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Updated: Jun 19, 2026

20 mJ, 1 ps Yb:YAG Thin-disk Regenerative Amplifier
Published on: July 12, 2017
Intracavity-pumped 2.09- microm Ho:YAG laser
This study demonstrates efficient intracavity pumping of a thulium-doped yttrium aluminum garnet (Tm:YAG) laser to achieve a holmium-doped yttrium aluminum garnet (Ho:YAG) laser output. The developed laser system achieved a 42% slope efficiency for the 2.09-microm Ho:YAG laser.
Area of Science:
- Laser Physics
- Solid-State Lasers
- Quantum Electronics
Background:
- Intracavity pumping offers a pathway to enhance laser efficiency.
- Thulium-doped yttrium aluminum garnet (Tm:YAG) lasers can be effectively pumped at 785 nm.
- Holmium-doped yttrium aluminum garnet (Ho:YAG) lasers operate at eye-safe wavelengths, making them suitable for various applications.
Purpose of the Study:
- To investigate the efficiency of an intracavity-pumped Ho:YAG laser using a Tm:YAG laser.
- To optimize the laser cavity design for efficient energy transfer between Tm:YAG and Ho:YAG crystals.
- To characterize the output performance of the 2.09-microm Ho:YAG laser.
Main Methods:
- A single laser cavity housing both Tm:YAG and Ho:YAG crystals was employed.
- The Tm:YAG crystal was optically pumped at 785 nm.
- The 2.01-microm Tm(3+) laser emission was used to pump the Ho:YAG crystal.
- The slope efficiency of the 2.09-microm Ho(3+) laser output was measured.
Main Results:
- The intracavity pumping scheme successfully generated 2.09-microm laser emission from the Ho:YAG crystal.
- A slope efficiency of 42% was achieved for the Ho:YAG laser output with respect to the absorbed pump power.
- Efficient energy transfer was observed between the Tm:YAG and Ho:YAG gain media within the shared cavity.
Conclusions:
- Intracavity pumping of Ho:YAG lasers using Tm:YAG lasers is a viable and efficient method.
- The demonstrated 42% slope efficiency highlights the potential of this laser architecture for high-performance applications.
- This approach offers a compact and effective solution for generating 2.09-microm laser radiation.
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