Tang Yaguo, Shan Xu, Liu Zhaohui, Niu Shanshan, Wang Enliang, Chen Xiangjun
Hefei National Laboratory for Physical Sciences at the Microscale and Department of Modern Physics, University of Science and Technology of China, Hefei, Anhui 230026, China.
Rev Sci Instrum. 2018 Mar;89(3):033101. doi: 10.1063/1.5018665.
The low count rate of (e, 2e) electron momentum spectroscopy (EMS) has long been a major limitation of its application to the investigation of molecular dynamics. Here we report a new EMS apparatus developed for time-resolved experiments in the nanosecond time scale, in which a double toroidal energy analyzer is utilized to improve the sensitivity of the spectrometer and a nanosecond pulsed electron gun with a repetition rate of 10 kHz is used to obtain an average beam current up to nA. Meanwhile, a picosecond ultraviolet laser with a repetition rate of 5 kHz is introduced to pump the sample target. The time zero is determined by photoionizing the target using a pump laser and monitoring the change of the electron beam current with time delay between the laser pulse and electron pulse, which is influenced by the plasma induced by the photoionization. The performance of the spectrometer is demonstrated by the EMS measurement on argon using a pulsed electron beam, illustrating the potential abilities of the apparatus for investigating the molecular dynamics in excited states when employing the pump-probe scheme.
(e, 2e)电子动量谱(EMS)的低计数率长期以来一直是其应用于分子动力学研究的主要限制。在此,我们报告一种为纳秒时间尺度的时间分辨实验开发的新型EMS装置,其中使用双环形能量分析仪来提高光谱仪的灵敏度,并使用重复频率为10 kHz的纳秒脉冲电子枪来获得高达nA的平均束流。同时,引入重复频率为5 kHz的皮秒紫外激光来泵浦样品靶。通过使用泵浦激光使靶光离子化并监测激光脉冲与电子脉冲之间的时间延迟下电子束流随时间的变化来确定时间零点,该变化受光离子化诱导的等离子体影响。通过使用脉冲电子束对氩气进行EMS测量展示了光谱仪的性能,说明了该装置在采用泵浦 - 探测方案时研究激发态分子动力学的潜在能力。