DocumentCode
2566374
Title
Laser driven ion source from ultrathin foils and its biomedical application
Author
Jianhui Bin ; Wenjun Ma ; Allinger, K. ; Kiefer, D. ; Hilz, P. ; Reinhardt, S. ; Assmann, W. ; Habs, D. ; Schreiber, J. ; Drexler, G.A. ; Friedl, A.A. ; Humble, N. ; Michalski, D. ; Molls, M. ; Schmid, T.E. ; Zlobinskaya, O. ; Wilkens, J.J.
Author_Institution
Dept. fur Phys., Ludwig-Maximilians-Univ. Munchen, Garching, Germany
fYear
2012
fDate
8-13 July 2012
Abstract
Laser driven ion acceleration has attracted considerable attention due to its potential practical applications, such as in ion cancer therapy, proton imaging and fast ignition. Utilization of nanometer thin targets and ultrahigh contrast laser pulses has enabled a quantum leap in laser particle acceleration, offering much improved ion pulses as compared to plasma expansion schemes such as target normal sheath acceleration. Moreover, such nano-targets offer the possibility to control the ion beam by the laser parameters. We present the observation of well-collimated proton beams with a divergence as low as 1-2 degree and energies up to 8 MeV with a laser pulse of 0.4 J and 30 fs duration irradiating ultrathin DLC foils. The divergence strongly depends on the focal size of the laser and the highest energetic protons are generated even with moderate laser intensity as low as 3×1018 W/cm2. These remarkable features enabled us to irradiate living cells with a single shot dose of up to 7 Gray in one nanosecond for the first time, utilizing MPQ´s table top ATLAS laser system. Although many issues still remain to solve, our demonstration of the feasibility of a very compact laser-driven beam line for proton acceleration, transport and delivery bolsters future applications such as laser driven hadron therapy.
Keywords
cancer; cellular biophysics; foils; laser applications in medicine; nanomedicine; nanoparticles; radiation therapy; ATLAS laser system; biomedical application; delivery bolsters; energetic protons; energy 0.4 J; fast ignition; ion cancer therapy; laser driven hadron therapy; laser driven ion acceleration; laser driven ion source; laser particle acceleration; laser-driven beam line; living cell irradiation; nanometer thin target utilization; plasma expansion schemes; proton imaging; target normal sheath acceleration; time 30 fs; ultrahigh contrast laser pulses; ultrathin DLC foils; well-collimated proton beams; Acceleration; Laser applications; Laser beams; Laser modes; Oncology; Protons; Quantum well lasers;
fLanguage
English
Publisher
ieee
Conference_Titel
Plasma Science (ICOPS), 2012 Abstracts IEEE International Conference on
Conference_Location
Edinburgh
ISSN
0730-9244
Print_ISBN
978-1-4577-2127-4
Electronic_ISBN
0730-9244
Type
conf
DOI
10.1109/PLASMA.2012.6383995
Filename
6383995
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