首页> 外文会议>Conference on fiber lasers VI: Technology, systems, and applications; 20090126-29; San Jose, CA(US) >Simple Design for Singlemode High Power CW Fiber Laser using Multimode High NA Fiber
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Simple Design for Singlemode High Power CW Fiber Laser using Multimode High NA Fiber

机译:使用多模高NA光纤的单模大功率连续波光纤激光器的简单设计

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A large number of high power CW fiber lasers described in the literature use large mode area (LMA) double cladding fibers. These fibers have large core and low core numerical aperture (NA) to limit the number of supported modes and are typically operated under coiling to eliminate higher order modes. We describe here multimode (MM) high NA ytterbium doped fibers used in single mode output high power laser/amplifier configuration. Efficient single mode amplification is realized in the multimode doped fiber by matching the fundamental mode of the doped fiber to the LP_(01) mode of the fiber Bragg grating (FBG) and by selecting the upper V-number value that limits the overlap of the LP_(01) to the higher order modes. We show that negligible mode coupling is realized in the doped fiber, which ensures a stable power output over external perturbation without the use of tapers. Fundamental mode operation is maintained at all time without coiling through the use of FBG written in a single mode fiber. We show that such fiber is inherently more photosensitive and easier to splice than LMA fiber. We demonstrate an efficient 75W singlemode CW fiber laser using this configuration and predict that the power scaling to the kW level can be achieved, the design being more practical and resistant to photodarkening compared to conventional low NA LMA fiber.
机译:文献中描述的大量高功率CW光纤激光器使用大模式面积(LMA)双包层光纤。这些光纤具有较大的纤芯和较低的纤芯数值孔径(NA),以限制所支持模式的数量,并且通常在卷取下工作以消除高阶模。我们在此描述用于单模输出高功率激光/放大器配置的多模(MM)高NA掺do光纤。通过将掺杂光纤的基本模式与光纤布拉格光栅(FBG)的LP_(01)模式进行匹配,并选择上限V值来限制多模掺杂光纤中的单模放大,可以实现有效的单模放大。 LP_(01)为高阶模式。我们表明,在掺杂光纤中实现了可忽略的模式耦合,这确保了在不使用锥度的情况下,在外部扰动下输出稳定的功率。通过使用写在单模光纤中的FBG,基本模式操作始终保持不变,而不会盘绕。我们显示,与LMA光纤相比,此类光纤本质上具有更高的感光性和更易于拼接。我们演示了使用这种配置的高效75W单模CW光纤激光器,并预测与传统的低NA LMA光纤相比,该设计更实用,并且可以抵抗光暗化。

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