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Temperature Effect on Yb-Doped Silica Fiber Laser Performance

机译:温度对掺镱石英光纤激光器性能的影响

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摘要

The operation of the Ytterbium (Yb)-doped silica fiber laser is investigated under high temperature gradients generated by various cryogenic materials. A continuous-wave (CW) double-clad single-mode fiber laser working at 1082.51 nm with a linewidth (FWHM) of 0.16 nm and an average power of 10 W was used to study the effect of cooling rate on its output characteristics such as signal power, efficiency, central wavelength and spectral bandwidth. The cooling process is performed along the gain fiber using a cryogenic bath, while the cryo-coolants don't touch other laser components such as fiber Bragg gratings (FBGs), combiners and optical couplers. A series of rigorous experiments are carried out at room temperature - RT (22.5 degrees C) and cryo-states when the gain fiber is immersed in different coolants i.e., dry-ice ethylene-glycol - DIEG slurry (-29 degrees C), dry-ice debris (-58 degrees C) and liquid nitrogen - LN2 (-189.2 degrees C) with various pump powers ranging 2.9 - 16.5 W. The gain fiber of 10 m long demonstrates a 36 power efficiency at LN2 against 66.4 at RT. The signal power as well as the laser efficiency linearly reduces with temperature drop as to the linewidth undergoes a lucid spectral narrowing accompanying blue shift, mainly owing to the notable temperature response of the absorption / emission cross-section, broadening mechanisms and thermal population as well as energy level schemes, including sublevel and hyperfine structures of the transition accordingly.
机译:研究了掺镱(Yb)二氧化硅光纤激光器在各种低温材料产生的高温梯度下的操作.以工作波长为1082.51 nm、线宽(FWHM)为0.16 nm、平均功率为10 W的连续波(CW)双包层单模光纤激光器为研究对象,研究了冷却速率对其信号功率、效率、中心波长和光谱带宽等输出特性的影响。冷却过程使用低温浴沿增益光纤进行,而低温冷却剂不接触其他激光组件,例如光纤布拉格光栅 (FBG)、合路器和光耦合器。在室温 - 室温 - 室温 (22.5 摄氏度) 和低温状态下,当增益纤维浸入不同的冷却剂中时,即干冰乙二醇 - DIEG 浆料 (-29 摄氏度)、干冰碎片 (-58 摄氏度) 和液氮 - LN2 (-189.2 摄氏度),各种泵功率范围为 2.9 - 16.5 W。10 m 长的增益光纤在 LN2 下的功率效率为 36%,而在室温下为 66.4%。信号功率和激光效率随着温度的下降而线性降低,因为线宽经历了伴随蓝移的清晰光谱变窄,这主要是由于吸收/发射截面的显着温度响应、展宽机制和热群体以及能级方案,包括相应的跃迁的亚能级和超精细结构。

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