Electron bunch trapping and compression by an intense focused pulse laser
Qianqian Kong, Shuji Miyazaki, S. Kawata, Koichi Miyauchi, Kazuo Sakai, Y. K. Ho, Kazuhisa Nakajima, N. Miyanaga, Jiří Limpouch, А. А. Андреев
Abstract
Qianqian Kong, Shuji Miyazaki, S. Kawata, Koichi Miyauchi, Kazuo Sakai, Y. K. Ho, Kazuhisa Nakajima, N. Miyanaga, Jiří Limpouch, А. А. Андреев
Abstract
A focused short-pulse laser of TEM (1,0)+TEM (0,1) mode has two intensity peaks in the radial direction, so that the transverse ponderomotive force may trap electrons between the two peaks. At the same time the longitudinal ponderomotive force may accelerate electrons at the head of the laser pulse, when the laser is focused. When the electrons move to the laser tail, the laser may diverge and the electron deceleration becomes relatively weak. Our numerical analyses demonstrate that electrons are trapped well by the laser potential well, and that at the same time the acceleration by the longitudinal ponderomotive force induces the electron bunch compression. This trapping and compression mechanism is unique: the electron bunch can be compressed to the scale of the laser pulse length.
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A focused short-pulse laser of TEM (1,0)+TEM (0,1) mode has two intensity peaks in the radial direction, so that the transverse ponderomotive force may trap electrons between the two peaks. At the same time the longitudinal ponderomotive force may accelerate electrons at the head of the laser pulse, when the laser is focused. When the electrons move to the laser tail, the laser may diverge and the electron deceleration becomes relatively weak. Our numerical analyses demonstrate that electrons are trapped well by the laser potential well, and that at the same time the acceleration by the longitudinal ponderomotive force induces the electron bunch compression. This trapping and compression mechanism is unique: the electron bunch can be compressed to the scale of the laser pulse length.
Key concepts: Electron, Laser, Ponderomotive force, Atomic physics, Pulse (music), Physics, Trapping, Compression (physics)