Laser-wakefield accelerators (LWFA) can produce electric fields of order 10-100 GV/m suitable for acceleration of electrons to relativistic energies. The wakefields are excited by a relativistically intense laser pulse propagating through a plasma and have a phase velocity determined by the group velocity of the light pulse. Two important effects that can limit the acceleration distanceand hence the net energy gain obtained by an electron are diffraction of the drive laser pulse and particle-wake dephasing. Diffraction of a focused ultra-short laser pulse can be overcome by using preformed plasma channels. The dephasing limit can be increased by operating at a lower plasma density, since this results in an increase in the laser group...
During the last few years laser-driven plasma accelerators have been shown to generate quasi-monoene...
High quality electron beams with hundreds of picoCoulombs ofcharge inpercent energy spread above 80 ...
A laser driven wakefield accelerator has been tuned to produce high energy electron bunches with lo...
Laser wakefield accelerators can produce electric fields of order 10-100 GV/m, suitable for accelera...
High quality electron beams (several 109 electrons above 80 MeV energy with percent energy spread an...
GeV electron accelerators are essential to synchrotron radiation facilities and free electron laser...
High-quality electron beams with up to 1 GeV energy havebeen generated by a laser-driven plasma-base...
Laser-driven accelerators, in which particles are accelerated by the electric field of a plasma wave...
Electron beams with hundreds of picoCoulombs of charge in percent energy spread at above 80 MeV, and...
Guiding of relativistically intense laser beams in preformed plasma channels is discussed for develo...
Gigaelectron volt (GeV) electron accelerators are essential to synchrotron radiation facilities and ...
Electron beams with hundreds of picoCoulombs of charge in percent energy spread at above 80 MeV, an...
The generation of quasimonoenergetic electron beams, with energies greater than 500 MeV, in a laser-...
During the last few years laser-driven plasma accelerators have been shown to generate quasi-monoene...
During the last few years laser-driven plasma accelerators have been shown to generate quasi-monoene...
High quality electron beams with hundreds of picoCoulombs ofcharge inpercent energy spread above 80 ...
A laser driven wakefield accelerator has been tuned to produce high energy electron bunches with lo...
Laser wakefield accelerators can produce electric fields of order 10-100 GV/m, suitable for accelera...
High quality electron beams (several 109 electrons above 80 MeV energy with percent energy spread an...
GeV electron accelerators are essential to synchrotron radiation facilities and free electron laser...
High-quality electron beams with up to 1 GeV energy havebeen generated by a laser-driven plasma-base...
Laser-driven accelerators, in which particles are accelerated by the electric field of a plasma wave...
Electron beams with hundreds of picoCoulombs of charge in percent energy spread at above 80 MeV, and...
Guiding of relativistically intense laser beams in preformed plasma channels is discussed for develo...
Gigaelectron volt (GeV) electron accelerators are essential to synchrotron radiation facilities and ...
Electron beams with hundreds of picoCoulombs of charge in percent energy spread at above 80 MeV, an...
The generation of quasimonoenergetic electron beams, with energies greater than 500 MeV, in a laser-...
During the last few years laser-driven plasma accelerators have been shown to generate quasi-monoene...
During the last few years laser-driven plasma accelerators have been shown to generate quasi-monoene...
High quality electron beams with hundreds of picoCoulombs ofcharge inpercent energy spread above 80 ...
A laser driven wakefield accelerator has been tuned to produce high energy electron bunches with lo...