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输出功率为260瓦的光子晶体光纤放大器的实验与理论研究

Experimental and theoretical investigations of photonic crystal fiber amplifier with 260 W output.

作者信息

Dajani Iyad, Vergien Christopher, Robin Craig, Zeringue Clint

机构信息

High Power Solid State Lasers Branch, Air Force Research Laboratory, 3550 Aberdeen Ave SE, Kirtland Air Force Base, N.M. 87117, USA.

出版信息

Opt Express. 2009 Dec 21;17(26):24317-33. doi: 10.1364/OE.17.024317.

DOI:10.1364/OE.17.024317
PMID:20052142
Abstract

We report on a polarization-maintaining narrow-linewidth high power ytterbium-doped photonic crystal fiber amplifier with an output as high as 260 W and a slope efficiency of approximately 74%. Measurements of the beam quality yielded M2 values in the range of 1.2-1.3. The linewidth was determined at two different powers using an optical heterodyne detection technique and yielded values that were less than 10 KHz. Our maximum output power was pump limited and measurements of the reflected light indicated that we operated below the stimulated Brillouin scattering (SBS) threshold. Using a pump-probe technique, we estimated the Brillouin gain bandwidth to be approximately 68 MHz. In addition, the Brillouin gain spectrum revealed secondary peaks lying at the high-frequency side. In order to study the power limitations of our amplifier, we developed a detailed model that included a distributed noise source for the SBS process and a temperature gradient obtained via quantum defect heating. Our simulations indicated that for this particular fiber amplifier configuration an output power approaching 1 KW can be achieved. We also found that for forced air cooling the SBS threshold saturates regardless of the operating temperature of the polymer coating. Finally, we show that relatively small enhancement is obtained if a continuous transverse acoustic velocity gradient was implemented in conjunction with the thermal gradient. The latter conclusions drawn from our simulations also hold true for conventional fibers.

摘要

我们报道了一种保偏窄线宽高功率掺镱光子晶体光纤放大器,其输出功率高达260W,斜率效率约为74%。光束质量测量得到的M²值在1.2 - 1.3范围内。使用光学外差检测技术在两种不同功率下测定线宽,得到的值小于10kHz。我们的最大输出功率受泵浦限制,对反射光的测量表明我们在受激布里渊散射(SBS)阈值以下运行。使用泵浦 - 探测技术,我们估计布里渊增益带宽约为68MHz。此外,布里渊增益谱在高频侧显示出次级峰。为了研究我们放大器的功率限制,我们开发了一个详细模型,该模型包括用于SBS过程的分布式噪声源和通过量子缺陷加热获得的温度梯度。我们的模拟表明,对于这种特定的光纤放大器配置,可以实现接近1kW的输出功率。我们还发现,对于强制风冷,无论聚合物涂层的工作温度如何,SBS阈值都会饱和。最后,我们表明,如果结合热梯度实施连续横向声速梯度,得到的增强相对较小。我们从模拟中得出的后一个结论对于传统光纤也成立。

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