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Related Experiment Video

Updated: Mar 22, 2026

20 mJ, 1 ps Yb:YAG Thin-disk Regenerative Amplifier
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100  J-level nanosecond pulsed diode pumped solid state laser.

Saumyabrata Banerjee, Paul D Mason, Klaus Ertel

    Optics Letters
    |April 30, 2016
    PubMed
    Summary
    This summary is machine-generated.

    We achieved 107 J from a diode-pumped solid-state laser using cryogenic gas-cooled Yb:YAG technology. This demonstrates significant energy scalability for nanosecond pulsed laser systems.

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    Area of Science:

    • Laser Physics
    • Materials Science

    Background:

    • High-energy pulsed lasers are crucial for scientific research and industrial applications.
    • Diode-pumped solid-state (DPSS) lasers offer high efficiency and reliability.
    • Scaling DPSS lasers to high pulse energies presents significant thermal management challenges.

    Purpose of the Study:

    • To demonstrate a 100 J-level diode-pumped solid-state laser system.
    • To investigate the energy scalability of cryogenic gas-cooled multi-slab ceramic Yb:YAG amplifiers.
    • To achieve high optical-to-optical efficiency in a high-energy nanosecond pulsed laser.

    Main Methods:

    • Utilized a multi-slab ceramic Ytterbium-doped Yttrium Aluminum Garnet (Yb:YAG) amplifier.
    • Implemented a cryogenic gas cooling system operated at 175 K.
    • Employed diode pumping at 940 nm to achieve the target pulse energy.

    Main Results:

    • Successfully delivered a pulse energy of 107 J at a 1 Hz repetition rate and 10 ns pulse duration.
    • Achieved an optical-to-optical efficiency of 21%, with 506 J of diode pump energy.
    • Demonstrated the highest energy output reported for a nanosecond pulsed diode-pumped solid-state laser.

    Conclusions:

    • The cryogenic gas-cooled multi-slab ceramic Yb:YAG amplifier technology enables significant energy scaling.
    • This laser architecture is suitable for high-energy applications requiring nanosecond pulses.
    • The results confirm the viability of this approach for future high-power laser systems.