers.
Purpose of the Study:
- To propose and demonstrate a novel narrow-linewidth quarter-wavelength-shifted distributed feedback (QWS-DFB) laser.
- To suppress linewidth broadening caused by LSHB through coupling-coefficient distribution (CCD) engineering.
- To improve longitudinal field uniformity within the laser cavity.
Main Methods:
- Designed a QWS-DFB laser utilizing CCD engineering with symmetric apodized-coupling regions.
- Tailored the longitudinal coupling profile to modify intracavity optical field distribution.
- Performed numerical analysis to understand the effect of coupling-coefficient profile on mode characteristics.
- Experimentally fabricated and tested the proposed CCD QWS-DFB laser.
Main Results:
- Suppressed strong central optical-field localization in conventional QWS-DFB cavities.
- Achieved improved longitudinal field uniformity.
- Demonstrated a minimum Lorentzian linewidth of 75 kHz.
- Observed significantly reduced linewidth compared to a uniform-coupling reference laser.
Conclusions:
- Coupling-coefficient distribution engineering effectively regulates intracavity field distribution and mode characteristics.
- The proposed CCD QWS-DFB laser design offers a robust method for achieving narrow linewidths.
- This approach provides an effective and fabrication-robust route toward narrow-linewidth DFB lasers.

