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Relativistic free electrons in an intense laser field: Experimental observations of optically-induced deflection of an ultrashort electron beam.

机译:强激光场中的相对论自由电子:超短电子束光致偏转的实验观察。

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We present experimental evidence of the deflection of electrons via the transfer of longitudinal momentum from an intense laser beam. The electrons are in the form of a narrow divergence beam created through self-modulated laser-wakefield acceleration with energies up to 6 MeV and an expected temporal duration of about 1 ps. A second laser pulse intersects the electron beam at an angle of 135° causing part of the beam to be deflected. The deflection is detected by using the scintillating plastic LANEX that provides spatial information of the electron beam. By taking column-wise and row-wise summations of the signal from the LANEX we examine how the beam profile changes with a change in the delay between the electron pulse and the secondary laser pulse. By using a set of metrics, we show how the beam is deflected and distorted. By measuring the time elapsed through the change in the electron beam, an estimate of the electron beam duration is given as less than 2 picoseconds. Inside of the 2 ps window, we show that different periods of deflection based on electron beam temperature can be explained by the laser sampling portions of the electron beam with different temperatures. It is also demonstrated in both theory and experiment that this process has no dependence on the polarization direction of the laser field. This physical process can be altered by changing the angle of incidence and laser intensity to examine deflection of different ranges of electron energies. This provides an important tool for the temporal measurement of ultrafast electron beams that can provide electron energy information.
机译:我们提出了通过偏转来自强激光束的纵向动量转移电子的实验证据。电子是通过自调制激光-苏克场加速产生的窄发散束的形式,能量高达6 MeV,预期的时间持续时间约为1 ps。第二个激光脉冲以135°的角度与电子束相交,导致电子束的一部分偏转。通过使用提供电子束空间信息的闪烁塑料LANEX来检测偏斜。通过对来自LANEX的信号进行按列和按行求和,我们检查了光束轮廓如何随着电子脉冲和辅助激光脉冲之间的延迟变化而变化。通过使用一组度量,我们显示了光束如何偏转和扭曲。通过测量电子束变化所花费的时间,电子束持续时间的估计值小于2皮秒。在2 ps窗口内,我们显示了基于电子束温度的不同偏转周期可以用具有不同温度的电子束的激光采样部分来解释。在理论和实验上也证明了该过程不依赖于激光场的偏振方向。可以通过更改入射角和激光强度来检查不同范围的电子能量的偏转来更改此物理过程。这为可提供电子能量信息的超快电子束的时间测量提供了重要工具。

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