Journal of Optoelectronics · Laser, Volume. 35, Issue 9, 981(2024)
Effects of the transverse initial position of electrons on the trajectory and radiation properties of high-energy electrons
[1] [1] VAIS O E, BYCHENKOV V Y. Complementary diagnostics of high-intensity femtosecond laser pulses via vacuum acceleration of protons and electrons[J]. Plasma Physics and Controlled Fusion, 2021, 63(1): 014002.
[2] [2] VENKAT P, HOLKUNDKAR A R. Higher harmonics and attosecond pulse generation by laser induced Thomson scattering in atomic clusters[J]. Physical Review Accelerators and Beams, 2019, 22(8): 084401.
[3] [3] YAN W C, FRUHLING C, GOLOVIN G, et al. High-order multiphoton Thomson scattering[J]. Nature Photonics, 2017, 11:514-520.
[4] [4] CHI Z, DU Y, HUANG W, et al. Linearly polarized X-ray fluorescence computed tomography based on a Thomson scattering light source: a Monte Carlo study[J]. Journal of Synchrotron Radiation, 2020, 27(3): 737-745.
[5] [5] LIU K, YU T, ZOU D, et al. Twisted radiation from nonlinear Thomson scattering with arbitrary incident angle[J]. The European Physical Journal D, 2020, 74(7): 7.
[7] [7] VAIS O E, BOCHKAREV S G, BYCHENKOV V Y. Nonlinear Thomson scattering of a relativistically strong tightly focused ultrashort laser pulse[J]. Plasma Physics Reports, 2016, 42(9): 818-833.
[8] [8] RYKOVANOV S G, GEDDES C G R, SCHROEDER C B, et al. Controlling the spectral shape of nonlinear Thomson scattering with proper laser chirping[J]. Physical Review Accelerators and Beams, 2016, 19(3): 030701.
[10] [10] LEE K, CHA Y H, SHIN M S, et al. Relativistic nonlinear Thomson scattering as attosecond X-ray source[J]. Physical Review E, Statistical, Nonlinear, and Soft Matter Physics, 2003, 67(2 Pt 2): 026502.
[11] [11] HARVEY C, MARKLUND M, HOLKUNDKAR A R. Focusing effects in laser-electron Thomson scattering[J].2016, 19(9): 094701.
[12] [12] VAZIRI M, GOLSHANI M, SOHAILY S, et al. Electron acceleration by linearly polarized twisted laser pulse with narrow divergence[J]. Physics of Plasmas, 2015, 22(3): 033118.
[13] [13] BOROVSKIY A V, GALKIN A L. Electron acceleration and electromagnetic emission in the field of intersecting Gaussian pulses[J]. Laser Physics, 2021, 31(1): 016001.
[14] [14] KOZAK M. All-optical scheme for generation of isolated attosecond electron pulses[J]. Physical Review Letters, 2019, 123(20): 203202.1-203202.6.
[15] [15] LIU Y, Z, ZHANG J, WU H, et al. Ponderomotive scattering of electrons and its application to measure the pulse duration of ultrafast electron beams[J]. Journal of Applied Physics, 2008, 103(4): 044905.
[16] [16] CHEN Z J, QIN H, CHEN X, et al. Spatial radiation features of circularly polarized tightly focused laser beams colliding with electrons[J]. Laser Physics, 2021, 31(7): 075401.
[18] [18] ZHUANG J W, WANG Y Q, WANG C L, et al. Spectral shape of quasi-monochromatic radiation from electron colliding with tightly focused laser pulses[J]. Laser Physics, 2021, 31(6): 065403.
[19] [19] ZHUANG J W, YAN Y, ZHOU X, et al. Quasi-monochromatic spectral emission characteristics from electron collision with tightly focused laser pulses[J]. Laser Physics, 2021, 31(3): 035401.
[20] [20] WANG Y Q, WANG C L, LI K, et al. Analysis of spatial radiation and motion features of nonlinear Thomson scattering in circularly polarized laser pulses[J]. Optical and Quantum Electronics, 2021, 53(5): 229.
[21] [21] WANG Y Q, WANG C L, LI K, et al. Spatial radiation features of Thomson scattering from electron in circularly polarized tightly focused laser beams[J]. Laser Physics Letters, 2021, 18(1): 015303.
Get Citation
Copy Citation Text
SHEN Tong, HUA Xinzhu, HE Yongqiu, YAN Gang, TIAN Youwei. Effects of the transverse initial position of electrons on the trajectory and radiation properties of high-energy electrons[J]. Journal of Optoelectronics · Laser, 2024, 35(9): 981
Category:
Received: Dec. 29, 2022
Accepted: Dec. 20, 2024
Published Online: Dec. 20, 2024
The Author Email: