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20 mJ, 1 ps Yb:YAG Thin-disk Regenerative Amplifier
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Diode-laser-pumped monolithic Nd:YLF laser operating at 1.053 microm.

J M Auerbach, R L Schmitt

    Optics Letters
    |September 25, 2009
    PubMed
    Summary

    We developed a diode-laser-pumped Neodymium-doped Yttrium Lithium Fluoride (Nd:YLF) minilaser operating at 1.053 micrometers. Aligning the crystal

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    Area of Science:

    • Laser Physics and Photonics
    • Solid-State Lasers
    • Diode-Laser Technology

    Background:

    • Neodymium-doped Yttrium Lithium Fluoride (Nd:YLF) lasers are crucial for various applications.
    • Suppressing unwanted transitions is key to achieving specific laser outputs.
    • Monolithic and diode-laser-pumped designs offer advantages in compactness and efficiency.

    Purpose of the Study:

    • To describe a novel monolithic diode-laser-pumped Nd:YLF minilaser.
    • To achieve stable 1.053 micrometer lasing by suppressing the competing 1.047 micrometer transition.
    • To characterize the continuous-wave (cw) and gain-switched performance of the developed laser.

    Main Methods:

    • Fabrication of a monolithic Nd:YLF laser resonator.
    • Precise alignment of the Nd:YLF crystal's c-axis parallel to the laser resonator axis.
    • Characterization of laser performance under continuous-wave (cw) and gain-switched operation.

    Main Results:

    • Successful demonstration of a monolithic diode-laser-pumped Nd:YLF minilaser operating at 1.053 micrometers.
    • Complete suppression of the higher-gain 1.047 micrometer transition achieved through c-axis alignment.
    • Measured cw and gain-switched performance metrics align well with theoretical calculations.

    Conclusions:

    • The described method effectively suppresses unwanted transitions in Nd:YLF lasers.
    • This monolithic diode-laser-pumped design provides a stable and efficient source at 1.053 micrometers.
    • The results validate the design principles and performance predictions for this type of laser.

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