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Identification of the laser-induced damage mechanisms in KDP by coupling 355 nm and 1064 nm nanosecond pulses

机译:通过耦合355 nm和1064 nm纳秒脉冲识别KDP中激光诱导的损伤机制

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Nanosecond Laser-Induced Damage (LID) in potassium dihydrogen phosphate (KH2PO4 or KDP) remains an issue for light-frequency converters in large-aperture lasers such as NIF (National Ignition Facility, in USA) and LMJ (Laser MegaJoule, in France). In the final optic assembly, converters are simultaneously illuminated by multiple wavelengths during the frequency conversion. In this configuration, the damage resistance of the KDP crystals becomes a crucial problem and has to be improved. In this study, we propose a refined investigation about the LID mechanisms involved in the case of a multiple wavelengths combination. Experiments based on an original pump-pump set-up have been carried out in the nanosecond regime on a KDP crystal. In particular, the impact of a simultaneous mixing of 355 nm and 1064 nm pulses has been experimentally studied and compared to a model based on heat transfer, the Mie theory and a Drude model. This study sheds light on the physical processes implied in the KDP laser damage. In particular, a three-photon ionization mechanism is shown to be responsible for laser damage in KDP.
机译:磷酸二氢钾(KH2PO4或KDP)中的纳秒激光诱导损伤(LID)仍然是诸如NIF(美国国家点火设施)和LMJ(法国Laser MegaJoule)等大口径激光器中的光频率转换器的问题。 。在最终的光学组件中,变频器在频率转换过程中会同时受到多种波长的照射。在这种配置中,KDP晶体的抗损伤性成为关键问题,必须加以改进。在这项研究中,我们提出了关于多波长组合情况下涉及的LID机制的精确研究。已经在纳秒范围内对KDP晶体进行了基于原始泵浦设置的实验。特别是,已经对355 nm和1064 nm脉冲同时混合的影响进行了实验研究,并将其与基于传热的模型,Mie理论和Drude模型进行了比较。这项研究揭示了KDP激光损伤中隐含的物理过程。特别是,三光子电离机制被证明是造成KDP中激光损坏的原因。

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