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Optimization of fiber coupling in ultra-high power pump modules at λ = 980 nm

机译:在λ= 980nm的超高功率泵模块中的光纤耦合优化

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This work presents some aspects of development of ultra-high power single-mode pump modules at λ= 980 nm for erbium-doped fiber amplifiers. We report here on the results of numerical simulations and experimental data of modifications to the laser waveguide structure with a focus on improving the fiber coupling efficiency. The so-called integrated fiber wedge lens was used as a coupling element in the present investigation. Our simulations showed that between the two most widely used laser waveguide types: large optical cavity (LOC) and separate confinement (SCH or GRICC) heterostructures the difference in coupling efficiency can be as high as ten absolute percent We achieved an experimental coupling efficiency of 93 percent for LOC-like lasers structure. The SCH-based lasers showed maximum coupling efficiency of 83 percent. However, in spite of superior coupling efficiency, use of LOC-based lasers in pump modules does not bring any benefits because of subpar electro-optical performance. To improve the situation we had to find a reasonable compromise between LOC and SCH structures. Lasers resulting from this approach gave a coupling efficiency around 90 percent. The laser diodes based on the optimized structure achieve more than 3 W of output power and more than 2 W of kink-free power in CW regime at room temperature. They also demonstrate differential quantum efficiency above 85% and laser power conversion efficiency above 60 percent at use conditions. Thanks to the combination of all these factors pump modules built on these lasers produce 1W of wavelength-stabilized power at an operating current below 1.3 A. Maximum kink-free, wavelength-stabilized output from the pump module reached 1.8 W at room temperature.
机译:这项工作提出了在λ= 980nm的超高功率单模泵模块开发的一些方面,用于erbium掺杂的光纤放大器。我们在此报告关于数值模拟的结果和对激光波导结构的修改的实验数据,重点是提高光纤耦合效率。所谓的集成光纤楔形镜片用作本研究中的耦合元件。我们的模拟表明,在两个最广泛使用的激光波导类型之间:大型光学腔(LOC)和单独的限制(SCH或GRICC)异质结构耦合效率的差异可以高达10个绝对百分比,我们实现了93的实验耦合效率LOC样激光器结构的百分比。 SCH的激光显示出最大耦合效率为83%。然而,尽管耦合效率卓越,但由于子PRO电光性能,在泵模块中使用基于基于基于LOC的激光器不会带来任何益处。为了改善局势,我们必须在LOC和SCH结构之间找到合理的妥协。由这种方法产生的激光率为90%的耦合效率。基于优化结构的激光二极管在室温下,基于优化结构的输出功率达到3W W以上的输出功率和超过2W的无扭结功率。它们还展示了高于85%的差分量子效率,并且在使用条件下高于60%的激光功率转换效率。由于所有这些因素的组合,内置的泵模块在这些激光器上产生1W,在低于1.3A的工作电流下产生1W的波长稳定功率。最大扭结,从泵模块的波长稳定输出在室温下达到1.8W。

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