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Particle-in-cell simulation of x-ray wakefield acceleration and betatron radiation in nanotubes

Authors :
Zhang, Xiaomei
Tajima, Toshiki
Farinella, Deano
Shin, Youngmin
Mourou, Gerard
Wheeler, Jonathan
Taborek, Peter
Chen, Pisin
Dollar, Franklin
Shen, Baifei
Source :
Phys.Rev.Accel.Beams 19, 101004 (2016)
Publication Year :
2018

Abstract

Though wakefield acceleration in crystal channels has been previously proposed, x-ray wakefield acceleration has only recently become a realistic possibility since the invention of the single-cycled optical laser compression technique. We investigate the acceleration due to a wakefield induced by a coherent, ultrashort x-ray pulse guided by a nanoscale channel inside a solid material. By two-dimensional particle in- cell computer simulations, we show that an acceleration gradient of TeV/cm is attainable. This is about 3 orders of magnitude stronger than that of the conventional plasma-based wakefield accelerations, which implies the possibility of an extremely compact scheme to attain ultrahigh energies. In addition to particle acceleration, this scheme can also induce the emission of high energy photons at ~O(10-100) MeV. Our simulations confirm such high energy photon emissions, which is in contrast with that induced by the optical laser driven wakefield scheme. In addition to this, the significantly improved emittance of the energetic electrons has been discussed.<br />Comment: 10 pp

Details

Database :
arXiv
Journal :
Phys.Rev.Accel.Beams 19, 101004 (2016)
Publication Type :
Report
Accession number :
edsarx.1805.03725
Document Type :
Working Paper
Full Text :
https://doi.org/10.1103/PhysRevAccelBeams.19.101004