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A beamline for attosecond pump-probe experiments: Towards tracking ultrafast electron dynamics in atoms and molecules

机译:用于Attosecond泵探针实验的光束线:朝着在原子和分子中跟踪超快电子动力学

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We present a technical review of a beamline built to perform pump-probe experiments with a temporal resolution of < 200 attosecond. This is designed specifically to use the technique of attosecond transient absorption spectroscopy (ATAS) to resolve ultra-fast electron dynamics in atoms and molecules. A non-collinear, interferometrically stable geometry is adopted to allow us to individually control the characteristics of each of the pump and probe arms independent from each other. With the use of an auxiliary interferometer to correct for long-term drifts between the pump and probe arms we measure better than 150as resolution for our time-corrected delay despite having separated beam paths of over 4m in length. In our first experiment we have focused on the time dependence of the electronic states of an atom in a strong laser field. An extreme ultra-violet (XUV) attosecond pulse train (APT) and a precisely synchronized 30fs IR pulse are used in this work. Delay-dependent absorption modulations are observed at even multiples (2 and 4) of the IR dressing field frequency as the pump-probe delay is scanned. We investigate the dependence of the 2co order absorption modulation amplitude from the transient absorption of laser-dressed helium as the IR dressing field ellipticity is varied, and we discuss the issues in obtaining such results. We present qualitative data indicating a clear anisotropy in the response of the atom to an IR dressing field, and discuss how we will improve this measurement in future experiments.
机译:我们介绍了一个模拟线的技术审查,以执行泵探针实验,以时间分辨率为<200 attosecond。这是专门设计用于使用AttoSecond瞬态吸收光谱(ATAS)的技术来解决原子和分子中的超快速电子动力学。采用非共线,干涉稳定的几何形状以允许我们单独地控制每个泵和探头臂的特性彼此独立。通过使用辅助干涉仪来校正泵和探头臂之间的长期漂移,我们测量优于我们的时间校正延迟,尽管长度超过4米的分离梁路径,但是尽管具有超过4米的时间矫正延迟。在我们的第一个实验中,我们专注于电子国家在强激光场中的电子国家的时间依赖。在这项工作中使用了极端的超紫(XUV)AttoSecond脉冲列车(APT)和精确同步的30FS IR脉冲。当扫描泵探测延迟时,在IR敷料场频率的偶数倍数(2和4)处观察到延迟依赖性吸收调制,因为扫描探针延迟。我们调查2CO订单吸收调制幅度从激光衣服氦的瞬态吸收的依赖性,因为IR敷料领域椭圆形是变化的,我们讨论了获得此类结果的问题。我们呈现定性数据,表明在原子对IR敷料领域的响应中的明确各向异性,并讨论了我们如何在未来的实验中提高这种测量。

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