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Measurement of electron beam transverse slice emittance using a focused beamline

Published online by Cambridge University Press:  13 March 2023

Kangnan Jiang
Affiliation:
State Key Laboratory of High Field Laser Physics and CAS Center for Excellence in Ultra-intense Laser Science, Shanghai Institute of Optics and Fine Mechanics (SIOM), Chinese Academy of Sciences (CAS), Shanghai, China School of Physical Science and Technology, ShanghaiTech University, Shanghai, China
Ke Feng*
Affiliation:
State Key Laboratory of High Field Laser Physics and CAS Center for Excellence in Ultra-intense Laser Science, Shanghai Institute of Optics and Fine Mechanics (SIOM), Chinese Academy of Sciences (CAS), Shanghai, China
Hao Wang
Affiliation:
State Key Laboratory of High Field Laser Physics and CAS Center for Excellence in Ultra-intense Laser Science, Shanghai Institute of Optics and Fine Mechanics (SIOM), Chinese Academy of Sciences (CAS), Shanghai, China
Xiaojun Yang
Affiliation:
State Key Laboratory of High Field Laser Physics and CAS Center for Excellence in Ultra-intense Laser Science, Shanghai Institute of Optics and Fine Mechanics (SIOM), Chinese Academy of Sciences (CAS), Shanghai, China
Peile Bai
Affiliation:
State Key Laboratory of High Field Laser Physics and CAS Center for Excellence in Ultra-intense Laser Science, Shanghai Institute of Optics and Fine Mechanics (SIOM), Chinese Academy of Sciences (CAS), Shanghai, China
Yi Xu
Affiliation:
State Key Laboratory of High Field Laser Physics and CAS Center for Excellence in Ultra-intense Laser Science, Shanghai Institute of Optics and Fine Mechanics (SIOM), Chinese Academy of Sciences (CAS), Shanghai, China
Yuxin Leng
Affiliation:
State Key Laboratory of High Field Laser Physics and CAS Center for Excellence in Ultra-intense Laser Science, Shanghai Institute of Optics and Fine Mechanics (SIOM), Chinese Academy of Sciences (CAS), Shanghai, China
Wentao Wang*
Affiliation:
State Key Laboratory of High Field Laser Physics and CAS Center for Excellence in Ultra-intense Laser Science, Shanghai Institute of Optics and Fine Mechanics (SIOM), Chinese Academy of Sciences (CAS), Shanghai, China
Ruxin Li*
Affiliation:
State Key Laboratory of High Field Laser Physics and CAS Center for Excellence in Ultra-intense Laser Science, Shanghai Institute of Optics and Fine Mechanics (SIOM), Chinese Academy of Sciences (CAS), Shanghai, China School of Physical Science and Technology, ShanghaiTech University, Shanghai, China
*
Correspondence to: Ke Feng, Wentao Wang, and Ruxin Li, State Key Laboratory of High Field Laser Physics and CAS Center for Excellence in Ultra-intense Laser Science, Shanghai Institute of Optics and Fine Mechanics (SIOM), Chinese Academy of Sciences (CAS), Shanghai 201800, China. Email: fengke@siom.ac.cn (K. Feng); wwt1980@siom.ac.cn (W. Wang); ruxinli@siom.ac.cn (R. Li)
Correspondence to: Ke Feng, Wentao Wang, and Ruxin Li, State Key Laboratory of High Field Laser Physics and CAS Center for Excellence in Ultra-intense Laser Science, Shanghai Institute of Optics and Fine Mechanics (SIOM), Chinese Academy of Sciences (CAS), Shanghai 201800, China. Email: fengke@siom.ac.cn (K. Feng); wwt1980@siom.ac.cn (W. Wang); ruxinli@siom.ac.cn (R. Li)
Correspondence to: Ke Feng, Wentao Wang, and Ruxin Li, State Key Laboratory of High Field Laser Physics and CAS Center for Excellence in Ultra-intense Laser Science, Shanghai Institute of Optics and Fine Mechanics (SIOM), Chinese Academy of Sciences (CAS), Shanghai 201800, China. Email: fengke@siom.ac.cn (K. Feng); wwt1980@siom.ac.cn (W. Wang); ruxinli@siom.ac.cn (R. Li)

Abstract

A single-shot measurement of electron emittance was experimentally accomplished using a focused transfer line with a dipole. The betatron phase of electrons based on laser wakefield acceleration (LWFA) is energy dependent owing to the coupling of the longitudinal acceleration field and the transverse focusing (defocusing) field in the bubble. The phase space presents slice information after phase compensation relative to the center energy. Fitting the transverse size of the electron beam at different energy slices in the energy spectrum measured 0.27 mm mrad in the experiment. The diagnosis of slice emittance facilitates local electron quality manipulation, which is important for the development of LWFA-based free electron lasers. The quasi-3D particle-in-cell simulations matched the experimental results and analysis well.

Information

Type
Research Article
Creative Commons
Creative Common License - CCCreative Common License - BYCreative Common License - NCCreative Common License - SA
This is an Open Access article, distributed under the terms of the Creative Commons Attribution-NonCommercial-ShareAlike licence (http://creativecommons.org/licenses/by-nc-sa/4.0), which permits non-commercial re-use, distribution, and reproduction in any medium, provided the same Creative Commons licence is used to distribute the re-used or adapted article and the original article is properly cited. The written permission of Cambridge University Press must be obtained prior to any commercial use.
Copyright
© The Author(s), 2023. Published by Cambridge University Press in association with Chinese Laser Press
Figure 0

Figure 1 The phase space trajectories of the low-energy part (a) and the high-energy part (b) in one electron beam; the electron beam transverse phase space distribution without (c) and with (d) phase compensation.

Figure 1

Figure 2 (a) Schematic diagram of the experimental setup for single-shot measurement of electron emittance by using a focused beamline; (b) shock wave in the shadow graph; (c) statistics of the spot center position of the consecutive 62-shot electron beam on profile; (d) typical spectra of electron beams from the LWFA for 10 consecutive shots[24].

Figure 2

Figure 3 (a) Single-shot image for the energy spectrum of a focused electron beam and (b) the corresponding energy-resolved sizes (blue line) and fitted curve (red line); (c) the phase difference of the energy offset relative to the center energy immediately after injection (red solid line) and acceleration (blue solid line) from FBPIC, and the calculated value of the final phase difference (pink dotted line).

Figure 3

Figure 4 Electron beam slice emittance statistics at 1.5 bar (red) and 2 bar (blue) back pressures.

Figure 4

Figure 5 (a) A typical electron beam spectrogram with initial pointing jitter, with two dashed-dotted lines perpendicular to the electron beam (red line) and at the same horizontal distance from the main optical axis (white line). (b) Corresponding relationship between the electron beam size and energy of the two slicing methods (the blue line corresponds to the white line in Figure 5(a)) and (c) the relative intensity distribution of electrons in the slice where the dotted line is located (the dashed line is the fitted Gaussian curve). (d) The relationship between the initial electron beam pointing jitter and the slope of the electron distribution on the Lanex phosphor screen (red line) and the change in the emittance (blue line).