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Ultrafast laser pulse heating of metallic photocathodes and its contribution to intrinsic emittance

机译:金属光阴极的超快激光脉冲加热及其对固有发射的贡献

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摘要

The heating of the electronic distribution of a copper photocathode due to an intense drive laser pulse is calculated under the two-temperature model using fluences and pulse lengths typical in RF photo-injector operation. Using the finite temperature-extended relations for the photocathode intrinsic emittance and quantum efficiency, the time-dependent emittance growth due to the same photoemis-sion laser pulse is calculated. This laser heating is seen to limit the intrinsic emittance achievable for photoinjectors using short laser pulses and low quantum efficiency metal photocathodes. A pump-probe photocathode experiment in a standard 1.6 cell S-band gun is proposed, in which simulations show the time dependent thermal emittance modulation within the bunch from laser heating can persist for meters downstream and, in principle, be measured using a slice emittance diagnostic.
机译:在两个温度模型下,使用射频光电注入器操作中通常使用的注量和脉冲长度,计算了由于强烈的驱动激光脉冲而导致的铜光电阴极电子分布的加热。使用有限温度扩展关系来计算光电阴极的固有发射率和量子效率,可以计算出由于相同的发光二极管激光脉冲导致的随时间变化的发射率增长。可以看出,这种激光加热限制了使用短激光脉冲和低量子效率金属光电阴极的光注入器可获得的固有发射率。提出了在标准的1.6单元S波段电子枪中进行泵浦探针光电阴极实验的实验,其中模拟显示了激光加热中束中随时间变化的热发射率调制可以持续到下游数米,并且原则上可以使用切片发射率进行测量诊断。

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