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Low-order harmonic generation in nanosecond laser ablation plasmas of carbon containing materials

机译:纳秒激光烧蚀等离子体中含碳材料的低阶谐波生成

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In this work we report on a systematic study of the spatiotemporal behaviour of low-order harmonics generated in nanosecond laser ablation plasmas of carbon containing materials. Plasmas were generated from targets of graphite and boron carbide ablated with a nanosecond Q-switched Nd:YAG laser at 1064 nm. Low-order harmonics (3rd and 5th) of the fundamental wavelength of a ns Nd:YAG driving laser, propagating perpendicularly to the ablation laser at variable time delays, were observed. The temporal study of the low-order harmonics generated under vacuum and atmospheres of Kr and Xe, revealed the presence of two populations that contribute to the harmonic generation (HG) at different times. It was found that under vacuum only small species contribute to the HG process, whereas under buffer gas, heavier species, such as clusters and nanoparticles, contribute to the HG at longer times. Optical emission spectroscopy, time of flight mass spectrometry and characterization of deposits collected on-line on a nearby substrate provided additional information that complemented the results of the spatiotemporal study of the generated harmonics. This approach to ablation plume analysis allows elucidating the identity of the nonlinear emitters in laser ablation plasmas and facilitates the investigation of efficient, nanoparticle-enhanced, coherent short wavelength generation processes.
机译:在这项工作中,我们报告了对含碳材料的纳秒激光烧蚀等离子体中产生的低阶谐波的时空行为的系统研究。从用纳秒级Q开关Nd:YAG激光在1064 nm处烧蚀的石墨和碳化硼靶产生等离子体。观察到ns Nd:YAG驱动激光器的基本波长的低阶谐波(第3次和第5次),它们以可变的时间延迟垂直于消融激光器传播。对在真空和Kr和Xe气氛下产生的低阶谐波进行的时间研究表明,存在两个在不同时间产生谐波的族群。已经发现,在真空下,只有很小的物种对HG过程有贡献,而在缓冲气体下,较重的物种(例如团簇和纳米颗粒)在更长的时间内对HG有贡献。光学发射光谱法,飞行时间质谱法和在附近基板上在线收集的沉积物的表征提供了补充信息,这些信息补充了所产生谐波的时空研究结果。这种消融羽流分析的方法可以阐明激光消融等离子体中非线性发射器的身份,并有助于研究有效的,纳米级增强的,相干的短波长生成过程。

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