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Advanced Laser Systems for MEGa-ray-based Nuclear Materials Detection and Assay

机译:先进的激光系统,用于基于MEGa射线的核材料检测和分析

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A Compton-scattering based, tunable MonoEnergetic Gamma-ray (MEGa-ray) source suitable for nuclear resonance fluorescence measurements requires specific performance parameters for the affiliated laser systems. Optimization of the number of photons/eV/s dictates a trade-off between shorter laser pulses to maximize the photon density, and narrower laser bandwidths to minimize the gamma-ray energy spread. Also required is a high-brightness electron beam, which in turn requires a second laser system, converted to UV, with a fast rise-time, long duration, and flat transverse profile. Furthermore, these lasers must be synchronized with each other and with the RF providing the electron bunch acceleration. Presented here is an overview of the laser system designed for LLNL's MEGa-ray source. This chirped-pulse-amplification (CPA)-based laser system starts with a fiber-based oscillator with is then split into two amplification chains. The first amplification chain produces 120 Hz, 1 mJ, 250 fs, 1053 nm laser pulses in a series of fiber amplifiers. This pulse is then frequency-quadupled to the UV, shaped spatially and stacked temporally to produce the desired laser distribution for the photocathode. The second amp chain generates a 120 Hz, 1 J, 10 ps, 1064 nm laser pulse using a combination of fiber amps and diode-pumped Nd:YAG heads. A novel hyper-dispersion stretcher/compressor pair allows CPA to work effectively with the narrow bandwidth of the gain medium. Finally, in order to increase the laser-to-gamma-ray conversion efficiency, the laser photons can be recirculated through the interaction point via an optical cavity that traps pulses using a frequency conversion process (a scheme known as "RING": Recirculation Injection via Nonlinear Gating).
机译:适用于核共振荧光测量的基于康普顿散射的可调谐单能伽玛射线(MEGa-ray)光源要求附属激光系统具有特定的性能参数。光子/ eV / s数量的优化要求在较短的激光脉冲之间进行权衡,以使光子密度最大化,而在较窄的激光带宽之间使γ射线能量扩散最小。还需要高亮度电子束,这又需要第二激光系统,该系统转换为紫外线,具有快速上升时间,长持续时间和平坦的横向轮廓。此外,这些激光器必须彼此同步,并且必须与提供电子束加速的RF同步。这里介绍的是为LLNL的MEGa射线源设计的激光系统的概述。这种基于chi脉冲放大(CPA)的激光系统始于基于光纤的振荡器,然后将其分为两个放大链。第一条放大链在一系列光纤放大器中产生120 Hz,1 mJ,250 fs,1053 nm的激光脉冲。然后将该脉冲频率加倍至UV,在空间上成形并在时间上堆叠,以产生用于光电阴极的所需激光分布。第二安培链使用光纤安培器和二极管泵浦Nd:YAG磁头的组合产生120 Hz,1 J,10 ps,1064 nm的激光脉冲。新颖的超分散拉伸器/压缩器对使CPA可以在增益介质的窄带宽下有效工作。最后,为了提高激光到伽马射线的转换效率,可以通过一个使用频率转换过程捕获脉冲的光学腔,通过相互作用点将激光光子再循环通过相互作用点(一种称为“ RING”的方案:再循环注入)。通过非线性门控)。

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