scholarly journals Formation and stability of a hollow electron beam in the presence of a plasma wake field driven by an ultra-short electron bunch

Author(s):  
F. Tanjia ◽  
R. Fedele ◽  
S. De Nicola ◽  
T. Akhter ◽  
D. Jovanović
2019 ◽  
Vol 89 (9) ◽  
pp. 1445
Author(s):  
И.Л. Шейнман ◽  
Ю.С. Шейнман

Dielectric waveguides are intensively investigated as accelerating structures excited by an electron beam. Rectangular dielectric structures are used both to test the principles of new acceleration schemes and to study the electrical properties of filling materials. A number of dielectric materials used to fill waveguides have anisotropic properties (sapphire, ceramic films). Anisotropy can have a significant effect on wake fields generated by an electron beam in the structure. An analytical calculation of the Vavilov-Cherenkov radiation generated by a relativistic electron bunch in the rectangular waveguide with a transversely inhomogeneous transversely isotropic dielectric filling is carried out. A method for constructing an orthogonal basis of a transverse operator with its subsequent use to find the wake field is presented. A dispersion equation for the structure and expressions for the wake field created by a point electron bunch in the transversely isotropic rectangular dielectric structure are obtained. On the basis of the above formalism, calculations were made of the parameters of an accelerator structure based on sapphire, which permits the generation of fields above 100 MV / m.


2021 ◽  
Vol 87 (1) ◽  
Author(s):  
Xiangyang Liu ◽  
Junfan Qu ◽  
Peng Liu ◽  
Houchen Fan ◽  
Ling Cai ◽  
...  

In this article, the electron trapping and acceleration in the wake field driven by an ultrarelativistic hollow electron beam is studied. When the hollow driver injects into plasma, there is a doughnut-shaped electron bubble formed because of the existence of a special ‘backflow’ beam in the centre of the electron bubble. At the same time, there is a transverse convergence of the hollow driver, which leads to the weakening of the backflow beam. This results in a local electron density transition at the rear of the bubble. During this process, there is an expansion of the longitudinal electron bubble size, and a bunch of background electrons is trapped by the wake field at the rear of the bubble. The tracks for the trapped electrons show that there are two sources: one is from the bubble sheath and the other is from the unique backflow beam. In the particle-in-cell simulation where the driving beam has initial energy of $1.0$ GeV per particle, the trapped beam can be accelerated to energy of more than $1.5$ GeV per particle and the corresponding transformer ratio is $1.5$ . With the increase of driving beam energy up to $40.0$ GeV, a transformer ratio of $1.4$ still can be achieved. By adjusting the hollow beam density, it is possible to control the trapped beam charge value and beam quality, such as its energy spread and transverse emittance.


2008 ◽  
Vol 32 (10) ◽  
pp. 842-845
Author(s):  
Zhang Kai-Zhi ◽  
Zhang Huang ◽  
Long Ji-Dong ◽  
Yang Guo-Jun ◽  
He Xiao-Zhong ◽  
...  

1986 ◽  
Vol 29 (9) ◽  
pp. 3074-3083 ◽  
Author(s):  
Han S. Uhm ◽  
Thomas P. Hughes

Particles ◽  
2018 ◽  
Vol 1 (1) ◽  
pp. 238-252 ◽  
Author(s):  
Siriwan Krainara ◽  
Shuya Chatani ◽  
Heishun Zen ◽  
Toshiteru Kii ◽  
Hideaki Ohgaki

A THz coherent undulator radiation (THz-CUR) source has been developed at the Institute of Advanced Energy, Kyoto University. A photocathode Radio-Frequency (RF) gun and a bunch compressor chicane are used for generating short-bunch electron beams. When the electron beam energy is low, the space-charge effect strongly degrades the beam quality, such as the bunch length and the energy spread at the high bunch charge condition at around 160 pC, and results in the reduction of the highest frequency and the maximum radiated power of the THz-CUR. To mitigate the space charge effect, we have investigated the dependence of the electron beam quality on the laser distribution in transverse and longitudinal directions by using a numerical simulation code, General Particle Tracer GPT. The manipulation of the laser distribution has potential for improving the performance of the THz-CUR source. The electron bunch was effectively compressed with the chicane magnet when the laser transverse distribution was the truncated Gaussian profile, illuminating a cathode. Moreover, the compressed electron bunch was shortened by enlarging the laser pulse width. Consequently, an enhancement of the radiated power of the THz-CUR has been indicated.


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