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Continuous wave holographic laser resonators using degenerate four-wave mixing in a diode bar side-pumped Nd:YVO4 amplifier

机译:在二极管侧面泵浦Nd:YVO4放大器中使用简并四波混频的连续波全息激光谐振器

摘要

Degenerate four-wave mixing techniques used to produce self-adaptive laser resonators based on diffraction from a gain grating have shown considerable promise for correction of distortion in high-average-power solid-state laser systems, as well as for spectral and temporal control of the laser radiation [1-4]. In these systems, the gain grating is formed by spatial hole burning caused by interference of coherent beams in the laser amplifier and modulation of the population inversion. The gain grating formation can be used for phase conjugation by using the amplifier in a four-wave mixing geometry [2], for self-pumped phase conjugation by using an input beam in a self-intersecting loop geometry [3] and for formation of a self-starting adaptive oscillator by providing additional feedback from an output coupler and requiring no external optical input. Experimental demonstrations have been performed successfully in several laser systems including flashlamp-pumped and quasi-c.w. pumped neodymium-doped amplifiers [1,2], in laser-pumped titanium-doped sapphire [4] and CO2 lasers. We present for the first time, demonstration of a continuous-wave self-adaptive holographic laser resonator. The operation is based on the very high reflectivities (800%) [5] and more recently (10,000%) of a gain grating formed in a diode-bar side-pumped Nd:YVO4 amplifier. We have subsequently modelled the FWM interactions and have found good agreement with experimental results. This resonator has been shown to correct for severe phase distortions introduced inside the loop. An output of ~1 W has so far been achieved, future steps include an additional power amplifier incorporated into the resonator loop geometry to give an expected multi-watt operation with a midterm goal of 10 W.
机译:用于基于增益光栅的衍射来生产自适应激光谐振器的简并四波混频技术已显示出在高平均功率固态激光系统中校正畸变以及光谱和时间控制的可观前景。激光辐射[1-4]。在这些系统中,增益光栅是由激光放大器中相干光束的干涉和总体反转​​调制引起的空间烧孔形成的。通过在四波混频几何结构中使用放大器,可以将增益光栅形成用于相位共轭[2],在自相交环路几何结构中使用输入光束可以将其用于自泵浦相位共轭[3],并且可以将增益光栅形成用于共轭结构。通过提供来自输出耦合器的附加反馈并且无需外部光输入即可实现自启动自适应振荡器。已经在包括闪光灯泵浦和准c.w在内的几种激光系统中成功进行了实验演示。激光泵浦钛掺杂蓝宝石[4]和CO2激光器中的泵浦钕掺杂放大器[1,2]。我们首次展示了连续波自适应全息激光谐振器的演示。该操作基于非常高的反射率(> 800%)[5],最近是基于形成在二极管侧边泵浦Nd:YVO4放大器中的增益光栅的(> 10,000%)。随后,我们对FWM交互进行了建模,并与实验结果找到了很好的一致性。该谐振器已被证明可以纠正环路内部引入的严重相位失真。到目前为止,已实现约1 W的输出,未来的步骤包括将附加功率放大器并入谐振器环路几何结构,以期以10 W的中期目标实现预期的多瓦工作。

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