2017 Volume 26 Issue 4
Article Contents

Min-Jie Pei, Da-Long Qi, Ying-Peng Qi, Tian-Qing Jia, Zhen-Rong Sun. 2017: Compressing ultrafast electron pulse by radio frequency cavity, Chinese Physics B, 26(4): 184-189. doi: 10.1088/1674-1056/26/4/044102
Citation: Min-Jie Pei, Da-Long Qi, Ying-Peng Qi, Tian-Qing Jia, Zhen-Rong Sun. 2017: Compressing ultrafast electron pulse by radio frequency cavity, Chinese Physics B, 26(4): 184-189. doi: 10.1088/1674-1056/26/4/044102

Compressing ultrafast electron pulse by radio frequency cavity

  • Available Online: 30/12/2017
  • Fund Project: Project partially supported by the National Natural Science Foundation of China(Grant .51132004 and 11474096)%the Fund from the Science and Technology Commission of Shanghai Municipality,China(Gant 14JC1401500)%the NYU-ECNU Institute of Physics at NYU Shanghai,China
  • An ultrafast electron diffraction technique with both high temporal and spatial resolution has been shown to be a powerful tool to observe the material transient structural change on an atomic scale.The space charge forces in a multi-electron bunch will greatly broaden the electron pulse width,and therefore limit the temporal resolution of the high brightness electron pulse.Here in this work,we design an ultrafast electron diffraction system,and utilize a radio frequency cavity to realize the ultrafast electron pulse compression.We experimentally demonstrate that the stretched electron pulse width of 14.98 ps with an electron energy of 40 keV and the electron number of 1.0 × 105 can be maximally compressed to about 0.61 ps for single-pulse measurement and 2.48 ps for multi-pulse measurement by using a 3.2-GHz radiofrequency cavity.We also theoretically and experimentally analyze the parameters influencing the electron pulse compression efficiency for single-and multi-pulse measurements by considering radiofrequency field time jitter,electron pulse time jitter and their relative time jitter.We suggest that increasing the electron energy or shortening the distance between the compression cavity and the streak cavity can further improve the electron pulse compression efficiency.These experimental and theoretical results are very helpful for designing the ultrafast electron diffraction experiment equipment and compressing the ultrafast electron pulse width in a future study.
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    沈阳化工大学材料科学与工程学院 沈阳 110142

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Compressing ultrafast electron pulse by radio frequency cavity

Abstract: An ultrafast electron diffraction technique with both high temporal and spatial resolution has been shown to be a powerful tool to observe the material transient structural change on an atomic scale.The space charge forces in a multi-electron bunch will greatly broaden the electron pulse width,and therefore limit the temporal resolution of the high brightness electron pulse.Here in this work,we design an ultrafast electron diffraction system,and utilize a radio frequency cavity to realize the ultrafast electron pulse compression.We experimentally demonstrate that the stretched electron pulse width of 14.98 ps with an electron energy of 40 keV and the electron number of 1.0 × 105 can be maximally compressed to about 0.61 ps for single-pulse measurement and 2.48 ps for multi-pulse measurement by using a 3.2-GHz radiofrequency cavity.We also theoretically and experimentally analyze the parameters influencing the electron pulse compression efficiency for single-and multi-pulse measurements by considering radiofrequency field time jitter,electron pulse time jitter and their relative time jitter.We suggest that increasing the electron energy or shortening the distance between the compression cavity and the streak cavity can further improve the electron pulse compression efficiency.These experimental and theoretical results are very helpful for designing the ultrafast electron diffraction experiment equipment and compressing the ultrafast electron pulse width in a future study.

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