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Concept for power scaling second harmonic generation using a cascade of nonlinear crystals
Optics Express
|July 21, 2015
Summary
This study presents a new method for high-power second harmonic generation (SHG) using cascaded nonlinear crystals. This approach overcomes crystal limitations, achieving efficient power scaling for laser applications.
Area of Science:
- Nonlinear optics
- Laser physics
- Materials science
Background:
- High-power second harmonic generation (SHG) is crucial for various applications.
- Thermal dephasing in nonlinear crystals limits power scaling in traditional SHG systems.
- Existing methods struggle to balance high efficiency with power handling capabilities.
Purpose of the Study:
- To demonstrate a novel concept for efficient power scaling in single-pass SHG beyond conventional limits.
- To overcome adverse crystal effects like thermal dephasing in high-power SHG.
- To achieve high-power, diffraction-limited green light generation from laser diodes.
Main Methods:
- Utilized a cascade of nonlinear crystals for single-pass SHG.
- Selected the first crystal for high nonlinear efficiency and subsequent crystals for power handling.
- Employed a tapered laser diode as the fundamental light source.
- Characterized the generated second harmonic (SH) light for power and beam quality.
Main Results:
- Generated 3.7 W of continuous-wave (CW) diffraction-limited (M(2)=1.25) green light (532 nm).
- Used 9.5 W of non-diffraction-limited (M(2)=7.7) fundamental light from a laser diode.
- Successfully avoided significant thermal effects, demonstrating improved power handling.
- Achieved the highest SH power reported for a laser diode source.
Conclusions:
- The cascaded nonlinear crystal approach enables efficient power scaling beyond thermal limitations.
- This method effectively combines high nonlinear efficiency with superior power handling.
- The concept is versatile, applicable to other wavelengths and scalable with additional stages.
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