Numerical study of interference between transition radiation and cerenkov wake field radiation in a planar dielectric structure
J.-M. Fang, Thomas Märshall, В. П. Тараканов, J. L. Hirshfield
Abstract
J.-M. Fang, Thomas Märshall, В. П. Тараканов, J. L. Hirshfield
Abstract
The PIC code KARAT is used to study the interference between transition radiation and Cerenkov wake field radiation, set up by the passage of a bunch of charge through a dielectric structure of finite length. An example studied is a tall, dielectric-lined rectangular wake field microstructure, recently proposed as a stageable element of an advanced linear accelerator, which would use a train of femtosecond duration bunches. These bunches would be chopped out of a longer bunch using a powerful CO/sub 2/ laser and formed into a rectangular-profile bunch by a quadrupole. The bunches set up a periodic wake field which can be built up to as much as 600 MV/m using ten 3-fs bunches each containing a charge of 1-pC. Of interest is the difference in relative propagation speeds of the transition radiation and the Cerenkov radiation (which advances almost at c), and the relative magnitudes of the fields.
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The PIC code KARAT is used to study the interference between transition radiation and Cerenkov wake field radiation, set up by the passage of a bunch of charge through a dielectric structure of finite length. An example studied is a tall, dielectric-lined rectangular wake field microstructure, recently proposed as a stageable element of an advanced linear accelerator, which would use a train of femtosecond duration bunches. These bunches would be chopped out of a longer bunch using a powerful CO/sub 2/ laser and formed into a rectangular-profile bunch by a quadrupole. The bunches set up a periodic wake field which can be built up to as much as 600 MV/m using ten 3-fs bunches each containing a charge of 1-pC. Of interest is the difference in relative propagation speeds of the transition radiation and the Cerenkov radiation (which advances almost at c), and the relative magnitudes of the fields.
Key concepts: Bunches, Transition radiation, Physics, Cherenkov radiation, Optics, Wake, Radiation, Dielectric