Anthony Raymond
University of Michigan
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Publication
Featured researches published by Anthony Raymond.
New Journal of Physics | 2016
Christopher McGuffey; Anthony Raymond; Thomas Batson; R. Hua; G. M. Petrov; J. Kim; C. M. Krauland; Anatoly Maksimchuk; A. G. R. Thomas; V. Yanovsky; K. Krushelnick; F. N. Beg
We have studied laser acceleration of ions from Si3N4 and Al foils ranging in thickness from 1800 to 8 nm with particular interest in acceleration of ions from the bulk of the target. The study includes results of experiments conducted with the HERCULES laser with pulse duration 40 fs and intensity 3 × 1020 W cm−2 and corresponding two-dimensional particle-in-cell simulations. When the target thickness was reduced the distribution of ion species heavier than protons transitioned from being dominated by carbon contaminant ions of low ionization states to being dominated by high ionization states of bulk ions (such as Si12+) and carbon. Targets in the range 50–150 nm yielded dramatically greater particle number and higher ion maximum energy for these high ionization states compared to thicker targets typifying the Target Normal Sheath Acceleration (TNSA) regime. The high charge states persisted for the thinnest targets, but the accelerated particle numbers decreased for targets 35 nm and thinner. This transition to an enhanced ion TNSA regime, which more efficiently generates ion beams from the bulk target material, is also seen in the simulations.
New Journal of Physics | 2016
C. Zulick; Anthony Raymond; Andrew McKelvey; V. Chvykov; A. Maksimchuk; A. G. R. Thomas; L. Willingale; V. Yanovsky; K. Krushelnick
Reduced surface area targets were studied using an ultra-high intensity femtosecond laser in order to determine the effect of electron sheath field confinement on electron dynamics. X-ray emission due to energetic electrons was imaged using a Ka imaging crystal. Electrons were observed to travel along the surface of wire targets, and were slowed mainly by the induced fields. Targets with reduced surface areas were correlated with increased hot electron densities and proton energies. Hybrid Vlasov-Fokker-Planck simulations demonstrated increased electric sheath field strength in reduced surface area targets.
Physical Review E | 2018
Anthony Raymond; Chuanfei Dong; Andrew McKelvey; C. Zulick; N. Alexander; A. Bhattacharjee; Pt Campbell; H. Chen; V. Chvykov; E. del Rio; P. Fitzsimmons; W. Fox; B. Hou; A. Maksimchuk; C. Mileham; John A. Nees; P.M. Nilson; C. Stoeckl; A. G. R. Thomas; M. S. Wei; V. Yanovsky; K. Krushelnick; L. Willingale
New Journal of Physics | 2017
F Dollar; C. Zulick; Anthony Raymond; V. Chvykov; L. Willingale; V. Yanovsky; Anatoly Maksimchuk; A. G. R. Thomas; K. Krushelnick
Bulletin of the American Physical Society | 2017
Bradley Sommers; Anthony Raymond; Sarah Gucker
Bulletin of the American Physical Society | 2017
Artan Qerushi; Patrick Ross; Chriss Lohff; Anthony Raymond; Niccolo Montecalvo
Bulletin of the American Physical Society | 2016
K. Krushelnick; Anthony Raymond; Chuanfei Dong; Andrew McKelvey; C. Zulick; N. Alexander; A. Bhattacharjee; Pt Campbell; H. Chen; Chvykov; E Del Rio; P. Fitzsimmons; W. Fox; B. Hou; A. Maksimchuk; C. Mileham; John A. Nees; P.M. Nilson; C Stoekl; Agr Thomas; Wei; Yanovsky; L. Willingale
Bulletin of the American Physical Society | 2016
Thomas Batson; Anthony Raymond; Amina Hussein; K. Krushelnick; L. Willingale; Phil Nilson; D. H. Froula; Dan Harberberger; A. Davies; W. Theobald; Jackson Williams; H. Chen; Alexey Arefiev
Bulletin of the American Physical Society | 2015
Thomas Batson; Anthony Raymond; K. Krushelnick; L. Willingale; Phil Nilson; D. H. Froula; Dan Haberberger; A. Davies; W. Theobald; Jackson Williams; H. Chen; Alex Arefiev
Bulletin of the American Physical Society | 2015
Anthony Raymond; Andrew McKelvey; C. Zulick; Dong Chuanfei; Anatoly Maksimchuk; A. G. R. Thomas; Victor Yanovsky; K. Krushelnick; L. Willingale; Vladimir Chykov; Phil Nilson; H. Chen; Gerald Williams; A. Bhattacharjee; W. Fox