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HIGH POWER PULSED FIBER LASER SOURCES AND THEIR USE IN TERAHERTZ GENERATION#8194;

机译:大功率脉冲光纤激光器资源及其在TERAHERTZ产生中的使用

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摘要

In this dissertation I report the development of high power pulsed fiber laser systems. These systems utilize phosphate glass fiber for active elements, instead of the industry-standard silica fiber. Because the phosphate glass allows for much higher doping of rare-earth ions than silica fibers, much shorter phosphate fibers can be used to achieve the same gain as longer silica fibers.This single-frequency laser technology was used to develop an all-fiber actively Q-switched fiber lasers. A short cavity is used to create large spacing between longitudinal modes. Using this method, we demonstrated the first all-fiber Q-switched fiber laser in the 1 micron region.In addition to creating high peak powers with Q-switched lasers, created even higher powers using fiber amplifier systems. High power fiber lasers typically produce spectral broadening through the nonlinear effects of stimulated Raman scattering, stimulated Brullion scattering, and self-phase modulation. The thresholds for these nonlinearities scale inversely with intensity and length. Thus, we used a short phosphate fiber gain stage to reduce the length, and a large core fiber final stage to reduce intensity. In this way we were able to generate high peak power pulses while avoiding visible nonlinearities, and keeping a narrow bandwidth.The immediate goal of developing these high power fiber laser systems was to generate narrowband terahertz radiation. Two different wavelengths were combined into the final amplifier stage at orthogonal polarizations. These were collimated and directed into a GaSe crystal, which has a very high figure of merit for THz generation. The two wavelengths combined in the crystal through the process of nonlinear difference frequency generation. This produced a narrowband beam of THz pulses, at higher powers than previous narrowband THz pulses produced by eyesafe fiber lasers.
机译:在这篇论文中,我报告了高功率脉冲光纤激光器系统的发展。这些系统将磷酸盐玻璃纤维用作活性元素,而不是行业标准的二氧化硅纤维。由于磷酸盐玻璃比硅纤维对稀土离子的掺杂量高得多,因此可以使用短得多的磷酸盐纤维来获得与长石英纤维相同的增益。这种单频激光技术被用于积极开发全纤维调Q光纤激光器。短腔用于在纵向模式之间产生较大的间距。通过这种方法,我们展示了第一款在1微米范围内的全光纤调Q光纤激光器,除了使用调Q激光器产生高峰值功率外,还使用光纤放大器系统产生了更高的功率。高功率光纤激光器通常通过受激拉曼散射,受激布鲁尔散射和自相位调制的非线性效应产生光谱加宽。这些非线性的阈值与强度和长度成反比。因此,我们使用较短的磷酸盐纤维增益级来减小长度,而使用较大的芯纤维末级来降低强度。这样,我们能够产生高峰值功率脉冲,同时避免可见的非线性并保持窄带宽。开发这些高功率光纤激光器系统的近期目标是产生窄带太赫兹辐射。将两个不同的波长以正交偏振合并到最终的放大器级中。将它们准直并定向到GaSe晶体中,该晶体对于THz产生具有很高的品质因数。这两个波长通过非线性差分频率生成过程在晶体中组合。与人眼安全光纤激光器产生的窄带太赫兹脉冲相比,这产生了太赫兹脉冲的窄带光束。

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  • 作者

    Leigh Matthew;

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  • 年度 2008
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  • 原文格式 PDF
  • 正文语种 EN
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