English

Diagnosis of Fast Electron Transport by Coherent Transition Radiation

Plasma Physics 2023-06-07 v1

Abstract

Transport of fast electron in overdense plasmas is of key importance in high energy density physics. However, it is challenging to diagnose the fast electron transport in experiments. In this article, we study coherent transition radiation (CTR) generated by fast electrons on the back surface of the target by using 2D and 3D first-principle particle-in-cell (PIC) simulations. In our simulations, aluminium target of 2.7 g/cc is simulated in two different situations by using a newly developed high order implicit PIC code. Comparing realistic simulations containing collision and ionization effects, artificial simulations without taking collision and ionization effects into account significantly underestimate the energy loss of electron beam when transporting in the target, which fail to describe the complete characteristics of CTR produced by electron beam on the back surface of the target. Realistic simulations indicate the diameter of CTR increases when the thickness of the target is increased. This is attributed to synergetic energy losses of high flux fast electrons due to Ohm heatings and colliding drags, which appear quite significant even when the thickness of the solid target only differs by micrometers. Especially, when the diagnosing position is fixed, we find that the intensity distribution of the CTR is also a function of time, with the diameter increased with time. As the diameter of CTR is related to the speed of electrons passing through the back surface of the target, our finding may be used as a new tool to diagnose the electron energy spectra near the surface of solid density plasmas.

Keywords

Cite

@article{arxiv.2305.06666,
  title  = {Diagnosis of Fast Electron Transport by Coherent Transition Radiation},
  author = {Yangchun Liu and Xiaochuan Ning and Dong Wu and Tianyi Liang and Peng Liu and Shujun Liu and Xu Liu and Zhengmao Sheng and Wei Hong and Yuqiu Gu and Xiantu He},
  journal= {arXiv preprint arXiv:2305.06666},
  year   = {2023}
}

Comments

accepted by New Journal of Physics