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March 25, 2026Journal of Optical Technology0 citations

Diode-pumped Nd:YAG laser with self-filtering unstable cavity for operation over a wide range of pulse repetition rates

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MBMaksim V. BogdanovichAGA. Ya. Grigor’evVDValeriy N. Dudikov

Key Points

  • The aim is to optimize the optical design of a diode-pumped Nd:YAG laser to achieve high pulse output energies across varying repetition rates.
  • Conducted optical design calculations for Nd:YAG lasers.
  • Performed experimental studies to assess spatial and power characteristics.
  • Evaluated laser performance at pulse rates from 1 Hz to 30 Hz.
  • Achieved TEM 00 mode pulse energies exceeding 50 mJ.
  • Maintained stable performance across a pulse repetition range of 1–30 Hz.
  • Demonstrated no need for changes in cavity parameters or geometry.

Abstract

Subject of study. The spatial and power characteristics of a diode-pumped Q-switched Nd:YAG laser with a self-filtering unstable cavity operating in TEM 00 mode at a pulse repetition rate ranging from 1 Hz to 30 Hz while the cavity parameters and cavity geometry remained unchanged are studied. Aim of study. The optical design of a Nd:YAG laser with a self-filtering unstable cavity to provide pulse output energies in excess of 50 mJ was optimized, and the pulse repetition rate is adjusted within a range from 1 Hz to 30 Hz. Method. Optical design calculations and experimental studies of the spatial and power characteristics of a Nd:YAG laser with a self-filtering unstable cavity operating at pump pulse repetition rates from 1 to 30 Hz are carried out. Main results. We show that the Nd:YAG laser optical design developed herein is capable of producing TEM 00 fundamental mode laser pulse energies above 50 mJ at pulse repetition rates of 1–30 Hz without varying the cavity parameters or modifying the cavity geometry. Practical significance. The data we have obtained can be used to develop high-power pulsed transverse diode-pumped Nd:YAG lasers with high output beam quality. Our approach substantially reduces the radiation load on intracavity components.

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Cite This Study

Bogdanovich et al. (2025) studied this question.

synapsesocial.com/papers/69c37afeb34aaaeb1a67cf8bhttps://doi.org/10.1364/jot.92.000354
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