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Powers scaling and nonlinear frequency conversion of single-frequency lasers based

机译:基于单频激光器的功率缩放和非线性频率转换

摘要

This thesis presents a strategy for power-scaling diode-end-pumped solid-state lasers based on Nd:YLF operating on the 1.053 µm line whilst retaining, efficient, single-frequency, diffraction limited output, the characteristics of low power operation. This strategy reduces the effects of energy transfer up-conversion (ETU), which can decrease the lifetime of the upper lasing level and increase the heat generated per unit volume within the laser rod, increasing the effects of detrimental thermally related problems such as thermal lensing, stress-induced birefringence and stress induced laser rod fracture. Also a passive technique for mode-hopping-suppression is described, allowing the oscillating frequency within the laser cavity to tune over many axial mode spacings before a mode-hop occurs. In order to de-couple the problems of laser resonator power scaling from the maintenance of robust and reliable single-frequency operation, the Nd:YLF laser oscillator output is amplified via Nd:YLF based amplifier stages. A model is presented of the effects of ETU on thermal lensing and small signal gain within the amplifiers along with projected results for further power-scaling prospects. In order to increase the frequency tuning capabilities of the master-oscillator-power-amplifier (MOPA), it was used to pump a series of cw singly-resonant optical parametric oscillators (SROs) based on periodically-poled lithium niobate. Although SROs are inherently single-frequency they suffer detrimentally from mode-hopping, therefore in the final stages of this thesis, we propose to utilise the novel passive technique for mode-hopping-suppression with the SRO cavities in order to achieve robust and reliable single-frequency output. Theoretical expressions and design strategy for low SRO threshold and efficient slope efficiency are expressed along with detailed analysis of the mode-hopping nature of their output. Preliminary results for cw SROs are presented and details of SRO mode-hopping-suppression are included.
机译:本文提出了一种基于功率为1.053 µm的Nd:YLF的功率缩放二极管端泵浦固态激光器的策略,同时保持了高效,单频,衍射受限的输出以及低功率工作的特性。此策略减少了能量传输上转换(ETU)的影响,这会缩短上激光水平的寿命并增加激光棒内每单位体积产生的热量,从而增加有害的与热相关的问题(如热透镜)的影响,应力引起的双折射和应力引起的激光棒断裂。还描述了一种用于模式跳跃抑制的无源技术,其允许在模式跳跃发生之前激光腔内的振荡频率在许多轴向模式间隔上进行调谐。为了将激光谐振器功率缩放的问题与保持稳健而可靠的单频操作分离开,通过基于Nd:YLF的放大器级放大Nd:YLF激光振荡器的输出。提出了一个ETU对放大器的热透镜效应和小信号增益的影响的模型,并给出了预测结果,以进一步实现功率定标的前景。为了提高主振荡器功率放大器(MOPA)的频率调谐能力,它被用于泵浦一系列基于周期极化铌酸锂的连续单谐振光学参量振荡器(SRO)。尽管SRO本质上是单频的,但它们对跳模有不利影响,因此,在本文的最后阶段,我们建议利用新颖的无源技术对SRO腔进行跳模抑制,以实现稳健而可靠的单频。频率输出。给出了低SRO阈值和有效斜率效率的理论表达式和设计策略,并详细分析了其输出的模式跳跃特性。给出了CW SRO的初步结果,并包括了SRO模式跳跃抑制的详细信息。

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